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Melaleuca quinquenervia (Cav.) S. T. Blake

Análisis de riesgo ( Espanhol; Castelhano )

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6.1.2 Ecológico

M. quinquenervia se ha convertido en una amenaza para la estabilidad del sistema pantanoso de Florida (Los Everglades). En zonas donde M. quinquenervia se ha esparcido, ha desplazado a las plantas y animales nativos, alterado la hidrología de los humedales y creado condiciones que pueden ocasionar incendios. También se han observado cambios en la química del suelo (Johnston et al., 2003).

6.1.1 A flora y fauna nativa

Los grupos no controlados pueden tener una densidad de árboles de 7000-20,000 tallos/ha, con lo que pueden desplazar a la vegetación nativa y a los hábitats naturales (Loope et al., 1994). Por ejemplo, en las regiones pantanosas, en las que M. quinquenervia ha afectado a las gramíneas. Austin (1978) ha reportado que la diversidad de especies ha decaído en un 60-80% en las praderas húmedas y pantanos en donde Melaleuca invade. En su zona de distribución nativa, tiene un efecto positivo en la biodiversidad y los bosques remanentes de M. quinquenervia cerca de Brisbane, Australia son hábitats importantes para la conservación de especies de aves (Grover &Slater, 1994).

6.1.3 Económico

El esfuerzo para controlar a Melaleuca con un manejo integrado en Florida tuvo un costo de $25 millones de dólares hasta 1999, pero se estima que si no se mantuviera bajo control, el costo sería de $161 millones anualmente (ISC 2011, Laroche, 1999).

6.1.6 Sociales-culturales

La dispersión de M. quinquenervia en el sur de Florida, EUA puede restringir el uso de algunos parques y áreas recreativas. En el sur de Florida se creyó que el polen de esta especie era el causante de reacciones alérgicas severas y problemas respiratorios agudos (Geary, 1988), aunque estudios detallados han probado que M. quinquenervia no es una fuente significativa de alérgenos aéreos y que su olor no es irritante para el sistema respiratorio (Stablein et al., 2002). Sin embargo, se demostró que los antígenos reaccionaban a extractos de polen de un alérgeno aéreo comprobado (Bahia grass pollen), dando una posible explicación a los resultados contrastantes (ISC, 2011).
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CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Comportamiento ( Espanhol; Castelhano )

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Fuego

La melaleuca rara vez perece en los incendios; los árboles dañados por los incendios se recuperan rápidamente a través de un prolífico rebrote epicórmico (Geary &Woodall, 1990).

Corrientes de agua

El sistema radical de la melaleuca está adaptado a las fluctuaciones en el nivel de las aguas subterráneas. La red de raíces en la superficie se ve complementada por unas abundantes raíces verticales penetrantes que se extienden por lo menos hasta el nivel más profundo anual de las aguas subterráneas. Durante los períodos de inundaciones de la superficie proliferan unas raíces acuáticas” a partir de las raíces superficiales permanentes y de las porciones sumergidas del tallo (Meskimen, 1962).
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CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Descripción ( Espanhol; Castelhano )

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1.1 Descripción de la especie

Es un árbol de talla pequeña a media, normalmente mide entre 8 y 12 m de alto pero puede variar entre 4 y 25 m dependiendo de las condiciones locales. El tallo puede ser moderadamente recto o torcido, la copa puede ser estrecha y abierta o bastante densa. La corteza es de color pálido y está hecha de capas muy finas que se separan y desprenden, y en troncos grandes se vuelven rugosas y ásperas. La especie ha sido descrita en detalle por Blake (1968), y más generalmente por Boland et al., (1984), Holliday (1989) y Doran &Turnbull (1997). Los brotes juveniles son velludos y plateados en apariencia, con pelos de 0.25 a 2 mm de largo, que son prensados en las hojas y ascienden en las ramas (Blake, 1968). Las hojas maduras son alternas, de un verde opaco, rígidas, correosas y lanceoladas u ovado-lanceoladas, de 4 a 9 cm por 2 a 3.5 cm, con márgenes completos, y 5 (en raras ocasiones 3 ó 7) venas paralelas prominentes de la base a la punta, en un peciolo de 6 a 24 mm de largo. Las flores blancas o color crema (en raras ocasiones verdosas o rojizas) se producen en espigas gruesas y esponjosas.la parte conspicua de cada flor consiste en 5 paquetes de estambres de 10 a 20 mm longitud. Las espigas se dan en pares, tríos o solitarias, son terminales y algunas veces solitarias en la axilas superiores 1-3 de la hoja. Miden de 4 a 8.5 cm por 2.5-3.5 cm de largo. Las espigas crecen hacia fuera en una rama más allá de los frutos. Cada inflorescencia da entre 30 y 70 cápsulas leñosas, sin tallo, densamente empaquetadas. Las cápsulas son cortas, cilíndricas, de 3-4 mm por 4-5 mm, café grisáceas, duras y persistentes. Las semillas son café pálido, muy pequeñas, de alrededor de 1 mm por 0.3 mm, y afiladas en el dorso. Son arrojadas a través de 3 o 4 hendiduras horizontales que se encuentran debajo del borde de la cápsula.
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CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Dispersión ( Espanhol; Castelhano )

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Anemocoria

De acuerdo a los resultados de un modelo computacional, el 99% de las semillas liberadas de un árbol durante un año normal (Laroche, 1999) no se dispersa más allá de 170 metros. Se ha pronosticado que una pequeña fracción de las semillas producidas pueden dispersarse hasta 7.1 km por vientos fuertes. Debido al reducido tamaño pronosticado para las zonas de dispersión, el control de árboles periféricos puede ser un mecanismo de control efectivo (Laroche 1999; ISC 2011).

Hidrocoria

Las semillas son aparentemente resistentes al agua y pueden permanecer en la superficie por días, lo que indica que la dispersión por corrientes de agua a grandes distancias es posible (Munger 2005). La dispersión de semillas flotantes puede verse intensificada por el viento, particularmente si las semillas caen en residuos flotantes y que las semillas empapadas no flotan (Woodall 1983 en Munger 2005; ISC, 2011).
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citação bibliográfica
CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Distribución ( Espanhol; Castelhano )

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Introducida*

2.- Distribución / 2.3 Distribución como especie invasora en otros países

ANTIGUA Y BARBUDA

ANTILLAS HOLANDESAS

BAHAMAS

BARBADOS

BENIN

CHINA

COLOMBIA

COSTA RICA

CUBA

DOMINICA

EGIPTO

FIJI

FILIPINAS

GRANADA

GUADALUPE

GUAM

GUAYANA FRANCESA

GUYANA

HAITÍ

HONDURAS

HONG-KONG

INDIA

INDONESIA

JAMAICA

MADAGASCAR

MALASIA

MALAWI

MARTINICA

MICRONESIA

MONTSERRAT

NICARAGUA

NIGERIA

NUEVA CALEDONIA

PALAU

PANAMÁ

PAPUA NUEVA GUINEA

POLINESIA FRANCESA

PUERTO RICO

REPÚBLICA DOMINICANA

REUNIÓN

SAINT KITTS Y NEVIS

SAN VICENTE Y LAS GRANADINAS

SANTA LUCÍA

SENEGAL

SUDÁFRICA

TAILANDIA

TAIWAN

TRINIDAD Y TABAGO

UGANDA

VIET NAM

ZIMBABWE
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citação bibliográfica
CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Enfermedades ( Espanhol; Castelhano )

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4.10 Enfermedades*

M. quinqenervia parece verse inusualmente libre de enfermedades, incluso en su hábitat nativo (Hepting, 1971). A pesar de que muchos insectos, nemátodos y hongos han sido encontrados en la melaleuca en la Florida, ninguno de estos agentes daña a los árboles de una manera seria. Las heladas severas causan la defoliación y matan las ramas de las melaleucas maduras, pero por lo general, los árboles se recuperan a través de brotes epicórmicos. Cuando el cámbium muere hasta el nivel del terreno, los brotes se originan del collar radical. Sin embargo, la mortandad de las plántulas causada por las heladas probablemente limita de manera significativa la cantidad de regeneración natural al norte del lago Okeechobee (Geary &Woodall, 1990).
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CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Esperanza de vida ( Espanhol; Castelhano )

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Perenne

Especie perenne (ISC 2011).
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CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Reproducción ( Espanhol; Castelhano )

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4.5 Reproducción

Melaleuca spp. tiene flores hermafroditas proterándricas. Son polinizadas principalmente por insectos pero también por aves y pequeños mamíferos. (Butcher et al., 1992). Las cápsulas de M. quinquenervia contienen un gran número de semillas que pueden ser almacenadas y liberadas si ocurren incendios u otros disturbios, las semillas pueden permanecer en los árboles por más de 10 años. Las semillas permanecen viables en el suelo entre 2 y 3 años, con excepción de localidades que se inundan por temporadas o permanentemente (ISC 2011).
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CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Usos ( Espanhol; Castelhano )

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Ornamental

En Florida, la melaleuca es una especie de ornamento común (Geary &Woodall, 1990).

Rehabilitación de suelos

En Hawaii, la especie se plantó con el objeto de conservar los suelos en los sitios deforestados. El árbol ha tenido muchos otros usos en su hábitat nativo (Geary &Woodall, 1990).

Combustible/biocombustible

El árbol entero puede ser usado como combustible de biomasa, pero presenta más dificultades en su uso que la mayoría de otras especies debido a su corteza facilmente desmenuzable y de baja densidad (Geary &Woodall, 1990).

Medicinal

En las plantaciones de Nueva Caledonia y Madagascar se extraen aceites esenciales de sus hojas, ramas y semillas por medio de hidro-destilación. Dichos aceites esenciales constituyen uno de los principales componentes antisépticos en algunos desinfectantes comerciales (Dray et al., 2006).
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CONABIO. 2012. Fichas de especie Melaleuca quinquenervia. Sistema de información sobre especies invasoras en México. Comisión Nacional para el Conocimiento y Uso de la Biodiversidad.
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Broad-scale Impacts of Fire ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the term: fire management

As of this writing (2005), no published reports describe the effects of a long-term repeated pattern of frequent burning on melaleuca. Myers and Belles [54] noted speculation that frequent burning may gradually remove the outer layers of protective bark and eventually lead to greater mortality. There is also speculation that persistent, incremental damage from herbivory may weaken melaleuca plants and leave them more vulnerable to fire damage [4] (see Biological control). For further discussion about fire as a method for controlling melaleuca see Fire Management Considerations.
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Broad-scale Impacts of Plant Response to Fire ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: competition, fire severity, litter, seed, severity

Postfire recovery in melaleuca saplings is probably influenced by fire severity
and interactions with additional environmental stressors [54,55]. For
example, field experiments [55] showed that greater fire
intensity seemed to produce comparatively greater sapling mortality. Yet a stand
subjected to a "very mild July burn" that led to less mortality in
melaleuca <3.3
feet (1 m) tall, compared with a more intense March burn, nevertheless had comparatively
greater mortality in the 3.3- to 9.8-foot (1-3 m) sapling class. The difference was attributed to flooding
immediately following the July burn [54,55].


Postfire melaleuca seedling establishment and recruitment are
variable, depending upon conditions (see Seedling establishment/growth).
Prolonged drought or flooding can substantially reduce, but rarely
eliminates, postfire seedling establishment [54].


As of this writing (2005) there are no published studies establishing a
firm causal relationship between burned sites (compared with an undisturbed ground
layer) and increased seedling establishment. There is some observational field evidence that
melaleuca germination is greater on recently burned sites compared with similar
unburned sites where vegetation, litter, and periphyton are intact, but
subsequent seedling mortality across all treatments precluded
drawing conclusions about establishment [51,54,55]. Nevertheless, Myers and Belles [54]
suggested that, on comparable sites, establishment from seed released after nonfire disturbance (i.e.
herbicide, frost, or other damage to crowns that leaves the ground layer intact)
is likely to be low compared with establishment from fire-induced seed
release.


Frequent mention is made (e.g. [110]) of the significance of
postfire nutrient availability for seedling establishment and growth
(see also information on soil nutrient competition in Site Characteristics),
but as of this writing (2005) there are no published studies documenting a postfire
fertilization effect impacting melaleuca invasion in southern Florida.

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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Common Names ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the term: tree

melaleuca

cajeput

paperbark tree

punktree
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Conservation Status ( Inglês )

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Florida Department of Environmental Quality lists melaleuca as a Class I Prohibited aquatic plant ("under no circumstances...permitted for possession, collection, transportation, cultivation, and importation...") [27].
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Description ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: adventitious, capsule, density, seed, series, shrub, tree

Melaleuca is an evergreen tree of variable form and size. Crown form ranges from open to relatively slender with few branches, depending on stand density [9,31]. Plants may be multistemmed [54] or with a single, moderately straight trunk [9,31]. In its native range melaleuca commonly appears as a 26- to 33-foot (8-10 m) "tall shrub" on dry sites exposed to fires and prevailing winds. In wet plains it grows to a 66- to 98-foot-tall (20-30 m) tree with a well-developed trunk. At "higher altitude" it takes the form of a small shrub <3 feet (1 m) tall [94]. Geary and Woodall [30] indicate average height of trees in "mature" stands in Florida "swamps" ranges from 49 to 69 feet (15-21 m), with a maximum height of 98 feet (30 m). Branches are ascending on young trees, commonly somewhat drooping on older trees [31]. Twigs are long and slender, often drooping [9].

Leathery leaves are mostly 2 to 5 inches (4-12 cm) long and 0.4 to 2 inches (1-6 cm) wide, arranged in 5 spiral rows [9,31,42,94]. Van and others [100] estimated that leaf longevity was about 2 to 4 years, depending on overall growth rates.

Inflorescences are densely flowered spikes 1 to 4 inches (3-10 cm) long. After flowering, twigs continue to elongate from the ends of spikes, producing either foliage or more flowers [9,30,42,48]. Borne terminally, growth flushes typically alternate between inflorescences and foliage [48]. Fruits are woody capsules, 0.2 inch (0.4 cm) in length and width, persistent up to a year [9,31]. Twigs and branches may contain 12 or more infructescences, each containing 30 to 70 aggregated capsules, separated by a series of leaves or bud scales [48,74].  

Ken Langeland/University of Florida

Seeds are tiny (0.02-0.04 in. (0.5-1 mm) long or a little more; up to 850,000 or more/oz. (30,000/g)) and numerous (see Seed Production). Their shape is generally asymmetric and long angular. Seed shape and size vary considerably within a capsule [30,31,42,48,112].

Further attributes of seeds and fruits, as observed by Rayamajhi and others [74] in southern Florida, are provided in the following table. Data are means and 1 standard deviation.

Infructescence length 2.4 ± 0.5 inches (6.0 ± 1.3 cm) Number of capsules/infructescence 49.0 ± 17.0 Number of capsules/cm within infructescences 8.0 ± 0.3 Number of seeds/capsule 264.0 ± 39.0 Dry weight of seeds/capsule 0.00023 ± 0.000067 ounce (6.6 ± 1.9 mg) Values are means ± standard deviations.

Bark is thick (sometimes >0.8 inch (2 cm)), corky or spongy, and composed of many thin layers [9,31,42,48,94]. On the lower trunk the outer bark layers are looser and usually become torn, ragged, and partly unrolled [9,31].

Melaleuca exhibits several morphological and physiological responses to flooding. Flooding induces rapid production of abundant adventitious aerenchymous roots along the lateral roots, upper section of the taproot, and submerged portion of the stem, elongating upward until the tips just protrude above the water's surface [48,51,80,92]. At least some of these roots are persistent, becoming dormant and dried once floodwaters recede, then producing new adventitious roots in subsequent floods [48]. Flooding may also trigger a decline in aboveground biomass production and alter stomatal performance, at least in seedlings. In a greenhouse study, Sena Gomes and Kozlowski [80] found melaleuca seedling leaf, stem and whole plant dry weight was significantly (p≤0.01) reduced following 60 days of flooding (0.4 inch (1 cm) above soil surface), but there was no effect on root dry weight. Reduced stem biomass was associated with reduced stem branching and extensive leaf abscission. Complete submersion of seedlings induces production of morphologically distinct leaves, characterized by a more lanceolate shape, reduced area per leaf, and fewer stomata. Submersion also results in shorter leaf internode length, giving submersed seedlings a "rosette-like appearance." It has been suggested that this "adaptive aquatic behavior" may increase melaleuca seedling survival during seasonal floods [43] (see Seedling establishment/growth).

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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Distribution ( Inglês )

fornecido por Fire Effects Information System Plants

Melaleuca is native to eastern Australia, New Caledonia, southern New Guinea, and adjacent Indonesia [9,41,42]. In Australia it occurs from Sydney to Cape York, usually within 25 miles (40 km) of the coast [9]. Melaleuca forests in the coastal lowlands of southeastern Queensland, Australia, have been severely reduced in recent decades due to development and are now being conserved [33].

In the continental United States, melaleuca is apparently only invasive in southern Florida [30]. It has been planted on the island of Oahu in Hawaii [114], but its spread is minimal (Skolmen 1981 as cited in [30]). Several sources indicate that it may be grown as an ornamental in southern Louisiana, Texas, and California [41,42,107], and perhaps less commonly in Puerto Rico (Little and others 1974 as cited in [30]). As of this writing (2005), there are no published accounts of melaleuca escaping cultivation in the United States outside of Florida. Atlas of Florida Vascular Plants provides a county distribution map of melaleuca in Florida.

Melaleuca was probably first introduced to southern Florida during the late 1800s to early 1900s, at several different locations (review by [48]). Meskimen [48] provided a thorough review of its introduction and subsequent spread in southern Florida. Melaleuca can now be found in both central and southern peninsular Florida [115,116]. In southern Florida extensive stands generally occur along the coasts, inland from the large metropolitan areas of Palm Beach, Broward, and Dade counties in the east and Lee County in the west. The most extensive melaleuca stands are located near the sites of original introduction. These are also the areas that have been most severely altered by human activities and where melaleuca has been most widely planted for landscape purposes (see Other Uses) [23].

In central Florida melaleuca apparently spreads little, if at all. It is found mainly in and around urban areas [30]. Protected ornamentals have been noted in Alachua County (lat 29°30'N). Stands of escaped melaleuca are generally uncommon in inland areas farther north than Lake Okeechobee, although established melaleuca stands have been observed along lakeshores as far north as Orange County (lat 28°30'N) [52]. Northward migration of melaleuca in peninsular Florida is thought to be limited mainly by frost (see Site Characteristics) [24].

Because nearly all of the scientific literature and management concern is centered around melaleuca in peninsular Florida, the following biogeographic classification systems illustrate only where melaleuca might be found in peninsular Florida. A paucity of information about melaleuca distribution outside peninsular Florida precludes use of these lists for wider distribution information. Even within peninsular Florida, comprehensive distribution information is unavailable. Therefore, these lists are somewhat speculative and may be imprecise.

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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Fire Ecology ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: basal area, capsule, competition, density, fire regime, fire severity, forest, fuel, litter, natural, organic soils, prescribed fire, presence, seed, severity, surface fire, swamp

Fire plays an important role in regulating the structure and function of plant communities in southern Florida [56,104]. According to Meskimen [48], "the ability of melaleuca to withstand fire cannot be questioned, and it is probable that its existence and perpetuation are actually favored by fire." Myers and Belles [54] also suggested "melaleuca's spread is facilitated by fire."

Fire adaptations: Melaleuca possesses several traits that permit its survival following fire, and perhaps even aid in its perpetuation and spread.

Photo courtesy the South Florida Sun-Sentinel 2005

Bark characteristics: Two distinct characteristics of melaleuca bark are considered important fire adaptations. First, the thick, spongy, multilayered bark can hold considerable moisture, particular within the innermost layers. This protects the cambium from heat damage during a fire [24,51,94,96,102], allowing the plant to recover via epicormic sprouting along sections of undamaged stem (see Plant Response to Fire). The thickest, most moisture-laden bark is found around the bole and large branches of mature trees, and cambium underlying such bark is well protected. Younger, thinner branches on mature trees and most bark-covered surfaces on younger plants are more susceptible to heat-damaged cambium [52]. Only tissues within "a few millimeters" of the bark surface are susceptible [48]. According to Van and others (unpublished data, as cited in [99]), "large" variations in melaleuca bark thickness have been observed "at different sites" in southern Florida.

Paradoxically, in addition to providing protection from fire, the dry, shaggy outer layers of bark are highly flammable and provide a ladder fuel that can quickly carry fire into the canopy, destroying leaves and branches [51,94,102]. It is suggested that where melaleuca invades forested habitats in southern Florida, this structure is likely to increase probability of lethal crown fires that are uncommon in native southern Florida forest communities [104] (see FIRE REGIMES).

Serotiny: Melaleuca stores mature seed in closed capsules that remain attached to the branches until they are desiccated [96,102]. Although natural twig mortality causes continual release of some seeds, fire triggers release of millions of seeds [102]. Postfire seed release is apparently triggered by vascular injury to the capsule [48]. Capsules are unlikely to ignite due to their dense, woody structure and the short residence time of most crown fires. Seeds are held in the capsule until several days after the fire, so few seeds are exposed and consumed in the fire [102]. Capsules begin opening within a few days postfire [51]. Most canopy-held seeds are released during the first several weeks following fire [54,55]. As of this writing (2005) no direct evidence exists linking fire severity with the proportion of canopy-held melaleuca seed released following fire. Nevertheless, assuming that seed release is triggered by an injury-induced break in the vascular connection between the capsule and the plant, it is logical to assume that the degree of injury, which itself is proportional to intensity and duration of heating, is closely related to the proportion of canopy-held seed released. For more information see Seed dispersal.

Postfire germination and seedling establishment: Melaleuca can yield a rapid and prodigious postfire seed rain that, coupled with postfire site conditions that are conducive to germination and seedling establishment, can subsequently establish sizable populations of melaleuca seedlings. Melaleuca is one of the 1st postfire species to colonize in many southern Florida habitats [52]. Postfire conditions of reduced competition and ash-enriched soil are likely to promote establishment and rapid growth of seedlings [96]. Results from field studies in Big Cypress National Preserve suggest melaleuca germination is greater on recently burned sites compared with similar unburned sites where vegetation, litter, and periphyton are intact [51,54,55]. Meskimen [48] observed that "densest pockets of melaleuca seedlings occur around seed trees which bear the scars of recent grass fires." In a field study located in wet prairie-dwarf cypress habitats in Big Cypress National Preserve, Myers and others [55] observed substantially greater melaleuca germination where seeds were hand-dispersed within 30 days following prescribed fire, compared with adjacent unburned plots. Recruitment beyond seedling stage was extremely low in both treatments due to subsequent dry or flooded conditions. Hartman [34] examined seedling establishment following a fire in a stand of 6 melaleuca trees approximately 20 feet (6 m) tall, 3 of which survived fire. By 9 postfire months, seedling density ranged from 0.5 to 4.7/m² in a 10 m² area around the surviving trees. At 21 postfire months, an average of 58% of seedlings initially surveyed (at 9 postfire months) had survived. Myers [51] described how seed dispersed following a late-dry season fire is most likely to yield a successfully established stand of new melaleuca seedlings: "Rapid germination after initial moisture application would be an advantage to seed released at the beginning of the wet season, especially if the soil remains moist to wet but not flooded for any extended period. Massive amounts of melaleuca seeds are most commonly released following a late dry season fire. This puts the seed on the ground at the most opportune time" [51]. For more information see Regeneration Processes and Plant Response To Fire.

Postfire sprouting: While foliage, twigs, and smaller branches may be consumed or severely damaged by fire, they are rapidly replaced by new growth originating from epicormic buds on the main stem and larger branches [24,30,48,51,52,53,102]. Even seedlings may have some ability to recover from fire-caused injury by sprouting from the base [48]. Any melaleuca plant that survives fire is well positioned to exploit the postfire nutrient pulse through its existing root system [102]. For more information see Asexual regeneration and Plant Response To Fire.

Fuel: Melaleuca invasion may alter FIRE REGIMES (see below) in southern Florida by changing fuel conditions. In doing so, site conditions may be influenced in ways that favor melaleuca at the expense of native species.

One way melaleuca invasion can alter fuels is by increasing surface litter. Flowers [28] indicates replacement of sawgrass by melaleuca in southern Florida substantially increases surface fuel loads. These changes in surface fuels may increase ignition of organic soils, "a condition that is much less common in the cooler burning sawgrass fires" [28] and often lethal to sawgrass [53]. A review by Greenway [33] suggested that litterfall in some melaleuca forests in eastern Australia is among the highest recorded for Australian temperate/subtropical sclerophyll forests. Van and others [100] monitored litterfall at 6 melaleuca-dominated wetland forest sites in southern Florida. Total litterfall averaged 8.3 tonnes dry weight/ha/yr (range 6.5-9.9 t/ha/yr in 3 different habitats) from July 1997 to June 1999. Average proportions of litter components over 2 years were: leaves 70%, small wood (<0.4 inch (1 cm) in diameter) 16%, capsules 8%, bracts (both floral and foliar) 4%, and flowers 3%. Litterfall biomass was significantly (p<0.001) greater in seasonally flooded (9.9 t/ha/yr) habitats than in either nonflooded (7.5 t/ha/yr) or permanently flooded (8.0 t/ha/yr) habitats [99]. Litterfall occurs year round, but generally increases during dry and windy periods [33,99].

Changes in aerial fuels resulting from melaleuca invasion, coupled with flammable bark that serves as ladder fuel, may also alter fire severity in ways that favor melaleuca. Wade [102] suggested that the combination of loose flammable bark and volatile foliage result in a high propensity for torching of melaleuca trees during fire. In addition, melaleuca frequently establishes extremely dense stands (several thousand stems/acre), making them highly susceptible to running crown fires [102,104]. Extensive areas of southern Florida contain major vegetation types that are primarily adapted to surface fire (see Myers [53]). However, as discussed above and below, melaleuca is well adapted to survive most fires regardless of severity.

In addition to litterfall data [100] (see above), information on melaleuca allometry is available for estimating melaleuca live fuels. Van and others [99] measured stand characteristics and biomass at 6 sites in southern Florida. These sites were blocked in pairs according to hydrologic conditions (dry, seasonally wet, and permanently wet habitats). Stand characteristics varied substantially between sites. Basal area ranged from 78.4 to 190.9 m²/ha, plant density ranged from 8,000 to 132,200 individuals/ha, and aboveground biomass ranged from 129 to 263 t/ha. Regression equations for estimating aboveground biomass, based on stem diameter, height, and dry weight, did not differ significantly (p=0.2017) by site. For regression equations and site-specific data see [99]. Rayachhetry and others [69] also provide detailed information on melaleuca allometry in southern Florida habitats.

FIRE REGIMES: Melaleuca invasion in southern Florida is of major concern, in part because the presence of melaleuca may alter native FIRE REGIMES. For example, melaleuca invasion in pine flatwoods can alter the major native fire regime of frequent (1- to 5-year return interval), low-severity surface fires, instead becoming a mixed regime with less frequent (<35 to 200-year return interval) fires and greater incidence of crown fires. Crown fires are typically nonlethal to melaleuca trees but usually result in pine mortality [53]. As Myers [53] explained, "fire in stands of melaleuca containing any mature capsule-laden individuals leads to the spread of the melaleuca forest into susceptible habitats nearby, resulting in a shift from a fire regime controlled by surface fuels to one dominated by aerial fuels. This is a fire regime heretofore unknown in the Florida environment and is likely to result in significant changes to wetland habitats, especially the species composition. Once melaleuca gets a foothold in a pine- or cypress-dominated habitat, the shift from low-intensity to high-intensity fire regime results in the mortality of the native pine and cypress and subsequent conversion to melaleuca" [53].

The melaleuca fire regime is difficult to categorize. Myers [53] classified the fire regime in southern Florida melaleuca forests as mixed-severity to capture the variation in fire severity among these habitats: "The fire regime mediating Florida's melaleuca forests varies from one characterized by low-intensity surface fires in savannas, with some torching of individual trees, to high-intensity crowning fires in denser stands." "Understory burns occur in melaleuca savannas. In mixed stands of melaleuca and cypress or pine, the fires are lethal to cypress or pine but not to melaleuca. In pure melaleuca forest, high-intensity crowning fires are not lethal to the main stem of the trees. The combination of limited stem mortality and high-intensity fire is unusual in North American ecosystems. Placing melaleuca forest in the mixed fire regime is a compromise between low mortality and high intensity" [53].

Research is needed to ascertain the impacts of melaleuca-mediated changes in fire regime on biotic and abiotic components of southern Florida's ecosystems. For example, does melaleuca invasion result in significant levels of organic soil consumption resulting from severe ground fires, compared with areas of intact native flora? If so, what ecosystem changes are wrought by such reductions in organic soils?

Although melaleuca has evolved several adaptations that permit its exploitation of fire within the plant communities and ecosystems of southern Florida, the relationship between melaleuca and fire in its native habitats is unclear. Seasonal swamp forests and woodlands in northern Australia that are dominated by Melaleuca spp. are "adapted to regular fire" [89], although the occurrence of Melaleuca quinquenervia appears limited mostly to eastern Australia (see General Distribution). A review by Meskimen [48] indicates that melaleuca is a fire-seral species in at least parts of its native range. However, Balciunas and Burrows [4] suggested that in eastern Australia it "is considered fire intolerant, and natural stands are confined to wetlands." It was further asserted that melaleuca fire tolerance in Australia is reduced by stress associated with insect herbivory, and that perhaps a classical biological control program using Australian insect herbivores could reduce melaleuca's fire tolerance in southern Florida [4].

The following table provides fire return intervals for important plant communities and ecosystems where melaleuca might be found in peninsular Florida. Find further fire regime information for the plant communities in which this species may occur by entering the species name in the FEIS home page under "Find FIRE REGIMES".

Community or Ecosystem Dominant Species Fire Return Interval Range (years) mangrove Avicennia nitida-Rhizophora mangle 35-200 Everglades Cladium mariscus ssp. jamaicense <10 melaleuca Melaleuca quinquenervia 53] slash pine Pinus elliottii 3-8 slash pine-hardwood P. elliottii-variable 103] South Florida slash pine P. elliottii var. densa 1-5 [53,103] longleaf-slash pine P. palustris-P. elliottii 1-4 [53,103] longleaf pine-scrub oak P. palustris-Quercus spp. 6-10 [103] oak-gum-cypress Quercus-Nyssa-spp.-Taxodium distichum 35 to > 200 [53] southeastern oak-pine Quercus-Pinus spp. < 10 live oak Q. virginiana 10 to103] cabbage palmetto-slash pine Sabal palmetto-Pinus elliottii 53,103] baldcypress Taxodium distichum var. distichum 100 to > 300 pondcypress T. distichum var. nutans 53]
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Fire Management Considerations ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: cohort, crown fire, fire exclusion, fire suppression, fuel, ground fire, organic soils, prescribed burn, prescribed fire, seed, severity, top-kill, wildfire

Melaleuca invasion may result in changes in fuels and fire behavior relative to what might be expected in native communities. Melaleuca invasion presents novel challenges for fire suppression in southern Florida, mostly related to increased incidence of crown fire, spotting, and ground fire in organic soils [28,102]. Flowers [28] provides a review of fire suppression problems and tactics for melaleuca-invaded sites in southern Florida.

In communities where melaleuca is replacing sawgrass, development of dense melaleuca stands often provides substantial increases in both aerial and surface fuel loads. When fires occur in invaded areas, these changes in fuel conditions may increase incidences of fire spotting. Melaleuca invasion in sawgrass habitats is also implicated in the increased incidence and severity of ground fire in organic soils (see Fuel). Increased burning of organic soils may have serious implications for smoke management due to the volume and intensity of smoke that these ground fires can produce [28].

Fire spread rates may be greater in melaleuca invaded areas, compared with "pine/palmetto/gallberry type fires." This is attributed to a combination of lighter, more easily ignitable ground fuels, peeling melaleuca bark that acts as a ladder fuel, and the increased incidence of spotting [28].

In general, melaleuca management is made difficult by the fact that disturbance resulting in canopy damage in trees of seed-bearing age leads to a rapid purge of canopy-held seed [55]. Of particular difficulty are occasions where understory or ground layer vegetation is also disturbed, such as following fire. Ensuing seedling establishment may initiate a new, often denser melaleuca stand. However, excluding fire (or other disturbance) from established melaleuca stands is probably not a desirable alternative. Although fire exclusion may limit the spread of melaleuca, subsequent successional changes may be undesirable. Further, even with active suppression fire is probably inevitable in the long term [55].

Melaleuca-infested sites that experience wildfire should be given high priority for control, since the postfire environment is probably the most susceptible to melaleuca population increases. The quantity of seedlings established after fire is likely to be huge, and initial growth may be rapid relative to what would occur on an equivalent unburned site. In the event of a wildfire releasing vast quantities of seed, seed trees should be treated with herbicide within 1 postfire year to prevent replenishment of seed stores, then establishing seedlings should be controlled [54]. Saplings that survive the fires may also be treated with herbicides [55].

It is unclear what time interval between fires is feasible or most effective for controlling postfire seedlings. Myers and Belles [54] found a 2-year interval between fires to be effective, although they acknowledged results may differ depending on site productivity. Fuel loads may be too low to carry a 2nd fire for 2 to 3 years, perhaps limiting the effective use of fire as a means to control seedlings (see below). However, field studies did show that gulfhairawn muhly (Muhlenbergia capillaris var. filipes) prairie can be reburned within 2 years and that nearly all seedlings established after the initial seed release event could still be killed (see IMMEDIATE FIRE EFFECT ON PLANT). Follow-up inspections and treatments are likely to be needed [54].

On sites where a prescribed fire is planned, but that contain scattered seed-bearing melaleuca, these "outliers" should be dealt with prior to burning. If outliers cannot first be controlled, burning should be conducted while the soil is still wet enough to stimulate germination, but close enough to the onset of dry season to limit seedling establishment and survival. In addition to surveying for and controlling seedlings that establish after fire, seed trees should be controlled before they replenish seed stocks [54]. 

Stand structure and age class structure can also be important considerations for mitigating postfire seed release. Mature and emergent melaleuca trees release tremendous amounts of seed after burning, while fires in even-aged "dog hair" stands may burn without releasing many seeds because they produce less seed (see Seed production). "In control efforts where complete stand eradication is not possible in the short term, it may be useful to target mature outliers as well as emergents in dense stands. In other words, remove the trees producing the most seed first. A wildfire in the remaining stand may release relatively few seeds" [54,55].

A study by Myers and others [55] demonstrated the influence of timing, both of burn season and weather/hydroperiod, on melaleuca germination, seedling establishment, and recruitment to sapling status, in the postfire environment. Where seed-bearing trees are present, fire often results in rapid (within 5 weeks after fire) release of most (>95%) canopy-stored seed. Most germination occurs when seeds encounter moist soil. When seeds fall on dry substrate, germination is delayed until the next significant rain event. Because vast quantities of seed are released, large numbers of seedlings may result under optimum germination conditions. However, it appears that substantial seedling mortality is common when the site becomes either flooded or dries. The seasonal weather pattern in southern Florida is relatively predictable. Melaleuca seedling survival is greatest when seedlings establish during the wet season as flood waters wane. Seedling mortality is greatest for cohorts established during the transition from wet season to dry season. But more punctuated weather episodes such as brief droughts or short-lived rainy periods are common as well, and can lead to correlative periods of germination, establishment and mortality. The predictive power of weather forecasting over periods of weeks to months has obvious limits. Nevertheless, planning prescribed fires for times that put seed on the ground when it is least likely to result in newly established melaleuca cohorts is desirable [55].

Melaleuca seedling establishment can be largely controlled using prescribed fire [54]. However, determining the appropriate timing of burn treatments for seedling control can be difficult. Burns must be conducted after seed rain is complete and most germinable seeds have germinated, but before establishing seedlings are large enough to sprout following fire. A general rule governing this timing probably does not exist. Intervals between seed release and seedling establishment, and between establishment and the ability to survive fire, varies among sites, between years, and within a year depending on moisture conditions following seed rain, prefire fuels, seed rain volume and duration, and seedling growth rates [54]. Results of a study by Myers and Belles [54] suggest that seedlings <3 months old almost never sprout in response to top-killing. Also, at any given age, larger seedlings (height or diameter) were significantly (p<0.01) more likely to survive top-kill by fire or clipping, compared with smaller seedlings. Mean height at which seedlings first demonstrated sprouting following burn treatments ranged from 1.9 to 6 inches (4.7-15.2 cm), and mean basal diameter ranged from 0.07 to 0.12 inch (0.17-0.31 cm). For treatment descriptions and detailed results, see [54]. Seedling size may be a more critical metric than seedling age in predicting control effectiveness using fire. Therefore, on sites that support rapid and robust melaleuca seedling establishment and growth, the window of opportunity for controlling seedlings with prescribed fire is likely to be shorter than on less productive sites. Myers and Belles [54] "cautiously" recommended conducting fire treatments within 6 months of seedling establishment on "high quality" melaleuca sites, while suggesting that a 24-month postestablishment window is possible on sites where seedling growth is slowest. In their field studies in Big Cypress National Preserve, they found >90% of seedlings ≤2 years old were killed by fire.

Unfortunately, any seed trees that survive fire may have replenished their store of canopy-held seed by the time enough fuel has accumulated to carry a second fire. Research in Big Cypress National Preserve demonstrated that surviving melaleuca seed trees replenished stores of seed capsules within 2 years after the initial fire, and a 2nd prescribed burn resulted in an additional cohort of establishing seedlings. Depending on the site and the plant community, successive burns may largely stave off establishment of new seedlings, even though mature seed trees remain on site and producing seed [54,55].

Most evidence indicates that a single fire, and perhaps several periodic fires, are unlikely to cause any substantial mortality in mature melaleuca stands (see Fire Effects discussion above). Meskimen [48] related an anecdote about a stand of melaleuca planted as a windbreak around sugarcane (Saccharum officinarum) fields, which were burned each year. While details of fire behavior and effects were not described, he stated that trees were "exposed to extreme heat and sometimes direct fire which causes complete defoliation." These trees displayed no signs of damage other than fire scarred bark, and seemed to exhibit normal growth. Nevertheless, Myers and Belles [54] suggested that the ramifications of a prolonged program of repeated burning in melaleuca stands are unknown.

Disturbances that release the canopy seed bank but leave intact fuel beds offer the best opportunities for seedling and sapling control with fire. Unlike postfire seedling establishment, in which fuels sufficient to kill newly established seedlings are consumed in the original fire, an episode of mass seed dispersal and germination associated with a nonfire disturbance would be accompanied by retention of predisturbance fuels and potential for burning many vulnerable young melaleuca seedlings. On most sites, for instance, regeneration established from seed released due to herbicide-kill or frost-damage could easily be killed by burning [54,104]. Again, burning should be implemented after most seeds have dispersed and germinated but before seedlings have reached a size where many are likely to survive the fire. In some instances germination may be delayed for months due to either flooding or drought, and growth after germination will vary greatly from site to site. Sites where seeds have been released must be monitored to verify that germination has occurred and that seedlings do not exceed a meter in height [54].

Timmer and Teague [93] indicate controlled burning can be used to eliminate seedlings or sprouts that occur following control of adult seed-bearing trees (see the discussion on Control and subsequent information on various nonfire control methods). Tuck and Myers [95] have advocated use of properly timed prescribed fire for melaleuca management. Objectives can include reducing seed crops, preventing flowering, eliminating seedlings, and thinning young stands. They also suggest that herbicides may be more effective on fire-weakened melaleuca than on unburned plants. A melaleuca control program on the Arthur R. Marshall Loxahatchee National Wildlife Refuge in southern Florida has utilized prescribed fire following herbicide application to control seedlings and to further weaken surviving mature trees [46]. Myers and others [55] recommended prescribed burning as a follow-up 2 to12 months after pulling small plants and cutting and herbicide treatments for larger plants. For dense stands, Myers and Belles [54] speculated that burning followed by ground-based foliar herbicide application to sprouts at 3 to 9 months postfire, is more effective than spraying untreated or unburned stands from aircraft.

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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Growth Form (according to Raunkiær Life-form classification) ( Inglês )

fornecido por Fire Effects Information System Plants
More info on this topic.

More info for the term: phanerophyte

RAUNKIAER [65] LIFE FORM:
Phanerophyte
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Habitat characteristics ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: hydroperiod, natural, organic soils, presence, seed, severity, wildfire

The following information concerning site characteristics is intended in reference to melaleuca growing in peninsular Florida, except where otherwise noted.

General biogeography: The most favorable sites for melaleuca establishment, with regard to moisture conditions, include depressions in pine flatwoods, the broad ecotonal region where pine and cypress mix, and drained organic soils [23]. Other sites where melaleuca has been mentioned as occurring include disturbed wet prairie [2], wet pine flatwoods [115,116], cypress swamps, "low areas" [30], and generally "disturbed sites" [115,116]. Melaleuca invades the littoral zone of Lake Okeechobee, where it was originally planted along the shoreline in the 1940s to stabilize the newly constructed levee [44]. According to Greenway [33] melaleuca forests in southeastern Queensland, Australia, are associated with coastal floodplains, where it forms open, relatively monospecific stands that burn regularly [24].

Disturbance: Melaleuca's invasiveness may be enabled by natural disturbance, especially fire. Massive seed rain typically follows disturbance such as fire, frost, and breakage from wind events (see Seed dispersal). Once established, melaleuca is likely to attain and retain dominance on sites visited by frequent fire (see FIRE REGIMES). March to June is typically considered wildfire season in southern Florida [76].

Aside from invading natural communities in southern Florida, disturbance associated with human activities can also promote melaleuca invasion. Areas where the native plant community has been compromised, combined with favorable moisture conditions, present opportunities for melaleuca colonization. Examples include drained fields with ridges and furrows on abandoned farmlands, depressions in stump-harvested pinelands, and road and canal construction through wetlands that create road embankments, ditches, levees, and borrow pits [23,51,52]. In their review, Geary and Woodall [30] point out that lowering of water tables through drainage and excessive groundwater withdrawals has increased the area easily invaded by melaleuca in Florida. The effect of these changes is to shorten the annual hydroperiod, leading to increases in size and severity of wildfires (see Wade and others [104]). Because melaleuca tolerates fire, seasonal drought, and seasonal flooding, it may invade to the detriment of native plants on these sites [30].

Soils: Most reviews (e.g. Ewel [24], Hofstetter [35]) indicate that while melaleuca establishes best on sandy soils, it can survive on nearly any soil in southern Florida. It is also commonly found in "typical 'glades' ecosystems," characterized by "high organic soils" [63]. Many soils in southern Florida that support melaleuca are shallow and underlain by limestone [30]. Rayachhetry and others [69] studied melaleuca in and around the freshwater marshes of the Everglades in southern Florida. Populations occurred naturally on poorly drained organic soils in "dry, seasonally flooded, and permanently flooded" habitats. In general, soils supporting melaleuca are in the orders Entisol, Spodosol, and Histosol (USDA 1975 as cited in [30]).

There is some disagreement about the influence of pH on melaleuca success on different soils in southern Florida. Although melaleuca is often found growing in soils with pH >7 "in the eastern Everglades," a laboratory experiment by Kaufman [38] indicated that plants may perform better in more acidic soils. Biomass and height at 150 days, and growth rate from 0 to 150 days were all significantly (p<0.0001) greater for seedlings grown at pH 6.9 than at pH 7.3 [38]. Although melaleuca can be found growing, and sometimes reproducing, on alkaline marl soils in southwestern Florida, laboratory research [48] indicated poor germination and poor seedling growth on these soils. Acid sandy soils, which support many well-developed melaleuca stands in southwestern Florida, were generally more conducive to germination in these experiments than other soils. Myers [51] also noted from experimental evidence that melaleuca seedlings establish best on acid-sandy soils. Seedlings planted on alkaline-marl soils were stunted and chlorotic. Myers and Belles [54] found that seedlings grown in pots using pineland sand soils (pH 5.6; low nutrients) collected from Big Cypress National Preserve established and grew substantially better than seedlings grown using commercial potting mix (pH 7.0; high nutrients). Native melaleuca sites in eastern Australia commonly have soil pH ≤6 (Kaufman personal observation cited in [38]).

But Woodall [111] was skeptical of the influence of soil pH on melaleuca success and reported the following field observations: (1) A 1.2-m-deep soil pit was dug in a vigorous melaleuca stand in Lee County. The soil pH was 4.4 at -7.9 inches (-20 cm) and 8.0 at -20 inches (-50 cm). Roots proliferated all the way to the bottom of the pit. These pH values encompass virtually the entire range of pH to be expected in surface soils in southern Florida. (2) Sandy surface soils of pine flatwoods in Lee County that have been heavily infested with melaleuca can have a pH as high as 8.1. (3) Even marl soils, which in Meskimen's lab test [48] showed no germination, today support melaleuca reproduction. Therefore, according to Woodall [111], "the hypothesis cannot be supported that melaleuca reproduces poorly where pH is above 7, and furthermore, we cannot expect a map of soil pH to tell us where melaleuca is incapable of invasion."

Woodall [111] also offered the following insights on melaleuca and soil nutrient competition: "Sites that are generally considered nutrient-poor (such as pine savannas or wet prairies) support a reasonably vigorous growth of melaleuca. How can the species accomplish this? Its ability to root deeply in periodically flooded soils is one explanation. When pines and melaleuca grow together on the same site, melaleuca's lateral roots are deeper than those of pine. Furthermore, melaleuca can send vertical roots straight down to the water table. The downward movement of leached nutrients stops at the water table, so a species (like melaleuca) that can physiologically tolerate the conditions near the water table has an obvious nutritional advantage over plants that are restricted to the more leached surface soils."

Melaleuca may tolerate some soil salinity [24,111], although these conditions are probably less than optimal [111].

Climate: Wade and others [104] provided the following review of climate in southern Florida: "The climate is subtropical with alternating wet and dry seasons. Average annual precipitation is between 45 and 65 inches (114-165 cm), depending upon location, and is characterized by wide annual fluctuations- from less than 30 to over 105 inches (76-267 cm). Between 70 and 80 percent of the rain generally falls during the May-to-October wet season. Average annual temperature is 71° to 75 °F (22-24 °C), but below-freezing temperatures can be expected several times a year in the low-elevation interior glades. Frost can be expected in all South Florida counties about once every other year, but severe cold snaps...are very unusual and have an immediate and profound effect on the composition of plant and animal communities" [104].

Where frequent and/or prolonged periods of freezing temperatures become increasingly common , melaleuca becomes less invasive. Melaleuca occurs "abundantly" within USDA plant hardiness zones 9a to 10b [96], where average annual minimum temperature is 20° to 40 °F (-6.7° to 4.4 °C). Frost occurs in most years in coastal southern Queensland, Australia (Coaldrake 1961, as cited in [111]), where melaleuca is native. Freezing temperatures damage mature trees, resulting in branches dying back to varying degrees depending on severity of the freeze [78,96]. Mature trees generally recover by epicormic sprouting [96]. Seedlings and small saplings are occasionally killed during freezes, but are usually only top-killed [78]. Freezing weather may retard growth of individual trees and thin melaleuca stands, but elimination of affected populations is not likely [111]. Woodall [111] observed that the record freeze of January 1977 in southern Florida did not kill many, if any, mature trees. Many trees lost all their foliage and fine branches but subsequently recovered by sprouting from dormant epicormic buds. Senescent leaves and immature growth flushes were typically damaged, while mature leaves were sometimes unharmed. A few saplings were killed to the ground but responded by sprouting from the "root collar" (see Asexual regeneration) [111]. Geary and Woodall [30] suggested that periodic cold temperatures probably limit melaleuca natural regeneration north of Lake Okeechobee. But noting others' observations of recovery following complete freeze-induced defoliation, Turner and others [96] suggested that melaleuca may not be freeze-limited in its current southern U.S. distribution.

Hydroperiod: Once established, melaleuca tolerates extended flooding and moderate drought [24,54]. In a laboratory experiment, Lockhart and others [44] studied responses of melaleuca saplings (~1.6 feet (0.5 m) tall and 1-2 years old) to various hydroperiods. Over the 53-week study period saplings exposed to a longer hydroperiod grew significantly (p<0.004) taller, with significantly (p<0.04) more branching, compared with saplings under a shorter hydroperiod. Hydroperiod had no effect on final root or shoot biomass or final stem diameter. Complete submersion for 8.5 weeks consistently resulted in ≈ 20% mortality [44]. Although melaleuca is often found growing under saturated to inundated conditions, growth is best when soil is moist but not saturated. A laboratory experiment by Kaufman [38] demonstrated that biomass and height at 150 days, and growth rate from 0 to 150 days, were all significantly (p<0.0001) greater for seedlings grown in a moist medium compared with saturated soil.

The seedling stage is where melaleuca is most susceptible to flooding and drought (see Seedling establishment/growth). Even in the presence of a seed source melaleuca does not successfully establish in every year or invade every community equally. Wetter sites are more susceptible in drier years, while drier sites may see greater establishment during wetter than average years [35,54].

Hawaii: In Hawaii, neither fire nor widespread hydrologic alteration are common. Therefore, melaleuca does not benefit from these kinds of site conditions in Hawaii as it does in Florida. Melaleuca grows "fairly well" on all Hawaiian soils, including calcareous beach sand, but does best on Inceptisols (Dystrandrepts), Ultisols, and Oxisols developed on basalt ash or lava rock of pH 4.5 to 5.5 [30]. It is found from sea level to 4,500 feet (1,400 m) elevation. Trees grow well in rainfall of 40 inches (1,020 mm) at lower elevations (Skolmen 1980 as cited in [30]), and 200 inches (5,080 mm) at higher elevations. "Good growth" occurs where mean annual temperatures are between 65° to 75 °F (18-25 °C), and apparently trees grow in even cooler temperatures at higher elevations [30].

Australia: In eastern coastal Australia where melaleuca is native, its distribution is centered around 26° latitude, in areas characterized by humid tropical/subtropical climate, wet summers and dry winters, frequent fire, elevations from sea level to 330 feet (100 m), occasionally to 540 feet (165 m), and that are relatively frost free (reviewed by [9,96]). Typical sites are along stream and estuary banks and in marshes and seasonal swamps [9]. In southeastern Queensland, melaleuca forests are seasonally inundated (up to 20 inches (50 cm) deep for 2-6 months) during the wet season [33]. The following climate data were compiled from 88 locations across eastern coastal Australia [10]:

  Minimum Maximum Annual mean temperature 62.8 °F (17.1 °C) 79.7 °F (26.5 °C) Coldest month minimum temperature 40 °F (4.3 °C) 68.7 °F (20.4 °C) Hottest month maximum temperature 79 °F (26.1 °C) 92.7 °F (33.7 °C) Annual temperature range 53.4 °F (11.9 °C) 77.7 °F (25.4 °C) Wettest quarter mean temperature 59.4 °F (15.2 °C) 81.5 °F (27.5 °C) Driest quarter mean temperature 56.8 °F (13.8 °C) 78.1 °F (25.6 °C) Annual mean precipitation 33.0 inches (837 mm) 135 inches (3,438 mm) Wettest month mean precipitation 4.6 inches (117 mm) 26.5 inches (672 mm) Driest month mean precipitation 0.08 inch (2 mm) 3.4 inches (86 mm) Annual precipitation range 2.1 inches (54 mm) 23 inches (586 mm) Wettest quarter mean precipitation 13.2 inches (336 mm) 75 inches (1,900 mm) Driest quarter mean precipitation 0.35 inch (9 mm) 10 inches (260 mm)
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Habitat: Cover Types ( Inglês )

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This species is known to occur in association with the following cover types (as classified by the Society of American Foresters):

More info for the term: cover

SAF COVER TYPES [26]:




70 Longleaf pine

71 Longleaf pine-scrub oak

73 Southern redcedar

74 Cabbage palmetto

83 Longleaf pine-slash pine

84 Slash pine

85 Slash pine-hardwood

89 Live oak

100 Pondcypress

101 Baldcypress

102 Baldcypress-tupelo

103 Water tupelo-swamp tupelo

104 Sweetbay-swamp tupelo-redbay

105 Tropical hardwoods

106 Mangrove

111 South Florida slash pine
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Habitat: Ecosystem ( Inglês )

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This species is known to occur in the following ecosystem types (as named by the U.S. Forest Service in their Forest and Range Ecosystem [FRES] Type classification):

ECOSYSTEMS [29]:





FRES12 Longleaf-slash pine

FRES41 Wet grasslands
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Habitat: Plant Associations ( Inglês )

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This species is known to occur in association with the following plant community types (as classified by Küchler 1964):

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KUCHLER [39] PLANT ASSOCIATIONS:




K079 Palmetto prairie

K080 Marl everglades

K090 Live oak-sea oats

K091 Cypress savanna

K092 Everglades

K105 Mangrove

K112 Southern mixed forest

K113 Southern floodplain forest

K116 Subtropical pine forest
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Habitat: Rangeland Cover Types ( Inglês )

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This species is known to occur in association with the following Rangeland Cover Types (as classified by the Society for Range Management, SRM):

More info for the terms: cover, fresh, marsh

SRM (RANGELAND) COVER TYPES [81]:




805 Riparian

806 Gulf Coast salt marsh

807 Gulf Coast fresh marsh

810 Longleaf pine-turkey oak hills

811 South Florida flatwoods

813 Cutthroat seeps

814 Cabbage palm flatwoods

816 Cabbage palm hammocks

817 Oak hammocks

818 Florida salt marsh

819 Freshwater marsh and ponds

820 Everglades flatwoods

822 Slough
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Immediate Effect of Fire ( Inglês )

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More info for the term: crown fire

Fire usually kills many, if not most, melaleuca seedlings [54,93]. According to Timmer and Teague [93] fire kills most seedlings less than about 12 inches (30 cm) tall. Based on results from field experiments, Myers and Belles [54] predicted that most fires will kill more than 90% of seedlings under 8 inches (20 cm) tall. Survival generally increases with plant size [54]. Fire effects on saplings are variable and depend on individual fire behavior and season of burn (see Plant Response to Fire) [54,55]. Myers and Belles [54] predicted that fire will generally not kill saplings larger than 6.6 feet (2-3 m) tall, but may cause >50% mortality of saplings smaller than about 20 inches (≤50 cm) tall.

A single fire results in little to no mortality in mature melaleuca stands [30,54] despite a high occurrence of torching and crown fire in melaleuca-invaded communities (see Fire Ecology or Adaptation).

Fire apparently results in little, if any damage to canopy-held seeds. According to Woodall [112], even a hot crown fire is unlikely to kill more than a "minor percentage" of these seeds.

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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Impacts and Control ( Inglês )

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More info for the terms: basal area, cohort, competition, density, fire management, fire regime, forest, frequency, fuel, herbaceous, hydroperiod, interference, litter, natural, nonnative species, prescribed burn, prescribed fire, presence, seed, seed tree, severity, stand-replacing fire, succession, swamp, top-kill, tree

Impacts: Melaleuca has been called "the greatest exotic weed threat" to wetlands in southern Florida. Its impacts threaten natural areas such as Big Cypress National Preserve and the Everglades. Systematic reconnaissance flights indicated that by 1992 there were 119,000 acres (48,160 ha) of melaleuca-infested habitat in Big Cypress National Preserve [59]. Everglades National Park is 1 of only 3 sites internationally listed by The International Biosphere Reserve, World Heritage, and Ramsar as critical reserves. The native flora of southern Florida represents a unique assemblage of communities. Southern Florida encompasses the only region of the continental United States where temperate, subtropical and tropical floral elements coexist. This unique area has produced approximately 65 endemic plant taxa, many of which are threatened due to habitat diminishment (reviewed by [96]).

Melaleuca's negative impacts in southern Florida largely stem from the species's interference with and displacement of native species [21]. A review by Hofstetter [35] indicates that in the Everglades and southeastern Florida melaleuca may invade "essentially all types of communities, including those where vegetative components appear to be healthy and presumed" to be "comparable to historical vigor." Intact native communities may be more resistant to invasion in southwestern Florida but are still susceptible, particularly following unnatural disturbance or other human-caused environmental degradation.

Presence of melaleuca in fire-maintained sawgrass communities can promote conversion of these habitats to melaleuca forest. Everglades marshlands are comprised of fire-maintained communities of mostly sawgrass prairies. Natural fires periodically eliminate the native, fire-intolerant hardwoods that would otherwise colonize this habitat. However, because melaleuca is so well-adapted to fire it is able to persist and even thrive in this environment, eventually shading out the herbaceous community and transforming the site into a melaleuca forest [96]. See Habitat Types and Plant Communities for more information about specific taxa and communities that are potentially impacted.

Conversion of native forest types to melaleuca forest may or may not impact understory species composition and density, depending on the community invaded. Where invaded and uninvaded forest overstory structure is similar, casual observation indicates that the understory may be relatively unchanged, such as in cypress swamps and pine flatwoods where melaleuca establishment is typically "not dense enough" to alter stand structure. Understory vegetation may be most severely impacted where melaleuca invasion increases forest overstory density or leads to conversion of prairie or savanna to melaleuca-dominated forest, such as in pine flatwoods depressions, sloughs, wet prairies, and the seasonally flooded ecotone surrounding cypress swamps [48].

Conversion of the dominant overstory species as a result of melaleuca invasion in forested habitats may be a more obvious impact. Geary and Woodall [30] indicate "mature" melaleuca stands in Florida "swamps" range from 7,000 to 20,000 stems/ha, and up to 133 m²/ha of basal area. Stands growing on shallow or better-drained soils produce similar stem densities, although volume is "substantially" reduced. Myers [51] described how melaleuca "invades portions of fire-maintained pine and cypress forests in southern Florida, and in some cases appears to pre-empt sites where the native vegetation would normally regenerate following fire. Melaleuca accomplishes this by being the first woody species to get its seed on the ground following a late dry season fire. Once established it forms a dense canopy, shading out or preventing seedling establishment of other species. Melaleuca's shaggy bark and flammable leaves may facilitate burning at a greater frequency than normally took place. The result is the development of a new melaleuca-dominated community maintained by fire" [51].

Strong melaleuca competition in invaded communities may result from greater exploitation of soil resources. Results from Di Stefano and others [20,21] revealed that melaleuca-dominated stands (8-10 years old) contained significantly (p<0.05) more woody species root biomass in the upper 8 inches (20 cm) of soil than nearby grand eucalyptus (Eucalyptus grandis) (9 years old) or slash pine (20 years old) plantation stands, or palmetto prairie. The 3 forested sites contained similar levels of aboveground biomass.

One of the most important factors in the success of melaleuca in southern Florida may be its relationship to fire. Melaleuca is well-adapted to perpetuation in a fire-prone environment, perhaps more so than any dominant native plant species in southern Florida. As a result, Wade and others [104] suggested that if melaleuca is present in a burned stand, and postfire hydrologic conditions are conducive to germination and establishment of substantial numbers of melaleuca seedlings, native species in the new stand may be substantially reduced. Because of its many adaptations to fire, melaleuca may have an advantage over many native species in response to dry season fire, to which many native species are apparently not well adapted (reviewed by [35]). Melaleuca invasion may pose particular risk to fire-dependent communities in southern Florida. Myers and others [55] pointed out that marshes, wet prairies, cypress swamps, and pinelands, all habitats that are susceptible to melaleuca invasion, also are all common habitats in southern Florida that require fire for survival. For more information about melaleuca and fire, see Fire Ecology and Fire Effects.

Geary and Woodall [30] attributed the success of invasive melaleuca in Florida to altered hydrology, as well as altered fire regime. Lowered water tables as a result of drainage and excessive groundwater withdrawals in some areas of southern and central Florida have led to changes in the natural hydroperiod. In many areas shortening of flood duration may have led to increased size and severity of wildfires [104]. In addition, sites experiencing stand-replacing fire are frequently subject to seed rain from established melaleuca trees that were planted as ornamentals. The combination of altered hydrology, altered fire regime, and available seed sources can lead to postfire sites that become fully-stocked melaleuca stands with much reduced native plant presence [30]. Melaleuca invasion may itself alter FIRE REGIMES, as well as fuels [28].

South Florida Water Management District and the U.S. Army Corps of Engineers consider impacts of invasive melaleuca in the littoral zone of Lake Okeechobee when adjusting lake water levels. Lower lake levels may stimulate melaleuca growth and establishment, and prolonged periods of reduced water levels may lead to the expansion of established melaleuca populations (reviewed in [44]).

Ewel [24] has argued that southern Florida may be especially susceptible to invasion by nonnative plants because it is geologically young and not all ecological niches are fully occupied by its indigenous flora. In particular, pondcypress growing on sites that are too wet to support south Florida slash pine, but are drier than is optimal for pondcypress, may be unable to effectively compete with invading melaleuca [24,52]. Pondcypress stands in these ecotones are short, open-canopied, and subject to frequent fires [24]. Myers [52] and Ewel [24] suggest pondcypress in southern Florida occupies sites for which it is not well adapted. Melaleuca invasion in "dwarf cypress" habitats, which are typically a mix of wet prairie and stunted south Florida slash pine and pondcypress, may represent displacement of native species that had occupied "suboptimal sites due to an absence of competition" (see Myers [52] for details). The ecotone between pondcypress and south Florida slash pine forest communities seems particularly susceptible to melaleuca invasion [52].

It is commonly asserted that one reason nonnative invasive plants are so successful is that they are largely unconstrained by the impacts of herbivory from coevolved pests in their native habitat (e.g. a review by Mack and others [45]). Balciunas and Burrows [4] demonstrated how ambient, nonoutbreak levels of insect herbivory significantly (p<0.05) suppressed height and diameter growth of melaleuca saplings in northern Queensland, Australia. They also suggested that reduced levels of herbivory on southern Florida melaleuca, compared with herbivory in Australia where the species is native, might explain part of melaleuca's strong competitiveness in southern Florida's plant communities [4]. Comparative data from melaleuca populations in eastern Australia and southern Florida suggest that seed production is substantially greater in Florida melaleuca trees than those in Australia [74].

Indirect impacts may also result from presence of melaleuca in peninsular Florida. Melaleuca is a host to lobate lac scale (Paratachardina lobata), a nonnative invasive insect pest in southern Florida. Lobate lac scale has a broad host range, attacking well over 100 different woody plants including native species, ornamentals, and crop plants. Damage to melaleuca from lobate lac scale is apparently minimal, but melaleuca can serve as a reservoir for lobate lac scale's infestations of more desirable plants [82].

Although melaleuca has been blamed for human respiratory and allergic reactions [49], a study by Stablein and others [86] concluded that melaleuca is not a significant source of aeroallergen, and melaleuca odor is not a respiratory irritant.

As of this writing (2005), there is very little information indicating whether melaleuca is invasive in areas of North America outside Florida. Woodcock and others [114] described a melaleuca plantation established in the early 1930s on a mid-elevation (869-951 feet (265-290 m)) site on the island of Oahu, Hawaii. The relatively open character of the stand permitted native woody plants to establish in the understory, while excluding more light-demanding nonnative species. It was hypothesized that the melaleuca plantation may be fostering the regeneration of a native successional forest. According to Little and Skolmen [42], in Hawaii melaleuca is "naturalized, but not a pest as in Florida."

Control: The challenge of melaleuca control is influenced by an ever-changing, frequently ephemeral arrangement of environmental conditions, stand structures, seed sources, regeneration status, and fuel loads. Anticipating and identifying windows of opportunity in target susceptibility can enhance success. For instance, treatments for controlling seed-bearing melaleuca may be timed to minimize opportunities for successful seedling establishment resulting from the inevitable postdisturbance seed rain. Treatments that put seed on the ground in late fall or early winter, typically when the soil is still moist from seasonal rains, stimulate germination. Yet many, if not all of the delicate young seedlings are likely to die during the predictably dry months of March, April, and May [54]. Van and others [100] suggested the best time for melaleuca control in southern Florida might be spring, when plants are most actively growing (see Seasonal Development).

Because treating seed-bearing adults inevitably leads to substantial seed release, follow-up treatment or multiple treatments of establishing seedlings will be required to prevent immediate reinvasion. Control activities minimizing disturbance to soil and surrounding desirable plants may help mitigate subsequent melaleuca seedling establishment [93,110] (see Site Characteristics). Myers and Belles [54] point out the importance of field monitoring for knowing a) when germination begins following major seed release, b) whether germination is complete, c) whether additional germination episodes occur following receding flood waters or cessation of drought, and d) size of the largest seedlings in a cohort relative to cohort age. This last point may be important for determining whether the largest seedlings are capable of sprouting in response to top-kill.

Woodall [110] recommended focusing control efforts first on outlying individuals that serve as seed sources for new infestations. Dense, well-established melaleuca stands are more difficult, time consuming, and expensive to eradicate, especially over large areas. Once outliers are eliminated and dense, well-established stands are contained, strategies for complete eradication can be implemented [110].

For areas with scattered, mature melaleuca seed trees that have not recently burned, Woodall [113] recommended killing trees and releasing seed from late October to late December. Moisture provided by occasional winter showers will stimulate germination. Lack of fire will promote plant "competition," resulting in slow-growing melaleuca seedlings. Typical spring drought conditions will kill most germinants. The ensuing summer wet season should stimulate germination of any ungerminated seeds left on the site. These and any remnant seedlings can be removed with prescribed fire during the following dry season [113].

In extremely dense melaleuca stands seed production may be substantially reduced within the dominant age cohort due to shading. However, these stands may also contain larger, older, canopy-emergent individuals that bear large numbers of capsules. It may be prudent to first focus control efforts in these stands on the emergents. Without these, extremely dense stands may pose a comparatively lessened threat of massive seed release [54].

A strategy utilized by resource managers at Big Cypress National Preserve is to delay follow-up treatments in melaleuca control units for 3 years, allowing seedlings an opportunity to reach a height that facilitates detection with a minimal chance of seed production [59]; however, some plants may produce seed at <3 years of age [48].

Prevention: Because melaleuca seed dispersal is typically distance-limited, treatment of outlier trees that occur far from established melaleuca populations may prevent establishment of new, invasive populations. If the outlier is eliminated in such a way that seeds are not released, then the probability of colonization in that habitat is substantially reduced [11]. Woodall [110] describes how, "as one proceeds toward the central denser portion of a melaleuca population, the relative benefits from killing individual trees decline. The biggest payoff is from controlling the most isolated, most distant trees." Biennial inspections of uninvaded areas will help identify melaleuca outliers [110].

Integrated management: A combination of stressors, both natural and human-caused, might be integrated for more effective management and control of melaleuca: "A judiciously timed, integrated approach using chemicals, mechanical means, and fire can be effective. Present control efforts use mechanical cutting followed by a dose of herbicide. Little attention, on the other hand, has been given to the site susceptibility and timing of treatment. Sites should be treated when the seeds would be most unlikely to encounter favorable conditions for establishment. Full advantage should be taken of both fire and frost. Both occur naturally every few years. Fire can be prescribed at practically any time as long as fuel is available. Both destroy melaleuca biomass in leaves, branches, and small diameter stems, all of which are replaced by sprouts. To accomplish this, the tree uses and depletes stored food reserves. If the tree is cut and treated with herbicide while these reserves are low, the energy for sprouting would be lacking and follow-up treatment would be minimal. Due to the time of year, frost-released seed is likely to encounter unfavorable site conditions, and fuel for burning still remains. Treatment of seed trees following frost and prescribed burning should greatly reduce sprouting. A late wet or early dry season prescribed burn would put the seed on the ground at an unfavorable time" [51].

Biological control agents may further reduce melaleuca populations that have been damaged by other means, such as mechanical, chemical, or fire. Center and others [16] described a release site for melaleuca snout beetle where an estimated 51,360 cut stumps "had coppiced profusely." Snout beetles had fed upon an estimated 25% of coppices. Of those plants that were fed upon, damage on 53% was low (generally consisting of nibbling on one or a few tips), damage on 31% was moderate (extensive damage to several stem tips), and damage on the remaining 16% was high (almost all foliage destroyed) [16].

Physical/mechanical: Mechanical clearing or felling of mature melaleuca trees can be an effective means of control. However, to be most effective desirable vegetation should be subsequently established and maintained, and posttreatment seedling control undertaken. Follow-up treatment(s) are required to control stump sprouts [93]. In a field experiment, 98% of melaleuca plants 2.3 to 3.9 feet (0.7-1.2 m) tall sprouted after a single cutting. The month in which stems were cut had no effect on biomass recovery after a single cutting. Following a 2nd cutting (2 years after the 1st cut), melaleuca mortality rates were still ≤27% for all but 3 months of the year. Mortality rates in June, July, and August were 72%, 55%, and 42%, respectively. High mortality in August may have been influenced by flooding during that month [83]. Plants <3.3 feet (1 m) tall may be hand-pulled and should be stacked to prevent sprouting. Plants > 3.3 feet (1 m) tall are best cut with a machete or chainsaw and the cut surface treated with herbicide [55].

According to Timmer and Teague [93], mature trees that are mechanically cleared should be removed from the site and destroyed to reduce seed dispersal and sprouting. However, Myers and Belles [54] cut >5,000 melaleuca trees in the course of field research, and observed sprouting in "only a few" downed stems, all of which were lying on extremely wet soils or floating. In all cases, sprouts died during subsequent drought.

Fire: See Fire Management Considerations.

Biological: One reason frequently offered for the success of nonnative invasive plants is that in their new environment they are freed from the negative impacts of pests and parasites with which they coexisted in their native habitats (e.g. see the review by Mack and others [45]). Balciunas and Burrows [4] demonstrated how ambient, nonoutbreak levels of insect herbivory significantly (p<0.05) suppressed height and diameter growth of melaleuca saplings in northern Queensland, Australia. They speculated that a classical biological control program using Australian insect herbivores should also suppress melaleuca sapling growth in southern Florida, as well as reduce flowering and seed production, and perhaps lower fire tolerance. Several sources suggest that an integrated biological control program will reduce melaleuca's impact on native species [4,70,107].

Preliminary investigation indicates melaleuca has not acquired indigenous herbivores (or other pathogens) at sufficient densities to cause appreciable damage to trees in southern Florida [19]. Yet several organisms, indigenous and introduced, have shown some potential for reducing melaleuca in southern Florida.

Botryosphaeria ribis is an indigenous fungus in southern Florida. It is pathenogenic to melaleuca but is not known to cause "large-scale epiphytotics" on melaleuca in the field. However, B. ribis canker development and tree mortality may be enhanced by stresses associated with drought, low temperatures, or complete defoliation, so B. ribis may enhance the efficacy of other control activities [70]. Although compatibility between the herbicide chemical imazapyr and B. ribis has been demonstrated in-vitro [71], field studies demonstrated that stump regrowth following treatment with imazapyr and B. ribis mixtures were not significantly (p=0.05) different from regrowth of stumps treated with imazapyr alone [72]. It is logical, though speculative, that defoliation by fire may enhance the pathogenic effect of B. ribis infection, suggesting inoculation prior to prescribed fire in melaleuca-infested areas may reduce postfire melaleuca survival. Further research is needed to establish the efficacy of purposeful B. ribis inoculation in concert with other control methods or natural melaleuca stressors.

Puccinia psidii is a rust fungus that occurs on a variety of Myrtaceae throughout the Caribbean islands and North (Florida), Central, and South America (reviewed in [68]). In 1997, P. psidii was discovered on new growth of about 70% of melaleuca trees and saplings over a 1.2-mile (2 km) strip in southern Florida. Trees were 10 to 16 feet (3-5 m) tall, top-killed, and bushy in appearance, with many new shoots [67]. P. psidii can cause defoliation and twig dieback in infected melaleuca [66,67,68]. The P. psidii-melaleuca "pathosystem" may contribute to melaleuca control in southern Florida, especially if integrated into current control programs [68]. Again, research is needed to establish if purposeful use of P. psidii could be useful for melaleuca control.

Lobate lac scale, an invasive exotic insect in southern Florida, is reported to feed on melaleuca, but as of this writing (2005) melaleuca damage has seemed inconsequential [82] (see Indirect impacts).

Balciunas [5] speculated that melaleuca snout beetle may reduce melaleuca's fire tolerance in Florida, especially of saplings, presumably by depleting energy reserves needed for postfire sprouting. The melaleuca snout beetle (Oxyops vitiosa), an Australian weevil, was released as a biological control agent at 13 sites throughout the range of established melaleuca in southern Florida in 1997 [15,16]. Melaleuca snout beetle establishment (as of May 1999) occurred at 10 of these sites [16] (for a comprehensive description of these sites, introduction methods, and establishment results, see [15,16]). Because of slow dispersal rates (≈ 0.6 mile/year (1 km/yr)), melaleuca snout beetle has been collected and redistributed to >150 locations in southern Florida [60]. Both the adults and larvae prefer to feed on young melaleuca foliage. Although larvae develop best on new leaves, the long-lived (>1 year) adults can subsist on less nutritious, mature foliage and stems during quiescent periods of foliage production [60,106]. Eggs and larvae are most abundant in late fall and early winter when susceptible young foliage is most abundant, and are absent or uncommon in spring and summer unless regrowth from damaged trees is present. Females usually oviposit on the surface of young leaves and expanding buds during the flush of young foliage produced after flowering. The resulting larvae pass through 4 instars, each lasting about 5 days (in eastern Australia). Fourth instars crawl or drop from the host plant, burrow into the ground, and pupate for about 11 days (in eastern Australia) [60,64]. Establishment of beetle populations appears hindered on permanently flooded sites due to drowning of larvae when they drop to search for pupation sites [16,60]. Dispersal of newly released populations may be most rapid on sites with scattered melaleuca in open "savanna-like" areas. Open-grown trees with an abundance of new foliage support healthier snout beetle populations, compared to dense stands with a paucity of young foliage [16]. Based on observations in its native range in eastern Australia, Balciunas and others [6] predicted that melaleuca snout beetle would have the greatest impact on sapling size trees in southern Florida. Feeding by larvae on new foliage causes tip dieback, and persistent damage causes loss of apical dominance. Subsequent branching and new growth provides a feedback of additional resources to sustain continual adult and larval populations. Tissue loss and diversion of photosynthetic resources associated with snout beetle feeding appears to limit flowering in mature melaleuca trees [60,62] and may delay reproductive maturity of saplings [62].

The melaleuca psyllid (Boreioglycaspis melaleucae), an Australian native, was released in southern Florida as a biocontrol agent in February 2002 [61,107]. It has established across a variety of melaleuca-invaded habitats in southern Florida, from permanently flooded wetlands to upland pine flatwood sites. Both adults and larvae feed on melaleuca sap, usually feeding at the tips of new twigs [108]. Most damage is attributed to nymphs [61]. "Tender, expanding buds and leaves as well as mature older leaves are destroyed by nymphs. When populations are large, damage may extend to somewhat woody stems" [61].

Eucerocoris suspectus, a Hemipteran native to Australia, was approved for quarantine testing in the U.S. in 1995. Adults and nymphs feed on young melaleuca leaves and shoots [14].

Chemical: Herbicides are among the most effective and widely used tools for controlling melaleuca in peninsular Florida [40]. Herbicides are most effective when integrated within a suite of control measures and strategies. Cost and logistics can make chemical control difficult to implement over large areas of infestation. As Myers and Belles [54] explained, "for small administrative units, like Corkscrew Swamp Sanctuary, portions of Sanibel Island, and some state parks, existing control technologies focusing on herbicides have worked well. For larger units, like Loxahatchee National Wildlife Refuge, the Conservation Area, and Big Cypress Preserve, the sheer scale of the problem has limited control success" [54].

Damage to melaleuca trees from herbicide may induce the release of substantial numbers of canopy-held seeds. Aside from the cut-stump application method, herbicide treatments presumably result in longer periods of seed release, compared with postfire seed rain, because the herbicides act more slowly than fire [55]. Burkhead [13] indicated melaleuca capsules opened within 6 months after stem injection treatment with either hexazinone or triclopyr. Woodall [112] observed differences in the rate of seed dispersal with different herbicides. Seedfall from trees injected with either picloram or dicamba accelerated rapidly following treatment, corresponding to the rapid effect these chemicals had on the health of treated trees, peaking at 2 weeks posttreatment and remaining above baseline level for 10 weeks to 3 months. In contrast, herbicides that cause gradual damage to trees may not affect seedfall as strongly or as rapidly [112]. Although melaleuca capsules are retained in the tree canopy, mature seeds are not connected to the plant's vascular system so herbicide treatment will not impact seed viability [46]. In some cases, control efforts may actually lead to greater spread due to posttreatment seedling establishment [54].

Herbicide treatments are also complicated by the necessity of retreating the trees that sprout [54,93]. While at least some fraction of mature melaleuca trees that are treated with herbicides can survive initial treatment, detailed information about subsequent sprouting is lacking. Herbicide treatments that leave trees standing (i.e. foliar spray, stem injection or soil-applied herbicide) may result in regrowth of canopy foliage and other aerial tissues [13]. Initial application of chemicals to cut stumps (see below) may also be insufficient to prevent stump sprouting, requiring retreatment.

Timing of herbicide application may also be important. Stocker and Sanders [90] suggested that stem injection treatments administered near the beginning of the growing season only affected tissues above the cut line, since transport in the plant was primarily toward the growing shoots at that time of year. Myers and Belles [54] compared effectiveness of 3 foliar-applied herbicides, applied in January, March, May, June, or November, for controlling melaleuca stump sprouts. Imazapyr was generally more effective than hexazinone, and glyphosate was least effective. Imazapyr killed significantly (p<0.05) more trees when sprayed in November (83.1%) or January (79.3%), compared with March (47.8%), June (32.5%), and May (25.0%). Overall, control effectiveness was significantly (p<0.004) greater for larger (greater crown volume) trees. Reasons for variation in treatment effectiveness by month were unclear. Rather than considerations of seasonal effectiveness of herbicides at killing trees, Myers and Belles [54] recommended timing herbicide treatments to minimize the chances for successful post-treatment seedling establishment (see Control and Fire Management Considerations).

Foliar application of herbicides yields inconsistent results and may be ineffective compared with other methods. Foliar-applied herbicides are probably most effective for controlling stump sprouts, or aerial sprouts in dense and/or low-statured stands following disturbance (such as fire) [54]. For dense stands, Myers and Belles [54] speculated that burning, followed by ground-based foliar herbicide application to sprouts at 3 to 9 postfire months, is more effective than spraying untreated or unburned stands from aircraft. They tested 3 foliar-applied herbicides for controlling postfire sprouting on melaleuca trees (1.3 to 8.5 feet (0.4-2.6 m) tall). Trees were sprayed either 3 months after fire (mortality sampled at postfire month 20) or 9 months after fire (mortality sampled at postfire month15). Sites were burned under prescription in March and January. Considering all treatment and burn periods, foliar-applied triclopyr produced significantly (p<0.01) greater mortality (81%) than imazapyr (55%), which in turn produced significantly (p<0.01) greater mortality than glyphosate (19%).

Use of soil-applied pelleted herbicide can control melaleuca and has less site impact than felling and stump treatment. Pelleted herbicide is best for nonseedbearing trees since subsequent seed release is protracted and slow to initiate [110]. Stocker and Sanders [90] found that soil applied pellets of hexazinone and tebuthiuron resulted in 100% mortality of mature trees in periodically flooded habitat.

Stem injection of chemicals is an effective, relatively low-impact melaleuca control method. Injected seed trees purge their canopy-held seedbank relatively quickly. Ideally, most seeds are released within 1 month of injection [110]. Burkhead [13] found injection had little adverse impact on nontarget plant species in experimental plots in Big Cypress National Preserve. Grasses within 1.6 feet (0.5 m) of hexazinone-treated trees were killed but reestablished within 1 year of treatment. Imazapyr, picloram + 2,4-D, triclopyr, and hexazinone have all shown good results when used in stem injection [13,54,90]. Myers and Belles [54] also successfully used stem injection (with Hexazinone) to treat postfire sprouting. Mortality was 96% at 5 months after fire and 98% at 9 months after fire, but this treatment was significantly (p<0.05) less effective when applied at 2 months after fire. See Fire Management Considerations for more information about fire and melaleuca control.

Felling melaleuca trees and applying herbicide to cut stumps is also an effective chemical control method. Woodall [110] recommended picloram + 2,4-D for cut-stump treatment. Laroche and others [40] tested several herbicides for effectiveness when applied to cut stumps. Imazapyr yielded 100% control, while application of triclopyr, glyphosate, or hexazinone resulted in >85% melaleuca mortality. Myers and Belles [54] and Stafford [87] also successfully used imazapyr applied to cut stumps. Stafford described moderate but temporary damage to nearby herbaceous plants. It was speculated that this damage was caused by herbicide uptake from soil or root grafts associated with treated melaleuca stumps, rather than from sloppy spraying. Myers and Belles [54] found that applying herbicide to cut stumps of melaleuca trees that had recently burned was also effective.

Regardless of the herbicide used, Myers and Belles [54] suggested the cut-stump method was "slightly more effective" in killing the target tree than stem injection. Also, standing trees are more likely to disperse seeds over a greater area compared with downed trees. Further, while downed trees can release their seed within 2 weeks after cutting, stem-injected trees may take substantially longer (up to 1 year was suggested) for all branches to die and release seed. Inducing rapid seed release by felling trees results in more rapid germination and establishment of closer (both temporally and spatially) cohorts of seedlings, permitting effective seedling control using a follow-up prescribed fire. With stem injection, seedling establishment may occur over a more extended time period, rendering seedling control using prescribed fire problematic. "If burning is conducted when the earliest established seedlings are still small enough to be killed, all seeds may not have been released from dying (or surviving) trees. Such a burn may also stimulate remaining seeds to be released. These seeds will encounter bare mineral soil, reduced competition, and fuel loads too low for a repeat burn. On the other hand, if the burn is conducted after all seeds are released, some early establishing seedlings may already be large enough to survive the burn.". Stump treatments may also be timed to take advantage of seasonal flooding and the suppressive effects of inundation on stump sprouting [54] (see Cultural control below).

However, Woodall [110] recommended against cut stump treatments for general purposes: "Large amounts of the chemical are needed because the circulation of fluids within the tree stops when the tree is cut. Any herbicide that can prevent stump sprouting can do a much more efficient job when injected into the stem of an otherwise undamaged tree. Stump treatment is advisable when: (1) the stem is too small for injection and the rooting medium is unsuitable for soil application, or (2) the need to remove all seeds is so critical as to require felling. A good example of (1) is a small sapling rooted on a cypress knee; an example of (2) is a large seed tree immediately adjacent to a prepared seed bed, such as the right-of-way of a powerline being constructed" [110].

Melaleuca seedlings can also be controlled with herbicides. According to Timmer and Teague [93] "herbicide treatments using either broadcast foliar sprays or soil treatment may prevent germination and/or establishment" of seedlings. In a greenhouse study, Woodall [109] attained complete kill of 45-day-old seedlings with bromacil, diuron, picloram + 2,4-D, and hexazinone, complete kill of 106-day-old seedlings with bromacil, diuron, and picloram + 2,4-D, and complete or near-complete kill of 106-day-old seedlings with hexazinone. Stocker and Sanders [90] achieved 100% mortality of seedlings between 8 and 24 inches (20-60 cm) tall after 6 weeks following broadcast applications of bromacil, tebuthiuron, and hexazinone, and after 44 weeks using glyphosate.

For more information, a review of specific control methods using herbicides is provided by Timmer and Teague [93].

Cultural: Timmer and Teague [93] indicated that, where water levels can be manipulated, seedlings can be controlled by flooding the treatment area. However, they did not indicate the optimum depth or duration of flooding for effective control. In addition, several studies have shown that melaleuca seedlings can survive complete submersion for several months, indicating that this approach may only be marginally effective unless conducted over a long time.

On the other hand, stump sprouting following felling of mature melaleuca trees may be reduced or even eliminated if stumps are subsequently submerged. Mechanical treatments conducted just prior to seasonal flooding may be particularly useful in dense melaleuca stands with access for large mechanized cutters. For best results, stumps should be submerged within at least 2 weeks of cutting and should be submerged for at least 40 days. If seasonal flooding is insufficient, stump sprouts can be treated with foliar-applied herbicides [54].

Woodall [110] described "forced succession," in which conditions are created that will induce the development of a shade tolerant native plant community, while gradually reducing melaleuca overstory and discouraging melaleuca regeneration. Gradually thinning melaleuca, perhaps over a 10-year period, increases light levels sufficiently to maintain a favorable microclimate, resulting in improved vigor of native seedlings that are likely already present in the understory of melaleuca-dominated stands. Simultaneously, care is taken to maintain a thick, undisturbed litter layer that inhibits establishment of melaleuca seedlings. Thinning may be carried out by felling or chemical stem injection, although felled trees should remain where they fall to prevent undue disturbance. Thinning should remove the largest, oldest trees first to minimize sprouting, since sprouting decreases with age of trees [110].
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Importance to Livestock and Wildlife ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: cover, forest, hardwood, marsh, natural, presence, species richness

The importance of melaleuca-invaded habitat for wildlife in southern Florida is unclear. According to Geary and Woodall [30] melaleuca stands "are of dubious value to wildlife." Melaleuca-invaded habitats in southern Florida may support some populations of native rodents, but the value of melaleuca-invaded habitats relative to native habitats for native rodents and their predators remains unclear [47,58].

Schortemeyer and others [79] recorded 30 species of birds from November through April in or near melaleuca study sites in southern Florida. They suggest that melaleuca may provide nesting and roosting sites for anhingas, egrets, and herons, and resting and feeding perches for Everglade kites, in areas where altered hydroperiods have damaged or eliminated natural sites such as willow (Salix spp.) strands.

O'Hare and Dalrymple [57] conducted a comprehensive survey of wildlife in southeastern Florida marshlands across a gradient of melaleuca coverage. Overall species richness was highest in areas with moderate melaleuca coverage (or melaleuca savanna), perhaps due to high levels of structural diversity of vegetation. Much of the observed difference in overall species richness was associated with high numbers of migratory upland birds. Although migratory upland birds apparently favored melaleuca savanna habitat over dense melaleuca stands or relatively uninvaded marsh habitats, species abundance generally remained below that for the same bird species in native forested habitats such as cypress swamps, hardwood hammocks, and south Florida slash pine rocklands. There were no significant (p<0.05) differences between melaleuca cover types in average number of individuals or average number of species of captured macroinvertebrates or herpetofauna. For fishes, there were no significant (p<0.05) differences between melaleuca cover types in average number of species, but average number of captured individuals was significantly (p=0.03) lower in the densest (75%-100% coverage) melaleuca habitats. A shift in species mix of both birds and mammals with melaleuca cover was noted, with more typical marsh species found in the lowest melaleuca cover types and more upland or forest-dwelling species found in the densest melaleuca habitats [57].

According to O'Hare and Dalrymple [57], moderate levels of melaleuca invasion in southeastern Florida native marsh habitats may not necessarily diminish typical native faunal species composition and productivity. As native graminoid/herbaceous wetlands are converted to closed-canopy melaleuca forest, presence of upland, arboreal, and/or forest species increases, but not necessarily at the immediate expense of wetland species diversity. They recommend that efforts to control melaleuca and restore native plant communities be made in ways that recognize the persistence of native fauna in invaded habitats and allow for retention of the extant wildlife community. Nevertheless, Schortemeyer and others [79] suggested that melaleuca wildlife value should not be overstated, since melaleuca's continued spread across the landscape is likely to diminish overall native habitat [79].

As of this writing (2005) there is no published information describing importance of melaleuca for livestock.

Palatability/nutritional value: Relatively low moisture (56%) and high crude fiber contents indicate melaleuca has a low digestibility coefficient and is probably not a desirable deer food [79]. Young foliage is highest in nitrogen content and lowest in percent dry mass, compared with mature foliage [105].

The following table provides chemical analysis, on a percent oven-dry basis, of melaleuca browse material. Samples were collected in spring from the Everglades Wildlife Management Area [79].

Protein Crude Fat Crude Fiber Ash N-free Extract Ca P K Mg Na 4.95 8.18 25.34 6.51 54.97 1.93 0.06 0.42 0.20 0.31

Cover value: No information is available on this topic.

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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Key Plant Community Associations ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: association, climax, cover, fern, ferns, fire frequency, forest, frequency, graminoid, habitat type, herb, herbaceous, hydroperiod, marsh, shrub, shrubs, swamp

As of this writing (2005), there are no published accounts listing melaleuca as a
climax dominant or indicator species in any habitat type classifications in
North America. As Meskimen [48] emphasized, any descriptions of associations between
melaleuca and other plant species in southern Florida should not necessarily be
viewed as stable or well-defined communities. Nevertheless, such descriptions
are valuable to illustrate native plant taxa and communities that may be at risk
of melaleuca invasion
(see Impacts).

Melaleuca is frequently
mentioned in association with a variety
of forested and nonforested native plant species and communities in southern
Florida. Forested habitats include wet pine (Pinus spp.) flatwoods,
depressions in drier pine flatwoods, disturbed cypress (Taxodium spp.)
swamps, the ecotone between "dwarf" pondcypress (T. ascendens) and
pines, and Miami rock ridge pinelands [25,30,51,53,84,104].
According to Geary and Woodall [30], melaleuca frequently occurs in southern
Florida within the forest cover types [26] pond cypress, south Florida
slash pine (P. elliottii var. densa), and to a lesser extent,
baldcypress (T. distichum).

Nonforested communities in southern Florida are also subject to melaleuca
colonization. Melaleuca invades sawgrass (Cladium mariscus ssp. jamaicense),
freshwater marsh, wet prairie or marl prairie, and the herbaceous perimeter
frequently found around pondcypress swamps [3,51,104]. According to Richardson [75], wet prairie
St. Johnswort/pipewort (Hypericum/Eriocaulon spp.)
communities where hydrology is altered by drought and/or
human-caused drainage are particularly vulnerable. Geary and Woodall
[30] suggested that "most shrub, herb, and graminoid species in southern Florida are likely to be
found in association with" melaleuca. Common associates include saw-palmetto (Serenoa
repens), pineland threeawn (Aristida stricta), wax-myrtle (Myrica
cerifera), sawgrass, buttonbush (Cephalanthus
occidentalis), and toothed midsorus fern (Blechnum serrulatum) [30].



John M. Randall/The Nature Conservancy



There are some accounts suggesting certain habitats are more susceptible to melaleuca invasion
than are others. According to Myers and others [50,51,52], melaleuca is most likely to "displace native
vegetation" in the ecotone between south Florida slash pine flatwoods and pond
cypress forest (for further discussion about invasibility of the pine-cypress
ecotone see Impacts),
and around the edges of cypress (Taxodium
spp.) domes and strands. Moist pine flatwoods in some areas of southern
Florida have been "extensively" invaded by melaleuca, while more northern
or drier flatwoods appear less vulnerable to invasion [1].

Melaleuca may establish extremely dense, even-aged, monospecific stands. Di Stefano [20] described melaleuca stands in southwestern Florida with >4,500 stems/ha
of melaleuca, where the understory was quite sparse and consisted of occasional
toothed midsorus ferns and cabbage palmettos (Sabal
palmetto). Van and others [100] described the understory of dense, mature
melaleuca forests as sparse, consisting of shade-adapted shrubs such as wax-myrtle
and Guianese colicwood (Myrsine guianensis), ferns such as maiden fern (Thalypteris spp.) and
osmunda (Osmunda spp.), sedges such as sawgrass, and various grasses.

There is some indication that melaleuca can colonize mangrove (Rhizophora, Avicennia,
and/or Laguncularia spp.) and mangrove-associated communities. Richardson [75] indicated
that melaleuca is salt tolerant
and has "intermingled" with mangroves in some areas of southern Florida,
and Hoffstetter [35] cited a personal communication (Taylor Alexander)
indicating melaleuca tolerates "brackish sites" and will "grow in mangroves." Wade
and others [104] pointed out that in its native habitats
(see General Distribution
and Site Characteristics),
melaleuca sometimes forms a
band of vegetation in the brackish areas just to the landward side of mangroves
(unidentified taxa) (Coaldrake 1961, Coulter 1952, Williams 1967, as cited in [104]). In Florida this habitat is often
occupied by buttonbush. Although Myers [50] was unable to experimentally induce
melaleuca establishment in a mixed stand of white
mangrove (L. racemosa) and red mangrove (R. mangle) in southern
Florida, Wade and others [104] suggested that the buttonbush zone is susceptible
to invasion.

Perhaps due to its prolific and ubiquitous nature in southern Florida, melaleuca-invaded
habitat may increasingly garner unique status in various biogeographic
classification schemes. For instance, Ewel [25] lists melaleuca swamp as 1 of 13
major types of Florida swamps. Characteristics of the melaleuca swamp-type
include moderate hydroperiod (6- to 9-month),
high fire frequency (1/decade), low organic matter accumulation (<3.3 feet (1
m)), and
shallow groundwater source.
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Life Form ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: shrub, tree

Tree
Tree-shrub
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Other uses and values ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: fuel, tree

Although melaleuca was previously planted in Florida as an ornamental landscape tree, retail trade in melaleuca has largely ceased [7]. It was planted as early as 1941 on levees and dredged materials islands at Lake Okeechobee, Florida to prevent storm waves from eroding the levees [91]. Melaleuca was introduced in Hawaii for ornamental uses, windbreaks, and as "watershed cover" [42]. It is apparently also cultivated as an ornamental in southern Louisiana, Texas, and California, and perhaps Puerto Rico (see General Distribution).

Melaleuca is an important honeybee plant in southern Florida [30,36,48,77].

Melaleuca chips may be useful as a component of commercial potting medium [12,17,18].

Essential oil is distilled from leaves, twigs, and seeds. The oil has both traditional and modern uses, mainly associated with its antiseptic properties [94]. It has been used for medicinal purposes and as food flavorings [22]. Commercial production of essential oil from melaleuca apparently ceased in 1955 when a Swiss company began producing a synthetic form [9].

Wood Products: Globally, melaleuca has been used for structural lumber, fuel, pulpwood, and insulation/stuffing [22]. It has been used for traditional dwelling construction in New Caledonia. Melaleuca wood has been used extensively for carpentry and joinery work. It is workable mainly while it is still green, becoming extremely hard after drying and ageing. The wood is also resistant to common wood-eating insects [94]. No "significant" industries in Florida utilize melaleuca for any these products [22]. According to Geary and Woodall [30], melaleuca wood products value is diminished by the "quality of its corky bark."

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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Phenology ( Inglês )

fornecido por Fire Effects Information System Plants
More info on this topic.

More info for the terms: phenology, seed

In Florida, flowering may occur throughout the year, with heaviest blooming during the wet season (June-November), and sporadic flowering during the dry season (December-May) [50]. Meskimen [48] suggested that heavy rainfall may trigger flowering. Individual trees may bloom from 2 to 5 times per year and individual twigs 3+ times per year [30,48]. Pronounced region-wide flowering occurs at least twice per year [30]. Over 2 seasons at 6 sites in southern Florida, Van and others [100] observed that flowering began in October and November, with peak flower production from November to January, and was mostly completed by February and March. Flowering phenology may vary across a landscape or even within a stand (reviewed by [48]), and may be influenced by soil type [30]. Individual trees may be in flower while the surrounding stand is not [48].

In Hawaii, melaleuca flowers all year (Skolmen, as cited in [30]).

There is some evidence for a seasonal pattern in melaleuca growth. Meskimen [48] suggested minimum growth occurs in the summer and peak growth is in fall. Over 2 seasons at 6 sites in southern Florida, Van and others [100] observed new shoot growth beginning in midwinter, immediately after peak flowering, and peaking in spring. New shoots were produced from the apical buds of both flowering and nonflowering branches, but not all apical buds were active in the same season. Very little new growth was observed from May to August [100].

Continuous, light seedfall (see Seed dispersal) may occur seasonally. Woodall [112] observed light seedfall from undamaged trees from July to January, perhaps associated with seasonal growth.
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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Plant Response to Fire ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: fire severity, seed, seed tree, serotinous, severity, tree, wildfire

While foliage, twigs, and smaller branches may be consumed or severely damaged by fire, these are readily and rapidly replaced by new growth originating from epicormic buds that produce postfire sprouts on the main stem and larger branches [24,30,51,52,53,102]. Postfire sprouting along branch sections terminal to emptied capsules (see below) is uncommon [48]. Following a particularly severe fire, sprouting can occur below any point on the bole not killed by fire [52]. Basal sprouts develop if the tree is completely top-killed [102]. In some cases, even seedlings less than a year old may sprout at the "root collar" [52]. Meskimen [48] suggested that seedlings <0.5 inch (1.3 cm) in diameter can sprout "very close to ground level" following fire.

Melaleuca reproduction may be most abundant following fire. This is in large part due to the synchronous release of potentially millions of canopy-stored seeds per mature seed tree from serotinous capsules (see Regeneration Processes) onto a fire-exposed seedbed [30,48,53]. The rate at which canopy-held seed is released after fire may be closely related to fire severity. Meskimen [48] observed that on branches where foliage is consumed seeds may be released within 1 day. Where foliage is only scorched seed release takes "somewhat longer." Myers and Belles [54] measured postfire seed rain following an "extremely intense" wildfire in Big Cypress National Preserve that consumed most of the crowns but left mature, seed-bearing melaleuca trees standing. At 3 different sites, more than 95% of stored seed was released during the first 5 postfire weeks, with light seedfall continuing for several months. Melaleuca is likely the first among species present to disperse postfire seed [51]. Despite the sometimes rapid and near-complete purge of the canopy seed bank following fire, melaleuca produces a new seed crop within a short time [52]. Flowering can occur "within weeks after fire" [24]. According to Ewel [24], prolific postfire epicormic sprouting greatly increases the surface area of small branches, and presumably also flowering, thereby enhancing reproductive potential.

Myers [52] indicated that when seed trees are present, melaleuca is one of the first postfire species to colonize.

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citação bibliográfica
Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Post-fire Regeneration ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: adventitious, crown residual colonizer, root sucker, shrub, tree

POSTFIRE REGENERATION STRATEGY [88]:
Tree with adventitious bud/root crown/soboliferous species root sucker
Tall shrub, adventitious bud/root crown
Crown residual colonizer (on-site, initial community)
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Regeneration Processes ( Inglês )

fornecido por Fire Effects Information System Plants
More info for the terms: breeding system, capsule, cohort, competition, crown fire, density, fresh, fruit, hydroperiod, litter, natural, organic soils, peat, perfect, presence, root crown, root sprout, root sucker, seed, severity, swamp, tree, wildfire

Melaleuca regenerates both continuously and episodically from seed [112], and by sprouting from branches and stems in response to tissue damage [48,54].

Woodall [112] summarized melaleuca sexual reproductive strategies as follows: "Because seed retention extends beyond seed ripening, melaleuca has 2 distinct reproduction possibilities. First, a virtually continuous, although low-level, seed release ensures that some of the seed lying on the ground near the tree will be fresh, which allows the species to exploit all reproduction opportunities—no matter how short in duration. Second, the retention of several years' seed production allows for a particularly heavy seedfall if some natural catastrophe kills advance reproduction along with seed trees."

Meskimen [48] noted three characteristics of melaleuca that contribute to its propensity to saturate an area with seeds:

  • Heavy flower crops normally produced 2-5 times a year

  • Many seeds produced per flower

  • Canopy-stored seeds viable through many flowering cycles

Asexual regeneration: Melaleuca sprouts from branches and stems in response to frost, fire, mechanical, and herbicide damage [48,54]. When branches or stems are cut or broken, multiple sprouts are produced from buds located beneath the bark and within inches of the injury [48]. Entire crowns of saplings and large trees that are defoliated by frost or fire can recover in just a few months by epicormic sprouting. The extent of damage and sprouting response appear similar for both frost and fire damage, in that they are proportional to the intensity of heat or cold exposure. With increasing intensity of heat or cold, smaller diameter branches are killed and epicormic sprouting becomes limited to larger branches or stems. Melaleuca can also recover from windthrow, partial breakage, or other types of incomplete felling in two ways. First, existing branch tips may reorient vertically. Second, sprouts may be produced from latent buds on the upper-facing portions of stems. The result may be a "vigorous," if multistemmed, survivor [48]. Wade [102] suggested that seedlings 4 to 5 inches (10-13 cm) in height may have the ability to sprout.

There is some indication that melaleuca can sprout from the root crown, although details describing the biology of this habit are sparse. Meskimen [48] noted that melaleuca seedlings sprout "very close to ground level" and "from the bases of stems in the spring," in response to fire and frost, respectively. Woodall [110] indicated that melaleuca saplings will sprout "from the root collars" in response to freeze damage, and Myers [52] suggested that seedlings can sprout "at the root collar" in response to damage from fire. Wade [102] indicated that "basal sprouts will develop whenever a tree is completely topkilled" by fire. Multiple shoots may be produced from basal sprouting, likely the origin of multistemmed individuals [48]. According to Woodall [110] the "tendency to sprout" decreases with age in mature trees.

Melaleuca's ability to root sprout is unclear. According to Meskimen [48] melaleuca does not root sucker. Turner and others [96] indicated that melaleuca "has the capability of root sprouting," but as of this writing (2005) there are no other published accounts of root sprouting in melaleuca.

Breeding system: Melaleuca flowers are perfect [101]. Vardaman [101] concluded that melaleuca has a mixed breeding system that "promotes outcrossing but allows inbreeding if sufficient outcrossing does not occur."

Pollination: Field studies in southern Florida showed that pollination within the same flower resulted in significantly (p<0.05) reduced fruit set compared with pollination between flowers on different trees or pollination between flowers on the same tree. These studies also indicated that male and female flower parts often develop at different rates, which tends to promote pollination between flowers [101].

Melaleuca is pollinated by a variety of insects, especially honeybees (see Other Uses). Vardaman [101] suggested that melaleuca could be pollinator-limited in some areas of southern Florida, particularly where honeybee hives are remote, but found no supporting evidence from a lone study site.

Seed production: Melaleuca is a prolific seed producer. According to Geary and Woodall [30] each flower spike produces an average of 30 capsules. Each capsule contains 200 to 350 seeds, and a single branch may bear 8 to 12 capsules. A review by Hofstetter [35] estimated that a 33-foot (10 m), open-grown tree may bear 20 million or more canopy-stored seeds. Rayachhetry and others (unpublished data, as cited in [73]) estimated that a melaleuca tree 69 feet (21 m) tall and 15 inches (38 cm) dbh in a "dry" habitat in southern Florida may bear as much as 75 pounds (34.2 kg) of fresh (19 lbs. (8.7 kg)) capsules containing 3.7 pounds (1.7 kg) of dry seeds, or about 51 million seeds. Assuming 9% of seeds produced are viable and capable of producing seedlings (see Seed banking and Germination), this tree may bear approximately 5.6 million viable seeds in its canopy [73].

It appears that melaleuca is reproductively precocious for a tree. According to Gifford (1912, as cited in [48]), 3-year-old saplings were observed to "bloom profusely," and even seedlings less than a year old may bear seed. Meskimen [48] observed flowering and seed production in numerous wild melaleuca seedlings estimated at less than 2 years old.

Flowering and seed production are apparently much reduced on shaded branches [48]. Extremely dense stands appear to produce very few flowers. Flowering in these stands is mostly limited to exposed branches, usually in the very top of the canopy. However, such stands may also contain large canopy-emergent individuals, presumably founders of the dense, main-canopy cohort, which can continue to produce substantial numbers of seeds in their upper crowns [54].

Seed dispersal: Seeds are contained within capsules and are retained in the canopy upon maturity. Capsule dehiscence and seed release are thought to be triggered by capsule desiccation. Natural seed release is triggered by mechanical injury, radial growth, fire, frost, shade dominance, and possibly age [30,48,93,112]. Herbicide application may also induce seed release [112].

Melaleuca seed release occurs both episodically and continuously. Depending upon severity, injury to part or the entire tree can cause a relatively rapid purge of substantial numbers of canopy-held seeds. According to Woodall [112], "a hot crown fire causes complete capsule dehiscence in a matter of days" (see Plant Response to Fire).

Light seedfall occurs more or less continuously in the absence of substantial damage. Woodall [112] observed continuous seed rain from undamaged trees from July to January in southern Florida. Weekly seedfall during this period was approximately 2,260/m² in a mature closed stand (4600 trees/ha). Seed release from undamaged trees is primarily the result of self-pruning due to shade. Because self-pruning is a result of competition for light among branches, and because this competition is most intense during periods of rapid growth, seedfall from undamaged trees is probably greatest during periods of rapid growth [112].

The importance of wind dispersal is unclear. Woodall [112] suggested that melaleuca seeds do not appear strongly adapted to wind dispersal. It was estimated that, under "average conditions," most seeds fall no farther than 8.5 times the height of the seed source, usually <560 feet (170 m) [112]. Meskimen [48] observed that "even light breezes" may cause seeds to fall "at least 1.5 times the vertical distance" from which they are released. It was speculated that seeds released from high in the crowns of mature melaleuca trees may travel "considerable distances in normal breezes," and even greater distances when released during high winds. In support of this assertion, it was observed that scattered melaleuca reproduction could sometimes be found hundreds of yards or more from the nearest seed trees [48]. A simulation model developed by Browder and Schroeder [11] suggested the maximum distance that viable seed might be carried by 100-knot winds, such as might occur during a hurricane, is 4.4 miles (7.1 km). Duever and others [23] suggested that hurricanes are "probably not a significant environmental factor as far as the growth and spread of melaleuca is concerned. Hurricane damaged branches and fallen trees will not release their seed until long after winds have subsided. Fallen branches release their seed so close to the ground that the advantage of height is lost. Hurricanes could, however, transport seed-bearing branches some distance from the original tree."

Fresh melaleuca seeds apparently resist wetting and may remain on the surface of water for days, indicating that dispersal by water currents over greater distances than provided by freefall is possible [112]. Dispersal of floating seeds may be enhanced by wind, particularly where seeds have fallen on floating litter or debris [48]. Thoroughly wetted seeds will not float [113]. Meskimen [48] suggested that viable seeds sink if surface tension is broken, while nonviable seeds may float indefinitely.

Meskimen [48] suggested that animals or humans may disperse seeds considerable distances if seeds are lodged in fur, feathers, clothing, etc.

Seed banking: Melaleuca stores its seed in the canopy from which it is released upon injury to the tree. Woodall [112] suggested that ripe seeds are held indefinitely. According to Meskimen [48], capsules may remain indefinitely on small branches but are eventually sloughed off larger branches as their diameter increases.

Although potentially vast numbers of seed may be stored in the canopy, it appears that viability of canopy-stored melaleuca seed diminishes with age. In an unreplicated laboratory experiment, Meskimen [48] observed germination of melaleuca seeds from 8 distinct clusters of capsules located along a single branch. No age estimate was made of seeds from the 8 different branch positions, but germination was greatest (% germinable) and most rapid among middle-aged groups and became somewhat slower and diminished for the older groups. Ultimately, perhaps only a small portion of canopy-held seeds become germinants. Rayachhetry and others [73] sampled canopy-held melaleuca seeds in southern Florida. They found an average of more than 85% of canopy-stored seeds contained no embryo. Of the <15% of canopy-held seeds that contained embryos, an average of 62% (0% to 98%) were viable. Overall, an average of 9% (0% to 41%) of canopy-held seed was viable [73].

Seed-bearing melaleuca trees can rapidly replenish canopy-held seed stores following disturbance-induced seed rain. Myers and Belles [54] sampled capsule clusters from 3 mature trees that had been subjected to 100% crown scorch. Sample trees were harvested at postfire year 2, and seed capsules were separated into 3 categories: 1) burned and presumably open (seeds dispersed) after the fire, 2) mature capsules with viable seed presumably produced since the fire, and 3) immature. Numbers of burned clusters per tree ranged from 2,663 to 3,971. Numbers of mature clusters per tree ranged from 1,850 to 2,402, and numbers of immature clusters per tree that would have been mature within a few months of sampling ranged from 1,320 to 3,905.

The propensity for melaleuca to accumulate soil seed banks is unclear. It appears that some seeds may remain viable but ungerminated for some time following dispersal. Woodall (unpublished observations cited in [113]) observed that some melaleuca seeds remained germinable following 10 months of "shallow burial in a swamp soil that fluctuated between saturated and unsaturated conditions." Approximately 63% of seeds that were buried in a "well-drained saw-palmetto prairie soil" lost their germinability within 10 months. In both cases it was suggested that burial prevented germination. It was also suggested that "rain plowing," or burial by rain splash, possibly delayed germination by continually bringing some seeds to the surface while burying others [113]. Whether "rain plowing" on sandy soils can bury seeds deep enough to inhibit germination is unknown. Differences in germination may also have been due to different moisture conditions in the different soils. According to Van and Rayamajhi (unpublished data cited in [74]), "a small fraction of seeds remain viable in dry sites even after 2 years in the soil."

It appears unlikely that soil seed banks accumulate where soils receive periodic moisture. In a greenhouse experiment in which all treatments involved subjecting seeds to some type of moisture, Myers [51] found that no further germination occurred after 10 days following treatment initiation. Germination may proceed over a longer period under field conditions, but with adequate soil moisture, nearly all dispersed germinable seeds germinate relatively quickly [51,54]. Rayachhetry and others [73] estimated that an average of 27% of canopy-held seeds judged viable did not germinate within 10 days of soaking. They suggested that these seeds demonstrated some type of dormancy and may contribute to a transitory soil seed bank.

Germination: Several field studies in southern Florida indicate that melaleuca seeds germinate best when soils are moist, but not when inundated or dry [51,54,55]. Seeds that are dispersed when soil conditions are dry apparently will germinate only once rains provide adequate moisture. Apparently germination is also initially constrained when dispersal occurs over standing water [54]. While seeds can germinate while submerged [34,43,51], Myers [50] suggested that it is rare under "normal" field conditions, and that germination may be inhibited by low levels of dissolved oxygen common in stagnant floodwaters. Ungerminated seeds that are submerged will often germinate once floodwaters recede [50,54]. In field observations, postfire germination was recorded for more than 2 months, until sites became flooded during summer rains. Data recording ceased during the flooded period and was resumed once floodwaters receded. Following flooding, only 3 new seedlings appeared among all fifteen 1.1-foot2 (0.1 m²) plots. It was not clear if any germination had occurred while the sites were flooded, but if so, no germinants survived the nearly 4 months of inundation [54].

There are conflicting reports regarding floating vs. sinking melaleuca seeds as a measure of viability. While Meskimen [48] suggested that when seeds land on substrate that is subsequently flooded, viable seeds remain submerged while nonviable seeds float indefinitely, Hartman [34] found the opposite to be true.

Woodall [111] suggested that southern Florida soil types can influence melaleuca germination depending upon how well the substrate provides moisture to the surface. Organic soils such as peat hold large amounts of water at very low tensions and therefore provide water to the surface more reliably than marl (calcium carbonate clay) or sand [111].

Melaleuca seed germination may be affected by light availability. There is some evidence that germination is inhibited by burial (see Seed banking). Results from field studies in Big Cypress National Preserve indicate melaleuca germination is greater on recently burned sites compared with similar unburned sites where intact vegetation, litter, and periphyton (postflood detritus from algae/other aquatic plants) may increase shade [51,54,55]. In a laboratory experiment, Hartman [34] found that while at least some seeds germinated under conditions ranging from full light to total darkness, germination was significantly (p<0.003) lower in darkness (5% germination after 40 days) compared with "high" light (17% germination) or low (27% of "high") light (12% germination) treatments.

Seedling establishment/growth: Seedling establishment is probably the stage in the life history of melaleuca that most influences its distribution in southern Florida. "Once past the early seedling stage, melaleuca rarely succumbs to natural forces in southern Florida" [35]. Newly germinated seedlings are small, lacking in energy reserves, and susceptible to fire, frost, flooding, and drought [44,48]. Woodall [111] indicated that, depending on site conditions, 1st-year seedling growth is often slow.

Melaleuca seedling establishment can be prodigious, especially following fire (see Plant Response to Fire). Myers and Belles [54] reported an average of 1,609 seedlings/m² at one site in southern Florida. Although establishment of such dense thickets may represent an extreme scenario, it does demonstrate the contribution of seedling establishment to melaleuca's invasive potential [48]. But seedling mortality can drastically limit melaleuca recruitment. Melaleuca seedling establishment is often hindered by extreme or prolonged drought or flooding [54,111]. Younger seedlings appear most vulnerable, with tolerance increasing as seedlings mature [54].

The most important factor affecting melaleuca seedling establishment in southern Florida is probably hydroperiod [51]. Ideal sites remain moist to saturated during the 4- to 6-month wet season (summer), providing conditions that promote initial growth and development sufficient to survive the dry season [51,111]. Greatest amounts of germination, establishment, and initial height growth generally occur during wet periods [113]. Seedlings that germinate at the beginning of the wet season, prior to flooding, may survive if flooding is of short duration. Seed that falls during flooding may germinate immediately after the flooding recedes, probably the most favorable situation for survival. Seedlings that establish after surface inundation has receded must develop sufficiently to survive the ensuing dry season. Seedlings that germinate outside the wet season are unlikely to survive. While germination may be triggered by a brief rain, or even fog or heavy dew, these situations usually provide insufficient moisture for continued development [51]. Because surface flooding tends to inhibit germination and establishment, the beginning and end of the wet season are most favorable for establishment in areas where extensive flooding occurs [111,113].

Laboratory research that examines the effects of flood depth and duration may be instructive for understanding melaleuca seedling survival. Laboratory experiments demonstrated that seedlings under partially flooded and soil-saturated conditions grew significantly (p<0.01) taller than seedlings grown in moist, well-drained medium [48] and that seedling height growth over 6 months was greater under saturated soil conditions compared to moist, well-drained soil [50,51]. However, plants grown under saturated conditions "produced weaker stems that were unable to support the aerial portions in an upright position" [51].

Complete submersion under flood waters can severely reduce melaleuca seedling survival. Myers and Belles [54] studied melaleuca seedling establishment following wildfire in Big Cypress National Preserve. At one site, postfire seed rain and maximum seedling numbers occurred just prior to the onset of summer rains and submersion. Although preflood seedlings were numerous (mean of 1,609/m² at one site), comparatively few seedlings survived wet season floods (mean of 30/m² at the previously mentioned site). Survivors were typically found "on hummocks or rises associated with the bases of larger trees" where flood duration was shortest. It was not clear from this study what caused such high levels of seedling mortality. Submerged seedlings may be killed if they are smothered by algae [44,50]. In a greenhouse experiment, Myers [50] showed that melaleuca seedling survival was minimal following ≥4 months of submersion.

Short of immediate mortality, seedling submersion typically results in drastically reduced growth, growth stagnation, or even reduced biomass. Nevertheless, at least some melaleuca seedlings may survive extended periods of submersion. In a greenhouse experiment, Myers [51] demonstrated that melaleuca seedlings can survive complete submersion for up to 6 months, although submersion for extended periods increases mortality. All treatments involving submersion resulted in reduced biomass accumulation [51]. In laboratory experiments, Meskimen [48] found that submerged melaleuca seedlings exhibited little height growth. Preflood leaves on submerged seedlings rapidly abscised, and were replaced only on the lower portion of the stem by "extremely short, thick leaves." Once the submerged plants were drained they resumed what appeared to be "normal" growth [48]. In a greenhouse experiment, Hartman [34] studied the effects of inundation on potted seedlings. Inundated seedlings grew more slowly than seedlings potted in moist soil, but mortality (~10% after 165 days) was not substantially different between treatments.

Seedlings may be more tolerant of fluctuating floodwaters. In greenhouse experiments, Myers [50] found that seedlings subjected to an alternating regime of submergence and drainage every 3 days seemed less affected by submergence than seedlings in a 2-week cycle. It was noted that rapidly fluctuating water levels are characteristic of artificially drained habitats, which are common in southern Florida. Seedlings are much less tolerant of submersion for longer periods [50]. In a laboratory experiment, Lockhart and others [44] studied the responses of 7-week-old melaleuca seedlings to hydroperiod lengths and patterns (1st flooded then drained, and vice versa). Seedling height growth was greatest when soil was wet to slightly drained for 12 weeks immediately after germination, followed by variably flooded conditions during which plants were both partially and fully submerged. Height growth was generally greater under longer hydroperiods than with shorter hydroperiods. Under initially flooded conditions submerged seedlings grew less rapidly in height compared with emergent seedlings. Branching was significantly (p<0.02) greater with shorter hydroperiods, regardless of timing of flooding [44].

Prolonged drought can substantially reduce postdisturbance seedling establishment [44,111,113]. Young melaleuca seedlings are particularly susceptible to drought [44,54]. Woodall [113] demonstrated that when favorable germination conditions are soon followed by a prolonged dry period, extant seeds germinate and the germinants then die. In the absence of further seed dispersal onto the site, this leaves little germination potential once rains resume (but see Seed production). Yet melaleuca seedlings can apparently tolerate some short-term drought. Woodall [111] described how "root elongation" of melaleuca seedlings can "keep up" with a water table that recedes gradually (1-3 cm/day). Seedlings would probably die if recession continued into depths lower than -3.3 feet (-1 m) for more than short periods [111].

The presence and character of a litter layer may affect melaleuca seedling establishment. Postfire seedling establishment is thought to be enhanced, at least in part, by lack of litter [112] (see Fire Adaptations and Discussion and Qualification of Plant Response to Fire). Woodall [111] discussed observations of both the prevention and encouragement of establishment by a litter layer. Fully erect 1-week-old seedlings are typically only 0.08 to 0.16 inch (2-4 mm) tall and their roots little longer. Germinants are often prohibited from rooting by a dense mat of overlapping leaves (typical of melaleuca's own litter) prior to either becoming flooded or desiccated. Desiccation can occur if the leaf litter dries, curls somewhat, and thereby breaks the pathways by which moisture can migrate to the litter. Yet a fresh covering of pine or cypress needles (as might fall after a fire) is structured in a way that provides germinants access to a favorable rooting medium, while simultaneously protecting both seedlings and the soil surface from drying [111].

Melaleuca seedlings grow well on organic soils or rotting stumps, but on these substrates a relatively stable water source is imperative [111]. In a laboratory experiment, 100% of germinating seeds rooted in a peat substrate, while approximately 45% of germinating seeds rooted in clay loam [34]. Meskimen [48] observed melaleuca seedlings established on logs, butts of cypress trees, root masses, etc. This phenomenon occurred on structures lying above the water line in permanently or semipermanently flooded habitat where melaleuca establishment might otherwise have been unlikely, such as deep-water marshes or the interiors of baldcypress stands. Apparently melaleuca establishment under such conditions can lead to growth of mature trees, as it was noted that many large mature trees appeared to be "growing right out of the sides of the butts of old fire-killed cypress trees" [48].

Sandy soils get hotter than most other soils. Because the upper layers of a sandy soil dry rapidly, there is less evaporative cooling, and melaleuca seedlings on such sites are subject to desiccation and heat damage [111].

A number of observations have illustrated how site conditions can affect seedling establishment. Meskimen [48] noted that newly established melaleuca stands are typically localized and aggregated rather than continuous over extensive areas in southwestern Florida where pine flatwoods are interspersed with ponds, sloughs, and cypress stands. The following explanations were offered. First, seeds may be concentrated in natural depressions, ponds, or sloughs by receding floodwaters. Second, most seeds typically fall only a short distance from the parent tree. Third, the small size and limited resources of melaleuca seeds probably preclude establishment over all but the most conducive site conditions [48]. Yet at least some seedling establishment is possible even when environmental conditions are poor [113]. "Prolonged favorable conditions required for successful establishment are restricted to areas that are neither too wet nor too dry and times of the year when moisture availability is most predictable. The most favorable sites for melaleuca include depressions in pine flatwoods, the broad ecotonal region where pine and pond cypress intermix, and the less flooded edges of cypress strands and domes" (Myers 1983; cited in [52]).

To demonstrate how timing of fire, drought, and hydroperiod can favor or limit seedling establishment, it may be instructive to examine 3 prescribed fires conducted by Myers and Belles [54] during 3 different seasons in Big Cypress National Preserve. 1) A mid-January burn coincided with moist soil conditions. Germination began within a week of the fire, and by week 4 there was an average of 2,137 seedlings/m² at this site. Substantial seedling mortality ensued during the 20 week dry season, until average seedling density was reduced to 30/m². However, nearly all these survivors established and survived ensuing rainy season floods and another dry season. 2) A mid-March burn was followed by April rains, resulting in a mean of 103 seedlings/m² at postfire week 6. An ensuing 7-week drought reduced average seedling density to 7/m². Onset of summer rains in June prompted another episode of germination. Prior to flooding of the site (postfire weeks 16-34) average seedling density reached a maximum of 645/m². Seedling density was subsequently reduced by prolonged submersion and the next spring drought. Virtually all surviving seedlings (mean seedling density 135/m²) also survived their second wet season. 3) An early July burn was conducted over shallow standing water. Initial postfire germination was limited (mean seedling density 42/m²), probably due to standing water. Seed rain may also have been lower at this site due to the moderating effect of flood waters on fire behavior. Water levels rose between postfire weeks 3 to 5, and the site remained flooded until postfire week 17, at which time average seedling density was 18/m². Germination commenced following the receding of floodwaters, with average seedling density reaching a maximum of 126/m². Mortality was 96% during the ensuing dry season, but most of those that survived the drought had grown enough to also survive the next season's flooding (~ 5/m²).

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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Regional Distribution in the Western United States ( Inglês )

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This species can be found in the following regions of the western United States (according to the Bureau of Land Management classification of Physiographic Regions of the western United States):

BLM PHYSIOGRAPHIC REGIONS [8]:




None
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

States or Provinces ( Inglês )

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(key to state/province abbreviations)
UNITED STATES CA FL HI IA TX PR
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Successional Status ( Inglês )

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More info for the terms: cover, forest, hardwood, herbaceous, marsh, succession, tree, woodland

As of this writing (2005), there is very little information on succession and community/stand dynamics in native plant communities where melaleuca is present in southern Florida. Given melaleuca's propensity for rapid and profuse regeneration following disturbance, particularly after fire (see Fire Ecology and Fire Effects), it is likely that invasion will have the greatest impact on successional trajectories where disturbance is frequent and/or severe.

Melaleuca commonly invades herbaceous communities in southern Florida (see Habitat Types and Plant Communities) and is likely to alter succession on these sites. Richardson [75] indicates melaleuca invasion in wet prairies (St. Johnswort/pipewort spp.) may interact with drought or human-caused drainage to inhibit succession to marsh (sawgrass/arrowhead (Cladium/Sagittaria spp.)) communities. Apparently dense melaleuca reproduction in these areas "has retarded normal succession." The canopy cover of dense stands of melaleuca saplings shades the herbaceous layer, severely reducing cover of native species [75].

Melaleuca also invades a variety of forest, woodland, and savanna habitats in southern Florida. It is classified as shade intolerant [30], although Woodall [111] asserts that "the only native tree stands that may have shade deep enough to inhibit melaleuca are dense hardwood swamps and hammocks. The canopies of virtually all pine stands and most cypress stands are too open to seriously inhibit melaleuca establishment."

See Cultural control for a discussion of "forced succession" as a control method.

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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Taxonomy ( Inglês )

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The currently accepted scientific name for melaleuca is Melaleuca quinquenervia
(Cav.) S. T. Blake (Mytraceae) [9,30,31,37,41,42,94,115,116].

Turner and others [96] provide a brief review of the Melaleuca genus in
Australia, indicating that all known Melaleuca spp. (up to
250) are native, and all but 9 are endemic. Boland and others [9]
suggest there are about 150 described species of Melaleuca.


The name melaleuca is of Greek origin, meaning "black and white", presumably referring to
the white bark that is often charred black by fire (Debenham 1962 as cited in [96]).

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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

U.S. Federal Legal Status ( Inglês )

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Noxious weed [97]
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Munger, Gregory T. 2005. Melaleuca quinquenervia. In: Fire Effects Information System, [Online]. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fire Sciences Laboratory (Producer). Available: https://www.fs.fed.us/database/feis/plants/tree/maggra/all.html

Associated Forest Cover ( Inglês )

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Most natural vegetation of southern Florida can be invaded to some extent by melaleuca (8, p. 9-15). It is often found growing in the cover type Pondcypress (Society of American Foresters Type 100) and in South Florida Slash Pine (Type 111); to a lesser extent it can be found in Baldcypress (Type 101) (6). The ecotone between slash pine and either cypress variety is readily invaded. Melaleuca also exists in some locations with the naturalized species Brazil peppertree (Schinus terebinthifolia) and Australian pine (Casuarina spp.). It is even found with button-mangrove (Conocarpus erectus) just inland of the tidal zone of Mangrove (Type 106). However, melaleuca invasion is less prominent on forested sites than on marshes and wet savannas.

Most shrub, herb, and graminoid species in southern Florida are likely to be found in association with melaleuca. Common associates are saw-palmetto (Serenoa repens), three-awn wiregrass (Aristida stricta), southern bayberry (Myrica cerifera), sawgrass (Cladium jamaicense), buttonbush (Cephalanthus occidentalis), and sawfern (Blechnum serrulatum).

In Hawaii, natural regeneration occurs only at the edges of plantations, on road cuts, and in swampy, sparsely vegetated spots in forests (20). It is one of the few trees that survive planting and reproduce naturally on upland bogs that form when native forests are destroyed.

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Climate ( Inglês )

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Southern Florida's climate is transitional between tropical wet-and-dry and subtropical humid and is similar to the climate of melaleuca's native habitat in Australia (21). The rainy season normally begins in June and ends in September in Florida. Occasional sudden freezing temperatures, which can be expected from late November to early March (15), and dry-season rainfall, both of which result from the passing of continental cold fronts, distinguish southern Florida's climate from tropical wet-and-dry.

In Hawaii, rainfall is evenly distributed or has a winter maximum. Good growth of melaleuca occurs at mean annual temperatures from 24° to 18° C (75° to 65° F), but trees grow in even cooler temperatures at high elevations (20). Trees grow well in rainfall of 1020 min (40 in) at lower elevations (20), and 5080 mm (200 in) at higher elevations.

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Damaging Agents ( Inglês )

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Melaleuca seems to be unusually free of disease, even in its native habitat (9,22). Although many insects, nematodes, and fungi have been found on melaleuca in Florida, none seriously damages the trees (8, p. 125-128). Severe freezes defoliate and kill branches of mature melaleuca even in extreme southern Florida, but trees generally recover by epicormic sprouting. Even when the cambium is killed to the ground line, sprouts arise from the root collar. Seedling kill from freezes, however, probably limits significant amounts of natural regeneration north of Lake Okeechobee. Melaleuca is rarely killed by fire; fire-damaged trees quickly recover by prolific epicormic sprouting.

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Flowering and Fruiting ( Inglês )

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In Florida, flowering typically begins by age 3 and seedlings less than I m (3 ft) tall may bloom (14). Showy flowers are borne in creamy-white "bottlebrush" spikes 3 to 8 cm (1 to 3 in) long. Flowering occurs in every month except February, March, and April. After flowering, twigs continue to elongate from the ends of spikes to produce leaves or more flowers. Individual trees bloom from two to five times a year, but pronounced, regionwide flowering occurs at least twice a year. Soil type may influence time of flowering, and heavy rainfall may trigger flowering. In Hawaii, melaleuca flowers throughout the year (20). The species is monoecious, flowers are complete, and pollination is by insects.

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Genetics ( Inglês )

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Melaleuca was initially introduced into Florida as seeds and probably originated from only a few trees in New South Wales, Australia (14). Records for these initial and possibly subsequent introductions are inadequate for determining provenance.

Racial differences have not been observed in Florida. In Hawaii, at least eight other melaleuca species are present on a minor scale (20). Melaleuca quinquenervia for many years was lumped with nine other species under the name M. leucadendron (L.) L., confusing the literature considerably (2).

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Growth and Yield ( Inglês )

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The difficulty in determining ages of melaleuca trees has limited growth analyses (7,8, p. 23-28). A representative sapling stand may have 34,500 saplings per hectare (14,000/acre), and some areas have up to 158,000 per ha (64,000/acre). In Florida swamps, melaleuca stands that appear mature (fig. 1) may have 7,000 to 20,000 melaleuca stems per hectare (2,900 to 8,100/acre), outside bark basal area up to 133 m²/ha (580 ft²/acre), and a volume outside bark of 770 m³ /ha (11,000 ft³/acre). Average heights in these stands range from 15 to 21 m (49 to 69 ft). Maximum height is 30 m (98 ft). Stands on shallow or better drained soils contain substantially less volume than the swamp stands, although the density of stems may be equally high.

Trees in Hawaiian plantations (20) at age 40 on good sites average 50 cm (20 in) in d.b.h. and 18 in (60 ft) tall at a spacing of 6 by 6 in (20 by 20 ft). The largest trees there reach 90 cm (36 in) in d.b.h. and 24 in (80 ft) in height.

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Reaction to Competition ( Inglês )

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Melaleuca rarely has to compete directly with other tree species in Florida because it mainly invades sparsely vegetated ecotones, prairies, marshes, and fire-damaged forests. It is classed as intolerant of shade. Melaleuca's presence in pine and cypress stands can cause an otherwise innocuous fire to become a crown fire that damages melaleuca only superficially but can kill the coniferous competition (8, p. 2935). Massive seed release typically follows, allowing melaleuca to preempt the site and form an almost pure stand. Pure stands with closed canopy strongly inhibit the development of understory vegetation, including advance reproduction of melaleuca seedlings.

Landscaping and lowering of water tables have accelerated the spread of melaleuca in Florida and increased the area that can be invaded easily. Melaleuca is a common ornamental in southern and central Florida; seed trees have, thereby, become widely distributed. Drainage and excessive use of ground waters shortens the annual hydroperiod, the effect being a substantial increase in large destructive wildfires (24). A general drying of the environment places most native wetland plants at a disadvantage relative to melaleuca, which successfully combines the tolerance of fire and seasonally low ground water levels with adaptations to seasonal flooding. In Hawaii, fire is not common and sites with impeded drainage do not dominate; therefore, melaleuca has little competitive advantage.

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Rooting Habit ( Inglês )

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The root system of melaleuca is adapted to fluctuating water tables. The surface root network is complemented by abundant vertical sinker roots that extend at least to the water table's deepest annual level. During periods of surface flooding, "water roots" proliferate from permanent surface roots and submerged portions of the stem (14).

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Seed Production and Dissemination ( Inglês )

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Melaleuca's reproductive potential is prodigious (14,25). On average, 30 sessile seed capsules are left by one flower spike; a branch may bear 8 to 12 of these seed-bearing sections, often alternating with foliage, along a single axis. The capsules are hard, woody, squat, cylindrical, and brown and are aggregated in tightly packed files around the branches. A tree can hold seeds for more than 10 years. The seeds are tiny (30,000/g or 850,000/oz); a single capsule contains 200 to 350 seeds. Seeds are not released at maturity, but fire, frost, wind breakage, natural pruning, or damage by people interrupts the capsules' vascular connections, causing them to dehisce. While large numbers of seeds are typically released after injury, seedfall may occur year round. Ninety-nine percent of the seeds fall within a radius 15 times the height of the seed tree (8, p. 17-21). Fallen seeds can be spread by flowing water.

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Seedling Development ( Inglês )

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Germination is epigeal. Dense reproduction occurs when fire prepares a seedbed and causes trees to shed millions of seeds. Seedlings averaging 2 m (6.5 ft) tall may be as dense as 3.5 million per ha (1.4 million/acre). If seedlings are submerged by water for several months, they may survive and resume growth. Seedling height growth may occur every month of the year, but growth is most rapid in spring to early summer and late summer to early fall. Natural seedlings rarely grow more than 1 m (3 ft) tall during the first year. However, seedlings planted at a density of 10,000 per ha (4,050/acre) grew 2 m (6.5 ft) in 6 months on drained muck soil (5,7,8, p. 23-28, 14,17).

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Soils and Topography ( Inglês )

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Most of southern Florida is less than 8 in (25 ft) above sea level. The land is level to very gently sloping, and a freshwater table is close to the soil surface. In general, soils supporting melaleuca are in the suborders Psammaquents, Aquods, and Saprists (sometimes marly) of the orders Entisol, Spodosol, and Histosol, respectively (23). Many soils are shallow and underlain by limestone. In Hawaii, melaleuca is found from sea level to 1400 in (4,500 ft) elevation (20). It grows fairly well on all Hawaiian soils, including calcareous beach sand, but does best on Inceptisols (Dystrandrepts), Ultisols, and Oxisols developed on basalt ash or lava rock of pH 4.5 to 5.5, and under rainfall of 2030 to 5080 min (80 to 200 in) per year.

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Special Uses ( Inglês )

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In Florida, melaleuca is a common ornamental, but to many, an undesirable one because of its reputation for causing acute respiratory problems. Volatile substances produced by the tree have been implicated (16). Oils in the foliage and bark emit a medicinal fragrance; the nectiferous flowers emit an unpleasant, musty odor. However, clinical studies found neither the tree's vapors nor its pollen to be virulent irritants or allergens (8, p. 101-115). Respiratory problems attributed to melaleuca do not occur in Australia (10) or in Hawaii (20).

Melaleuca is not used in Florida or Hawaii for traditional timber products because its bark-to-wood ratio is high, the average stem diameter small, and the form poor. However, the wood is a suitable timber for such uses as pulp and cabinetry; the bark has potential uses as an amendment to plant potting mixes and in packaging and insulation (8, p. 37-68). The entire tree can be used as a biomass fuel but it is more difficult to use than most other species because of its powdery, low-density bark (8, p. 69-78). The leaves contain an essential oil (niaouli oil) that is extracted and sold commercially in New Caledonia (2,19). The virtually identical cajeput oil is derived from Melaleuca cajeputi in Indonesia. In Hawaii the tree was planted to conserve soil on deforested sites, and the tree has had many other uses in its native habitat (18,20,22).

The abundant flower crops of this insect-pollinated species are essential to Florida's large apiary industry (8, p. 79-80). However, melaleuca in Florida is viewed by many as an environmental threat that transcends its commercial value. Native vegetation is displaced and pure stands have dubious value to wildlife (8, p. 81-89, 91-98). Its consumption of ground water is suspected to substantially exceed that of native vegetation (8, p. 117-123). Buildings in melaleuca stands are exposed to a serious fire hazard (8, p. 29-35).

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Vegetative Reproduction ( Inglês )

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Melaleuca stumps readily sprout, and felled tops can root under very moist conditions. Root suckering is rare but can be profuse when it occurs (1,14).

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Distribution ( Inglês )

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Melaleuca's native range is along the coast of eastern Australia from Sydney northward. It is native also in New Caledonia, Papua, New Guinea, and Irian Jaya. Melaleuca grows in swampy ground and on creek banks, and even on hillsides if ground water remains close to the surface. In its native habitat, melaleuca grows to 25 m (82 ft) tall and is typically found in almost pure stands or with a few associates, such as Casuarina glauca, Eucalyptus robusta, and E. tereticornis (2,3,10,22).

In melaleuca's Australian habitat, soils are nutrient deficient and flooded or wet for most of the year; summer rainfall dominates; light frost (-l° to -3° C; 30° to 27° F) occurs in most years in the south; spring is associated with brief to acute water stress; and fire and water-table fluctuations are major factors governing plant distribution (3,4,22). These conditions are similar to those of southern Florida (24) and help explain melaleuca's aggressive spread there.

In the continental United States, melaleuca is naturalized on a significant scale only in southern Florida. In Hawaii (20), a million trees have been planted in Hawaii State Forest Reserves alone, but natural regeneration is very localized. Planted melaleuca is common in southern California and is occasionally found in extreme southern Texas; it is uncommon in Puerto Rico (13).

Melaleuca was introduced to southern Florida in the early 1900's (14). By 1980 it dominated the stands in which it grew, or, where no other trees existed, it had a minimum stocking of 17 percent on 16 000 ha (40,000 acres) (8, p. 1-8). Scattered individuals and clusters of melaleuca trees grow on an additional 170 000 ha (420,000 acres) from the northern edge of Lake Okeechobee southward. Rare and isolated small pockets of natural regeneration are found in central Florida. Much of the melaleuca is in and around urban areas and it is grown as an ornamental as far north as Gainesville.

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Brief Summary ( Inglês )

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Myrtaceae -- Myrtle family

T. F. Geary and S. L. Woodall

Melaleuca (Melaleuca quinquenervia), also known as cajeput-tree, punktree, paperbark-tree, five-veined paperbark, or bottlebrush, is an evergreen tree from Australia brought to this country as an ornamental because of its showy "bottlebrush" flowers (3,11,12). It has been planted widely in tropical and subtropical regions. In Florida it has escaped cultivation and become naturalized in low areas and cypress swamps where it has an invasive habit. Any commercial use of the tree for timber products or biomass fuel is hampered by the quality of its corky bark. It is a productive honey tree, but stands of melaleuca are of dubious value to wildlife.

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Melaleuca quinquenervia ( Asturiano )

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Melaleuca quinquenervia, o niaouli, ye un árbol de pequeñu y medianu tamañu perteneciente a la familia Myrtaceae. La planta ye orixinaria de Nueva Caledonia, Papúa Nueva Guinea y la mariña esti d'Australia, a partir de Botany Bay en Nueva Gales del Sur escontra'l Norte, en Queensland y el Territoriu del Norte.[1] Naturalizóse nos Everglaes de Florida, onde se considera una maleza seria pol USDA.[2] Ye un árbol de fueya ancha que crez como un árbol frondoso d'hasta 20 m d'altor, col tueru cubiertu por una gruesa corteza asemeyada al papel de color blancu, beige y gris. Les fueyes gris-verdes son ovalaes y les flores de color crema o blanques como cepiyos de botelles, apaecen dende finales de primavera hasta la seronda.

Descripción

Melaleuca quinquenervia son parrotales o árboles, con un tamañu d'hasta 25 m d'altu; les cañes nueves seríceas, llueu glabrescentes. Fueyes alternes, elíptiques, 5–9 cm de llargu y 0.6–2.5 cm d'anchu, ápiz agudu, base atenuada, seríceas, llueu glabrescentes, ríxides. Inflorescencies n'espigues cilíndriques, d'hasta 8.5 cm de llargu, terminales o nes axiles cimeres, trupes, con munches flores, la exa floral sigue la so crecedera como un biltu frondoso; hipanto llixeramente enllargáu sobre l'ovariu, menudamente puberulento a glabro; llobos de la mota llibres cuando en yema, 5, ovaos, glabros, non reteníos nel frutu; pétalos 5; filamentos muncho más llargos que los pétalos, xuníos na base en 5 paquetes opuestos a los pétalos, blancos, cremes o colloraos; ovariu 3-locular, numberosos óvulos por lóculo. Frutu una cápsula maderiza retenida nel tarmu mientres dellos años, hemisférica, 3.5–4 mm de llargu, glabra.[ensin referencies]

Distribución y hábitat

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Melaleuca quinquenervia n'Australia
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Melaleuca quinquenervia distribution en Florida

Melaleuca quinquenervia crez nes llanures anubiertes estacionalmente y barraqueres de la mariña esti d'Australia escontra'l sur hasta la badea de Botany en Sydney.[3] Ye un componente de la sabana del oeste de Nueva Caledonia, como árboles esvalixaos que chisquen l'hábitat de pacionales. El so espardimientu al traviés d'esti paisaxe podría ser facilitada polos fueos provocaos polos humanos.[4] N'Australia, ye'l tercer xéneru de plantes más diversu con hasta 250 especies.[5] Les principales amenaces pa la M. quinquenervia son les urbanizaciones, carreteres, y los plantíos de caña d'azucre y plantíos de pinu. N'Australia nun tán protexíos en reserves, una y bones la mayoría de los sos montes alcuéntrase en propiedá privada, onde sigue anguaño.[6]

Crez en suelos limosos o pantanosos a lo llargo de los marxes de los estuarios o en banzaos, y con frecuencia ye la especie dominante. Na rexón de Sydney, crez al pie de árboles como'l ocalitu y Y. botryoides. Les plantes crecen nun suelu acedu con un pH tan baxu como 2,5.[3]

Melaleuca quinquenervia introducir en Florida dende 1900, cuando les amueses fueron llantaos cerca d'Orlando.[7] Hubo dos importantes introducciones, una por J. Gifford na Mariña Esti en 1907, y otra d'A.C. Andrews a la mariña oeste en 1912.[8] L'Alministración de l'Agua del Sur de Florida rexistró Melaleuca alredor de les árees nes que s'introducieron orixinalmente: al suroeste de Broward y Dade nel norte de la mariña esti y el sur del condáu de Llei y el norte del condáu de Collier, na mariña oeste.[9]

Ecoloxía

Melaleuca quinquenervia refaise dempués de les quemes forestales pol rebrote de yemes epicórmicas y la so lignotubérculo maderizu y rexistróse el floriamientu a les poques selmanes de ser quemada. Los árboles pueden vivir por más de 100 años, con 40 años d'edá los árboles llograr un diámetru de tueru de 2,7 m nel cultivu.

Les flores sirven como una rica fonte de néctar pa otros organismos, incluyendo los esperteyos de la fruta, una amplia gama d'inseutos y aves,[10] tales como Trichoglossus chlorolepidotus.[11] La Pteropus poliocephalus y Pteropus scapulatus'' que peracaben les flores.[12]

Química

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Melaleuca quinquenervia eceite esencial
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Quimiotipos en Melaleuca quinquenervia

M. quinquenervia demostró que produz formes químiques distintes. Estes formes o quimiotipos caracterizar polos compuestos orgánicos terpenos. El quimiotipo 1 tien terpenos acíclicos foliares, con concentraciones de sesquiterpeno Y- nerolidol 74-95% del total del aceite y monoterpeno Linalool.[13] El quimiotipo 2 tien una alta concentración de terpenos foliares cíclicossobremanera, sesquiterpeno viridiflorol con 13 a 66% del total del aceite. Quimiotipo 2 tamién inclúi monoterpenos 1,8 - cineol y α- terpineol.[13] Grandinin ye un elagitanino tamién s'atopa nes fueyes de M. quinquenervia.[14]

Usos y cultivu

Melaleuca quinquenervia tien múltiples usos, y ye llargamente utilizáu tradicionalmente polos indíxenes australianos. Un amiestu facer coles arumoses fueyes pa tratar resfriaos, dolores de cabeza y enfermedaes polo xeneral.[15] L'aceite de la fueya destilada tamién s'utiliza externamente pa la tos, los resfriaos , neuralxes y reumatismu.[16] El nerolidol y linalol quimiotipo tamién se cultiva y se destila nuna pequeña escala pal so usu en perfumería.

La corteza de papel como s'utiliza tradicionalmente pa la fabricación de coolamons , na vivienda, y p'envolubrar alimentos enfornaos como revestimiento nos fornos de tierra. El néctar estrayer tradicionalmente por llavadura en coolamons d'agua que darréu se peracaben como una bébora. La flor arumada tamién produz un miel de color ámbare escura dependiendo del distritu. Ye de sabor fuerte y encarambelada y nun se considera como un miel d'alta calidá, pero sicasí ye popular.[17]

La madera ye tolerante de ser papada, y utilízase nos barganales.[18]

Melaleuca quinquenervia utilízase de cutiu como un árbol plantáu na cai o nos parques y xardinos públicos, sobremanera en Sydney.[19] Nel so Australia nativa, ye escelente como barrera contra'l vientu, la seleición d'árboles y una fonte d'alimentos pa una amplia gama d'especies d'inseutos y aves locales.[10][20] Puede tolerar suelos anubiertos.[18] Ye consideráu pol Departamentu d'Agricultura d'Estaos Xuníos (USDA) como una maleza invasora en Florida onde foi introducida pa drenar banzaos.

L'aceite esencial de Melaleuca quinquenervia utilizar nuna variedá de productos cosméticos, especialmente n'Australia. L'aceite utilizar na yerbolera y la medicina natural pa trabayar como axente antisépticu y antibacteriano, p'ayudar coles infeiciones de vexiga, problemes respiratorios y catarros . L'aceite tien una puntuación de riesgu bien baxo (nivel 0) nel Cosmetic Safety Basebase.[21]

Taxonomía

Melaleuca quinquenervia describióse por (Cav.) S.T.Blake y espublizóse en Proceedings of the Royal Society of Queensland 69(7): 76. 1958.[22]

Melaleuca quinquenervia describióse per primer vegada como miembru de Metrosideros pol naturalista español Antonio José Cavanilles en 1797,[23] y Stanley Thatcher Blake del Herbario de Queensland dempués asitiar en Melaleuca en 1958.

Etimoloxía

Melaleuca: nome xenéricu que remanez del griegu antiguu: melanos = "negru" y leukos = "blancu" (esto fai referencia a los tueros de les plantes d'esti xéneru).

quinquenervia: epítetu específicu que remanez del llatín quinque = "cinco", y nervus = "nervios" - en referencia a venes de les fueyes.

Sinonimia
  • Melaleuca leucadendra var. angustifolia L.f.
  • Melaleuca leucadendra var. coriacea (Poir.) Cheel
  • elaleuca maidenii R.T.Baker
  • Melaleuca smithii R.T.Baker
  • Melaleuca viridiflora var. rubriflora Pancher ex Brongn. & Gris
  • Metrosideros albida Sieber ex DC.
  • Metrosideros coriacea Poir.
  • Metrosideros quinquenervia Cav.[24][25]

Ver tamién

Referencies

  1. Harden G. «Melaleuca quinquenervia (Cav.) S.T.Blake». Plantnet. Royal Botanic Gardens, Sydney. Consultáu'l 5 de mayu de 2008.
  2. «Melaleuca quinquenervia». Germplasm Resources Information Network. United States Department of Agriculture (14 d'avientu de 2004). Consultáu'l 6 de febreru de 2009.
  3. 3,0 3,1 Benson, Doug; McDougall, Lyn. «Ecology of Sydney plant species:Part 6 Dicotyledon family Myrtaceae». Cunninghamia 5 (4): p. 969. http://www.rbgsyd.nsw.gov.au/__data/assets/pdf_file/0008/58049/Cun5Ben808.pdf.
  4. Dieter Mueller-Dombois, Francis Raymond Fosberg (1998). Vegetation of the tropical Pacific islands. Springer, 159. ISBN 0-387-98313-9.
  5. Barlow, B.A.. «Patterns of differentiation in tropical species of Melaleuca L. (Myrtaceae)». Proceedings of the Ecological Society of Australia 15.
  6. C.Y., Turner; T. D. Center, D. W. Burrows, and G. R. Buckingham. Ecology and management of Melaleuca quinquenervia, an invader of wetlands in Florida, USA. Wetlands Ecology and Management. 5.
  7. Meskimen, G. F.. A silvical study of the melaleuca tree in south Florida. Univ. FL, Gainesville, FL. MS Thesis.
  8. Rothra, Y.O. (1972). John Clayton Gifford on preserving tropical Florida.
  9. Wheeler; K.M. Ordung. «Lack of an induced response following fire and herbivory of two chemotypes of Melaleuca quinquenervia and its effect on two biological control agents». Biological Control 39 (2). doi:10.1016/j.biocontrol.2006.05.016.
  10. 10,0 10,1
  11. Lepschi BJ. «Food of some birds in eastern New South Wales: additions to Barker & Vestjens». Emu 93 (3). doi:10.1071/MU9930195.
  12. Eby P (1995). The biology and management of flying foxes in NSW. Hurstville, NSW: National Parks & Wildlife Service.
  13. 13,0 13,1 Ireland, B.F.; D.B. Hibbert, R.J. Goldsack, J.C. Doren and J.J. Brophy. «Chemical variation in the leaf essential oil of Melaleuca quinquenervia (Cav.) S.T. Blake». Biochemical Systematics and Ecology.
  14. Polyphenols of Melaleuca quinquenervia leaves - pharmacological studies of grandinin. Moharram F. A., Marzouk M. S., El-Toumy S. A. A., Ahmed A. A. Y. and Aboutabl Y. A., Phytotherapy Research, Volume 17 Issue 7, Pages 767-773, doi 10.1002/ptr.1214
  15. Maiden, J.H., The Forest Flora of New South Wales, vol. 1, Government Printer, Sydney, 1904.
  16. Blake, S.T., Contributions from the Queensland Herbarium, Non.1, 1968.
  17. Cribb, A.B. & J.W., Useful Wild Plants in Australia, Collins 1982, p. 23, ISBN 0-00-636397-0.
  18. 18,0 18,1 Halliday, Ivan (1989). A Field Guide to Australian Trees. Melbourne: Hamlyn Australia, 262. ISBN 0-947334-08-4.
  19. Halliday, Ivan (2004). Melaleucas: A Field and Garden Guide. Sydney: New Holland Press, 238. ISBN 1-876334-98-3.
  20. Elliot, Rodger (1994). Attracting Wildlife to Your Garden. Melbourne: Lothian Press, 58. ISBN 0-85091-628-3.
  21. Cosmetic Safety Basebase
  22. «Melaleuca quinquenervia». Tropicos.org. Missouri Botanical Garden. Consultáu'l 16 d'ochobre de 2013.
  23. «MMetrosideros quinquenervia Cav.». Australian Plant Name Index (APNI), IBIS database. Centre for Plant Biodiversity Research, Australian Government.
  24. Melaleuca quinquenervia en PlantList
  25. «Melaleuca quinquenervia». World Checklist of Selected Plant Families. Consultáu'l 15 d'ochobre de 2013.

Enllaces esternos

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Melaleuca quinquenervia: Brief Summary ( Asturiano )

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Melaleuca quinquenervia

Melaleuca quinquenervia, o niaouli, ye un árbol de pequeñu y medianu tamañu perteneciente a la familia Myrtaceae. La planta ye orixinaria de Nueva Caledonia, Papúa Nueva Guinea y la mariña esti d'Australia, a partir de Botany Bay en Nueva Gales del Sur escontra'l Norte, en Queensland y el Territoriu del Norte. Naturalizóse nos Everglaes de Florida, onde se considera una maleza seria pol USDA. Ye un árbol de fueya ancha que crez como un árbol frondoso d'hasta 20 m d'altor, col tueru cubiertu por una gruesa corteza asemeyada al papel de color blancu, beige y gris. Les fueyes gris-verdes son ovalaes y les flores de color crema o blanques como cepiyos de botelles, apaecen dende finales de primavera hasta la seronda.

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Melaleuca quinquenervia ( Azerbaijano )

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 src=
Melaleuca quinquenervia

Melaleuca quinquenervia (lat. Melaleuca quinquenervia) - mərsinkimilər fəsiləsinin çay ağacı cinsinə aid bitki növü.

Mənbə

Xarici keçidlər

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Melaleuca quinquenervia: Brief Summary ( Azerbaijano )

fornecido por wikipedia AZ
 src= Melaleuca quinquenervia

Melaleuca quinquenervia (lat. Melaleuca quinquenervia) - mərsinkimilər fəsiləsinin çay ağacı cinsinə aid bitki növü.

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Melaleuca quinquenervia ( Alemão )

fornecido por wikipedia DE
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Blätter von Melaleuca quinquenervia
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„Glasbürstenförmiger“ Blütenstand von Melaleuca quinquenervia mit langen Staubblättern
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Samenkapseln von Melaleuca quinquenervia
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Borke von Melaleuca quinquenervia
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Bäume der Art Melaleuca quinquenervia
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Holz von Melaleuca quinquenervia

Melaleuca quinquenervia, auch als „Myrtenheide“ oder Niaouli bezeichnet, ist eine Pflanzenart aus der Gattung der Myrtenheiden (Melaleuca). Sie ist in Australien, Neuseeland, Neuguinea und Neukaledonien heimisch, wird jedoch auch außerhalb dieses Gebietes kultiviert. Sie gehört zur Artengruppe der Melaleuca leucadendra.

Beschreibung

Vegetative Merkmale

Melaleuca quinquenervia ist ein immergrüner Baum, der Wuchshöhen von bis zu 25 (maximal 32) Meter und dessen schlanker Stamm Brusthöhendurchmesser von 60 bis 100 Zentimetern oder darüber erreicht. Im Freistand bleibt der Baum klein, erreicht eine Höhe von 6 bis 16 Metern mit kurzem oft gedrehten Stamm und einer schmalen Krone. Besonders auffallend ist, die auch für andere Arten der Teebäume, charakteristische korkige, gräulich-weißliche bis hellbräunliche Borke, die bis zu 7,5 Zentimeter dick wird. Sie besteht aus zahlreichen papierdünnen Schichten, von denen sich die äußeren unregelmäßig ablösen. Die Zweige sind bräunlich bis rötlich.

Die rundlichen bis zylindrischen Knospen sind 3 bis 6 Millimeter lang und von grünlich-brauner Farbe. Die wechselständig angeordneten, steifen und ledrigen Laubblätter sind von lanzettlicher bis verkehrt-eilanzettlicher oder elliptischer Form. Die Spitze ist spitze bis bespitzt. An der Oberseite sind sie kahl und von einer kräftigeren graugrünen Farbe als an der oft schwach behaarten Unterseite. Die Blätter zeigen fünf, selten sieben von der Basis ausgehende, parallele Blattadern. Die ganzrandigen Blätter sind 4 bis 9 Zentimeter lang und etwa 2 bis 3 Zentimeter breit. Der kurze, hellgrün bis rötliche Blattstiel ist etwa 3 Millimeter lang. Die jungen Blätter sind langhaarig, im Alter verkahlen sie. Beim Zerreiben riechen die Blätter stark aromatisch nach Campher. Die aus den Blättern und Früchten freiwerdenden Substanzen können beim Menschen Reizungen der Atemwege hervorrufen.

Generative Merkmale

Die Blüten stehen in Dreiergruppen dicht beieinander in 3 bis 8 Zentimeter langen und 2,5 bis 4 Zentimeter durchmessenden, vielblütigen Ähren. Die Blütenstände sind terminal oder über-achselständig angeordnet. Die ungestielten, zwittrigen, fünfzähligen Blüten weisen einen Durchmesser von etwa 1,6 Zentimeter auf. Der wenig behaarte Blütenboden ist becherförmig und bis etwa 5 Millimeter breit. Es sind kleine Kelchblätter vorhanden. Die etwa 4 Millimeter langen Kronblätter sind meist weiß, selten rötlich, die vielen langen, an der Basis, gruppig verwachsenen und vorstehenden Staubblätter sind meistens weiß, können selten aber auch weiß-grünlich oder rötlich sein. Der halbunterständige, dreikammerige Fruchtknoten hat einen sehr langen, vorstehenden Griffel mit kopfiger Narbe, er ist länger als die Staubblätter. Die Honigdrüsen am Blütenboden sind gut erkennbar. Die Bestäubung erfolgt durch Insekten.

Es werden zahlreiche ungestielte, graubraune bis schwärzliche, verholzte, 3 bis 4 Millimeter lange und 4 bis 5 Millimeter breite, zylindrische, fachspaltige Kapselfrüchte (Scheinfrüchte) gebildet. Sie enthalten 200 bis 350 winzige, bräunlich bis weißliche Samen mit einem Tausendkorngewicht von 0,03 Gramm. Die sehr kleinen, bis etwa 1,2 Millimeter langen,[1] keulenförmigen Samen können bis zu zehn Jahre in den Kapseln verbleiben, die sich bei Reife durch drei oder vier Schlitze öffnen. Die Samen (Diasporen) werden erst bei Unterbrechung der Wasserversorgung (Xeriscenie), so bei Feuer, Frost oder Verletzungen freigegeben (Samenrückhaltung) und von Wind und Wasser verbreitet. Die Keimung erfolgt epigäisch.

Auch unter natürlichen Bedingungen findet vegetative Vermehrung durch Stockausschlag statt, auf nassen Standorten können sogar die Kronen umgefallener Bäume Wurzeln schlagen.

Die Chromosomenzahl beträgt 2n= 22.[2]

Vorkommen

Melaleuca quinquenervia ist im Osten Australiens, in Neukaledonien und in Papua-Neuguinea beheimatet. Man findet sie auch in Burma, Malaysia und auf den Molukken. Außerhalb der natürlichen Vorkommen ist die Art im Süden von Florida und auf Hawaii stark vertreten, weitere Vorkommen gibt es in Südkalifornien, Texas, auf den Karibischen Inseln, in Indien und auf den Philippinen. In allen diesen Gebieten ist die Art aus Kultur verwildert.

Sie wird aufgrund ihrer Anspruchslosigkeit und eines gewissen Zierwerts auch außerhalb des Herkunftgebiets als Ziergehölz gepflanzt oder dient zur Entwässerung vernässter Standorte. Dabei verwilderte sie oft, so in mehreren Bundesstaaten der USA. Besonders in Florida gilt sie heute als unerwünschter Eindringling und bedeckt dort inzwischen ein Gebiet von 170.000 Hektar.

Melaleuca quinquenervia ist eine genügsame Art, die auf feuchte bis nasse Standorte angewiesen ist. Sie kommt auch mit zeitweiligen Überschwemmungen oder Bodenfeuer zurecht und toleriert Salzwassergischt und Brackwasser. Sie stellt keine speziellen Bodenansprüche und wächst auf Hawaii auf sauren Basaltasche- und Lavaböden, wird aber auch zur Aufforstung alkalischer oder versalzener Standorte genutzt.

Verwendung

Diese Art wird zur Anlage von Windschutzhecken in Küstennähe eingesetzt oder zur Aufforstung alkalischer Problem-Standorte. Das Holz wird zum Boots- und Hausbau verwendet, aber auch für Eisenbahnschwellen, Fußböden oder als Brennmaterial. Die Borke dient zum Verpacken besonders von Früchten wie Weintrauben. Aus Blättern und Zweigen kann ein ätherisches Öl gewonnen werden (Niauliöl, das auch von Melaleuca viridiflora erhalten wird), das in der Herstellung von Parfüm oder der Aromatherapie Verwendung findet und insektizide Wirkung hat. Auch volksmedizinische Anwendungen sind bekannt. Es wird heute hauptsächlich in Neukaledonien gewonnen.[3]

Taxonomie

Melaleuca quinquenervia wurde bis 1968 mit neun anderen Taxa unter dem Namen Melaleuca leucodendron zusammengefasst.[4]

Einzelnachweise

  1. Melaleuca quinquenervia bei Federal Noxious Weed Disseminules of the United States, abgerufen am 11. Februar 2018.
  2. L. P. A. Oyen, Xuan Dung Nguyen: PROSEA: Plant Ressources of South-East Asia. No. 19, PROSEA, 1999, 2006, ISBN 979-8316-00-2, S. 131.
  3. Ernst Steinegger, Rudolf Hänsel: Pharmakognosie. 5. Auflage, Springer, 1992, ISBN 978-3-662-09268-2, S. 330 f.
  4. Beschreibung in The RNGR Team (englisch)
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Melaleuca quinquenervia: Brief Summary ( Alemão )

fornecido por wikipedia DE
 src= Blätter von Melaleuca quinquenervia  src= „Glasbürstenförmiger“ Blütenstand von Melaleuca quinquenervia mit langen Staubblättern  src= Samenkapseln von Melaleuca quinquenervia  src= Borke von Melaleuca quinquenervia  src= Bäume der Art Melaleuca quinquenervia  src= Holz von Melaleuca quinquenervia

Melaleuca quinquenervia, auch als „Myrtenheide“ oder Niaouli bezeichnet, ist eine Pflanzenart aus der Gattung der Myrtenheiden (Melaleuca). Sie ist in Australien, Neuseeland, Neuguinea und Neukaledonien heimisch, wird jedoch auch außerhalb dieses Gebietes kultiviert. Sie gehört zur Artengruppe der Melaleuca leucadendra.

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Niyawuli ( Quinharuanda )

fornecido por wikipedia emerging_languages
 src=
Niyawuli
 src=
Niyawuli
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Niyawuli
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Melaleuca quinquenervia

Niyawuli (izina ry’ubumenyi mu kilatini : Melaleuca quinquenervia ; izina mu gifaransa : niaouli) ni igiti.

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Melaleuca quinquenervia ( Inglês )

fornecido por wikipedia EN

Melaleuca quinquenervia, commonly known as the broad-leaved paperbark, paper bark tea tree, punk tree or niaouli, is a small- to medium-sized tree of the myrtle family, Myrtaceae. It grows as a spreading tree up to 20 m (70 ft) tall, with its trunk covered by a white, beige and grey thick papery bark. The grey-green leaves are egg-shaped, and cream or white bottlebrush-like flowers appear from late spring to autumn. It was first formally described in 1797 by the Spanish naturalist Antonio José Cavanilles.

Native to New Caledonia, Papua New Guinea and coastal eastern Australia, from Botany Bay in New South Wales northwards into Queensland, M. quinquenervia grows in swamps, on floodplains and near rivers and estuaries, often on silty soil. It has become naturalised in the Everglades in Florida, where it is considered a serious weed by the USDA.

Description

Melaleuca quinquenervia is a small to medium sized, spreading tree which usually grows to a height of 8–15 m (30–50 ft) high and a spread of 5–10 m (20–30 ft) but is sometimes as tall as 25 m (80 ft). Young growth is hairy with long and short, soft hairs. The leaves are arranged alternately and are flat, leathery, lance-shaped to egg-shaped, dull or grey-green, 55–120 mm (2–5 inches) long and 10–31 mm (0.4–1 inch) wide, three to eight times as long as wide.[3][4][5][6]

The flowers are arranged in spikes on the ends of branches which continue to grow after flowering, sometimes also in the upper leaf axils. The spikes contain 5 to 18 groups of flowers in threes and are up to 40 mm (2 in) in diameter and 20–50 mm (0.8–2 in) long. The petals are about 3 mm (0.1 in) long and fall off as the flower ages. The stamens are white, cream-coloured or greenish and are arranged in 5 bundles around the flower, with 5 to 10 stamens per bundle. Flowering occurs from spring to early autumn, September to March in Australia. Flowering is followed by fruit which are woody, broadly cylindrical capsules, 2.5–4 mm (0.1–0.2 in) long and clustered, spike-like along the branches. Each capsule contains many tiny seeds which are released annually.[3][4][5][6][7]

Habit near Woolgoolga

Taxonomy

The broad-leaved paperbark was first formally described in 1797 by the Spanish naturalist Antonio José Cavanilles, who gave it the name Metrosideros quinquenervia. The description was of a specimen collected "near Port Jackson" and it was published in Icones et Descriptiones Plantarum.[8][9] In 1958, Stanley Thatcher Blake of the Queensland Herbarium transferred the species to Melaleuca.[10] The specific epithet (quinquenervia) is from the Latin quinque meaning "five" and nervus, "vein", referring to the leaves usually having five veins.[3][5]

The common names broad-leaved paperbark, broad-leaved tea tree or simply paperbark or tea tree are used in Australia, and punk tree is used in the United States.[7] It is known as niaouli, itachou (paicî) and pichöö (xârâcùù) in New Caledonia.[11]

Distribution and habitat

Melaleuca quinquenervia in Australia

In Australia, Melaleuca quinquenervia occurs along the east coast, from Cape York in Queensland to Botany Bay in New South Wales. It grows in seasonally inundated plains and swamps, along estuary margins and is often the dominant species. In the Sydney region it grows alongside trees such as swamp mahogany (Eucalyptus robusta) and bangalay (E. botryoides). It grows in silty or swampy soil and plants have grown in acid soil of pH as low as 2.5.[12]

Broad-leaved paperbark is also native in the southern part of Indonesian West Papua and Papua New Guinea. It is widespread in New Caledonia, including Grand Terre, Belep, Isle of Pines and Maré.[11] It is a component of the savannah of western New Caledonia, scattered trees dotting the grassland habitat and its spread through this landscape might have been facilitated by human fire regimes.[13] Major threats to M. quinquenervia are housing developments, roads, sugar cane and pine plantations. Remnants in Australia are not protected in reserves, with majority of its woodland located in private property where clearing continues.[14]

Melaleuca quinquenervia has been introduced as an ornamental plant to many tropical areas of the world, including Southeast Asia, Africa and the Americas and has become a weed in many areas.[15]

Ecology

Melaleuca quinquenervia resprouts vigorously from epicormic shoots after bushfire, and has been recorded flowering within weeks of being burnt. Trees can live for over 100 years, with 40-year-old trees achieving a trunk circumference of 2.7 m (9 ft) in cultivation.[12]

The flowers serve as a rich source of nectar for other organisms, including fruit bats, a wide range of insect and bird species,[7] such as the scaly-breasted lorikeet (Trichoglossus chlorolepidotus).[16] The grey-headed flying fox (Pteropus poliocephalus) and little red flying-fox (P. scapulatus) consume the flowers.[17]

Status in the United States

Melaleuca quinquenervia distribution in Florida

Melaleuca quinquenervia was introduced into Florida as early as 1900 when specimens were first planted near Orlando.[18] There were two major introductions, one by J. Gifford to the East Coast in 1907, and one by A.C. Andrews to the west coast in 1912.[19] The South Florida Water Management District has recorded Melaleuca around the areas where they were originally introduced: southwest of Broward and northern Dade County on the east coast and southern Lee County and north of Collier County on the west coast.[20] The species is mainly found in the more frost-free areas of south Florida and only rarely in the warmer coastal areas of Pasco County.[21]

Melaleuca quinquenervia has been classified by the United States Department of Agriculture as a noxious weed in six US states (Florida, South Carolina, North Carolina, Massachusetts, Oklahoma and Texas), as well as federally.[22] It is an abundant exotic invasive plant in the Everglades.[23] Its unchecked expansion in South Florida is one of the most serious threats to the integrity of the native ecosystem.[24] This tree takes over sawgrass marshes in the Everglades turning the area into a swamp.[25] Melaleuca causes severe ecological impacts, including displacing native species, modification of hydrology, alteration of soil resources, reducing native habitat value and changing the fire regime.[26]

An experiment comparing the quantity of seeds held in the canopies of Melaleuca trees in Australia and Southern Florida found that the viability and amount of seeds found in Australia were lower when compared to those in Florida.[27] Australian Melaleuca trees held 5,000 seeds with less than 20 viable, and Florida Melaleucas contained 13,000 seeds, with greater than 1,200 viable.[27] So without a predator reducing the amount of reproductive structures in Melaleuca it can reproduce unchecked. The release from natural enemies will cause the invasive exotic plant to evolve, improving its performance in the new area.[28] This idea is supported by the results of a study on Melaleuca done by Pratt et al. (2005) showing that damage by herbivores reduced success in the following season as the reproductive structures declined by 80% with 54% less fruits. Biocontrol agents that have been released in Florida are the Oxyops vitiosa (weevil) and Boreioglycapsis (melaleuca psyllid). These insects are native to Australia and serve to reduce the growth and reproduction of M. quinquenervia by feeding on young expanding leaves and phloem of the tree.[29][30]

Punk tree is known for its capability to withstand floods and droughts.[23] If there is a canopy gap created by a flood or some other disturbance Melaleuca will establish to make use of the extra light.[25] In physically disturbed sites, flourishing invaders have high colonisation abilities.[31] For example, Melaleuca is constantly thinning itself of small branches and twigs and this causes many seeds to fall all the time along with the litter,[32] so it is always dispersing its potential offspring. Melaleuca is also capable of living in disturbed habitats such as improved pasture, idle farmland,[26] and canal affected areas. The climate in south Florida is similar to that in its native Australia, beginning with geographic locations at latitude 26º N about halfway between Lake Okeechobee and the tip of mainland Florida; in Australia the latitude 26º S lies just north of Brisbane in south Queensland. Both regions have subtropical to tropical climate. As a result of this, Melaleuca has almost been pre-adapted for south Florida. Fire thrives in these environments and seed dispersal is displaced when fire occurs.[14] Melaleuca bloom five times throughout the year, with individual branches supporting three out of the five. Each flower part can drop about 30–70 small seed capsules which can be viable for almost ten years. It was determined that each capsule contained about 200–300 seeds, dropping rapidly and can be found 170 m from the source tree. The seeds of M. quinquenervia appear to be well adapted to wet/dry seasonal climates and can even germinate underwater on soil substrate.[14]

Recent studies comparing specific leaf area of invasive exotic plants with exotic non-invasive plants and native plants in relation to disturbances have shown that invasive have a larger specific leaf area than the other plants.[31] This allows for faster growth, these results held up by many supporting studies have allowed Lake and Leishman to infer that invasive species are so successful because of their skill for fast growth, and greater capacity to capture and retain space. Melaleuca has definitely been shown to have these traits, such as in the Everglades where the Melaleuca population increased 50-fold between the early 1970s and the late 1990s.[26]

Chemistry

Chemotypes found in Melaleuca quinquenervia

M. quinquenervia have been shown to occur in distinct chemical forms. These forms or chemotypes are characterised by the organic compounds terpenes. Chemotype 1 has acyclic foliar terpenes, with concentrations of sesquiterpene E-nerolidol 74–95% of total oil and also monoterpene linalool.[33] Chemotype 2 has high concentration of cyclic foliar terpenes, in particular sesquiterpene viridiflorol with 13-66% of total oil. Chemotype 2 also includes monoterpenes 1,8-cineole and α-terpineol.[33]

Grandinin is an ellagitannin also found in leaves of M. quinquenervia.[34]

Uses

The paper-like bark is used traditionally for making coolamons, shelter, wrapping baked food and lining ground ovens.[7] The nectar is extracted traditionally by washing in coolamons of water which is subsequently consumed as a beverage. The scented flower also produces a light to dark amber honey depending on the district. It is strongly flavoured and candies readily and is not regarded as a high quality honey, but nevertheless is popular.[35]

Melaleuca quinquenervia is sometimes used as a bonsai.[36]

The timber is tolerant of being soaked, and is used in fences.[37]

Melaleuca quinquenervia is often used as a street tree or planted in public parks and gardens, especially in Sydney.[38] In its native Australia, it is excellent as a windbreak, screening tree and food source for a wide range of local insect and bird species.[7][39] It can tolerate waterlogged soils.[37] It is regarded by the United States Department of Agriculture (USDA) as an invasive weed in Florida where it was introduced to drain swamps.

The essential oil of Melaleuca quinquenervia is used in a variety of cosmetic products especially in Australia. The oil is reported in herbalism and natural medicine to work as an antiseptic and antibacterial agent, to help with bladder infections, respiratory troubles and catarrh.

Gallery

See also

References

  1. ^ Doran, J.; Thomson, L. (2019). "Melaleuca quinquenervia". IUCN Red List of Threatened Species. 2019: e.T49278407A49278461. doi:10.2305/IUCN.UK.2019-3.RLTS.T49278407A49278461.en. Retrieved 26 November 2022.
  2. ^ a b "Melaleuca quinquenervia". Plants of the World Online. Retrieved 6 September 2021.
  3. ^ a b c Brophy, Joseph J.; Craven, Lyndley A.; Doran, John C. (2013). Melaleucas : their botany, essential oils and uses. Canberra: Australian Centre for International Agricultural Research. pp. 302–303. ISBN 9781922137517.
  4. ^ a b Holliday, Ivan (2004). Melaleucas : a field and garden guide (2nd ed.). Frenchs Forest, N.S.W.: Reed New Holland Publishers. pp. 238–239. ISBN 1876334983.
  5. ^ a b c Wrigley, John W.; Fagg, Murray (1993). Bottlebrushes, paperbarks & tea trees, and all other plants in the Leptospermum alliance. Pymble, N.S.W.: Angus & Robertson. p. 297. ISBN 0207168679.
  6. ^ a b Wilson, Peter G. "Melelauca quinquenervia". Royal Botanic Garden Sydney: plantnet. Retrieved 5 February 2017.
  7. ^ a b c d e Elliot, Rodger W.; Jones, David L.; Blake. Trevor (1993). Encyclopaedia of Australian Plants Suitable for Cultivation:Volume 6 – K-M. Port Melbourne: Lothian Press. p. 359. ISBN 0-85091-589-9.
  8. ^ "Metrosideros quinquenervia". APNI. Retrieved 23 July 2015.
  9. ^ Cavanilles, Antonio Jose (1797). Icones et Descriptiones Plantarum (Volume 4, No. 1). Madrid. p. 19. Retrieved 5 February 2017.
  10. ^ "Melaleuca quinquenervia". APNI. Retrieved 23 July 2015.
  11. ^ a b "Melaleuca quinquenervia". Endemia, New Caledonia. Retrieved 5 February 2017.
  12. ^ a b Benson, Doug; McDougall, Lyn (1998). "Ecology of Sydney plant species:Part 6 Dicotyledon family Myrtaceae". Cunninghamia. 5 (4): 969.
  13. ^ Dieter Mueller-Dombois; Francis Raymond Fosberg (1998). Vegetation of the tropical Pacific islands. Springer. p. 159. ISBN 0-387-98313-9. Retrieved 17 March 2011.
  14. ^ a b c C.E., Turner; T. D. Center; D. W. Burrows; G. R. Buckingham (1998). "Ecology and management of Melaleuca quinquenervia, an invader of wetlands in Florida, USA. Wetlands Ecology and Management". 5: 165–178. {{cite journal}}: Cite journal requires |journal= (help)
  15. ^ "Melaleuca quinquenervia (paperbark tree)". Centre for Agriculture and Biosciences International. Retrieved 5 February 2017.
  16. ^ Lepschi BJ (1993). "Food of some birds in eastern New South Wales: additions to Barker & Vestjens". Emu. 93 (3): 195–99. doi:10.1071/MU9930195.
  17. ^ Eby P (1995). The biology and management of flying foxes in NSW. Hurstville, NSW: National Parks & Wildlife Service.
  18. ^ Meskimen, G. F. (1962). "A silvical study of the melaleuca tree in south Florida". Univ. FL, Gainesville, FL. MS Thesis: 177. {{cite journal}}: Cite journal requires |journal= (help)
  19. ^ Rothra, E.O. (1972). "John Clayton Gifford on preserving tropical Florida". Miami Press, Coral Gables.
  20. ^ Wheeler, G; K.M. Ordung (2006). "Lack of an induced response following fire and herbivory of two chemotypes of Melaleuca quinquenervia and its effect on two biological control agents". Biological Control. 39 (2): 154–161. doi:10.1016/j.biocontrol.2006.05.016.
  21. ^ Jarvis, BobbiJo. "Melaleuca – An Invasive Tree of Florida". University of Florida – Institute of Food and Agricultural Sciences. Retrieved 5 February 2017.
  22. ^ "Melaleuca quinquenervia". Germplasm Resources Information Network (GRIN). Agricultural Research Service (ARS), United States Department of Agriculture (USDA). Retrieved 6 February 2009.
  23. ^ a b Serbesoff-King, K (2003). "Melaleuca in Florida: a literature review on the taxonomy, distribution, biology, ecology, economic importance and control measures". Journal of Aquatic Plant Management. 41: 98–112.
  24. ^ Laroche FB, Ferriter AP (1992). "The rate of expansion of Melaleuca in South Florida". Journal of Aquatic Plant Management. 30: 62–65.
  25. ^ a b Zedler, J. B.; Kercher, Suzanne (2004). "Causes and consequences of invasive plants in wetlands: Opportunities, opportunists, and outcomes". Critical Reviews in Plant Sciences. 23 (5): 431–52. doi:10.1080/07352680490514673. S2CID 1837791.
  26. ^ a b c Mazzotti, FJ, Center TD, Dray FA, Thayer D (1997). "Ecological consequences of invasion by Melaleuca quinquenervia in south Florida wetlands: Paradise damaged, not lost". University of Florida, Institute of Food and Agricultural Sciences, Cooperative Extension Service Bulletin (SS–WEC–123): 1–5.{{cite journal}}: CS1 maint: multiple names: authors list (link)
  27. ^ a b Rayamajhi, M. B.; Van, T. K.; Center, T. D.; Goolsby, J. A.; Pratt, P. D.; Racelis, A. (2002). "Biological attributes of the canopy-held Melaleuca seeds in Australia and Florida, US". Journal of Aquatic Plant Management. 40: 87–91.
  28. ^ Hierro JL, Maron JL, Callaway RM (2005). "A biogeographical approach to plant invasions: the importance of studying exotics in their introduced and native range". Journal of Ecology. 93 (1): 5–15. doi:10.1111/j.0022-0477.2004.00953.x.
  29. ^ Wheeler, G.S. (2005). "Chemotype variation of the weed Melaleuca quinquenervia influences the biomass and fecundity of the biological control agent Oxyops vitiosa". Biological Control. 36 (2): 121–128. doi:10.1016/j.biocontrol.2005.10.005.
  30. ^ Padovan, A.; Keszei, A.; Koellner, T. G.; Degenhardt, J.; Foley, W. J. (2010). "The molecular basis of host plant selection in Melaleuca quinquenervia by a successful biological control agent". Phytochemistry. 71 (11–12): 1237–1244. doi:10.1016/j.phytochem.2010.05.013. PMID 20554297.
  31. ^ a b Lake JC, Leishman MR (2004). "Invasion success of exotic plants in natural ecosystems: the role of disturbance, plant attributes and freedom from herbivores". Biological Conservation. 117 (2): 215–26. doi:10.1016/S0006-3207(03)00294-5.
  32. ^ Van, T. K.; Rayachhetry, M. B.; Center, T. D.; Pratt, P. D. (2002). "Litter dynamics and phenology of Melaleuca quinquenervia in South Florida". Journal of Aquatic Plant Management. 40: 22–27.
  33. ^ a b Ireland, B.F.; D.B. Hibbert; R.J. Goldsack; J.C. Doran; J.J. Brophy (2002). "Chemical variation in the leaf essential oil of Melaleuca quinquenervia (Cav.) S.T. Blake". Biochemical Systematics and Ecology. 30 (5): 457–470. doi:10.1016/s0305-1978(01)00112-0.
  34. ^ Moharram, F. A. (2003). "Polyphenols of Melaleuca quinquenervia leaves - pharmacological studies of grandinin". Phytotherapy Research. 17 (7): 767–773. doi:10.1002/ptr.1214. PMID 12916075. S2CID 45936055.
  35. ^ Cribb, A.B. & J.W., Useful Wild Plants in Australia, Collins 1982, p. 23, ISBN 0-00-636397-0.
  36. ^ "Australian Plants as Bonsai - Melaleuca quinquenervia". Australian National Botanic Gardens. Retrieved 15 May 2020.
  37. ^ a b Halliday, Ivan (1989). A Field Guide to Australian Trees. Melbourne: Hamlyn Australia. p. 262. ISBN 0-947334-08-4.
  38. ^ Halliday, Ivan (2004). Melaleucas: A Field and Garden Guide. Sydney: New Holland Press. p. 238. ISBN 1-876334-98-3.
  39. ^ Elliot, Rodger (1994). Attracting Wildlife to Your Garden. Melbourne: Lothian Press. p. 58. ISBN 0-85091-628-3.

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Melaleuca quinquenervia: Brief Summary ( Inglês )

fornecido por wikipedia EN

Melaleuca quinquenervia, commonly known as the broad-leaved paperbark, paper bark tea tree, punk tree or niaouli, is a small- to medium-sized tree of the myrtle family, Myrtaceae. It grows as a spreading tree up to 20 m (70 ft) tall, with its trunk covered by a white, beige and grey thick papery bark. The grey-green leaves are egg-shaped, and cream or white bottlebrush-like flowers appear from late spring to autumn. It was first formally described in 1797 by the Spanish naturalist Antonio José Cavanilles.

Native to New Caledonia, Papua New Guinea and coastal eastern Australia, from Botany Bay in New South Wales northwards into Queensland, M. quinquenervia grows in swamps, on floodplains and near rivers and estuaries, often on silty soil. It has become naturalised in the Everglades in Florida, where it is considered a serious weed by the USDA.

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direitos autorais
Wikipedia authors and editors
original
visite a fonte
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wikipedia EN

Melaleuca quinquenervia ( Espanhol; Castelhano )

fornecido por wikipedia ES

Melaleuca quinquenervia, o niaouli, es un árbol de pequeño y mediano tamaño perteneciente a la familia Myrtaceae. La planta es originaria de Nueva Caledonia, Papúa Nueva Guinea y la costa este de Australia, a partir de Botany Bay en Nueva Gales del Sur hacia el Norte, en Queensland y el Territorio del Norte.[1]​ Se ha naturalizado en los Everglades de Florida, donde se considera una maleza seria por el USDA.[2]​ Es un árbol de hoja ancha que crece como un árbol frondoso de hasta 20 m de altura, con el tronco cubierto por una gruesa corteza parecida al papel de color blanco, beige y gris. Las hojas gris-verdes son ovaladas y las flores de color crema o blancas como cepillos de botellas, aparecen desde finales de primavera hasta el otoño.

Descripción

Melaleuca quinquenervia son arbustos o árboles, con un tamaño de hasta 25 m de alto; las ramas jóvenes seríceas, pronto glabrescentes. Hojas alternas, elípticas, 5–9 cm de largo y 0.6–2.5 cm de ancho, ápice agudo, base atenuada, seríceas, pronto glabrescentes, rígidas. Inflorescencias en espigas cilíndricas, de hasta 8.5 cm de largo, terminales o en las axilas superiores, densas, con muchas flores, el eje floral continúa su crecimiento como un brote frondoso; hipanto ligeramente prolongado sobre el ovario, menudamente puberulento a glabro; lobos del cáliz libres cuando en yema, 5, ovados, glabros, no retenidos en el fruto; pétalos 5; filamentos mucho más largos que los pétalos, unidos en la base en 5 paquetes opuestos a los pétalos, blancos, cremas o rojos; ovario 3-locular, numerosos óvulos por lóculo. Fruto una cápsula leñosa retenida en el tallo durante varios años, hemisférica, 3.5–4 mm de largo, glabra.[cita requerida]

Distribución y hábitat

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Melaleuca quinquenervia en Australia
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Melaleuca quinquenervia distribución en Florida

Melaleuca quinquenervia crece en las llanuras inundadas estacionalmente y ciénagas de la costa este de Australia hacia el sur hasta la bahía de Botany en Sídney.[3]​ Es un componente de la sabana del oeste de Nueva Caledonia, como árboles dispersos que salpican el hábitat de pastizales. Su difusión a través de este paisaje podría haber sido facilitada por los fuegos provocados por los humanos.[4]​ En Australia, es el tercer género de plantas más diverso con hasta 250 especies.[5]​ Las principales amenazas para la M. quinquenervia son las urbanizaciones, carreteras, y las plantaciones de caña de azúcar y plantaciones de pino. En Australia no están protegidos en reservas, ya que la mayoría de sus bosques se encuentran en propiedad privada, donde sigue actualmente.[6]

Crece en suelos limosos o pantanosos a lo largo de los márgenes de los estuarios o en pantanos, y con frecuencia es la especie dominante. En la región de Sídney, crece junto a árboles como el eucalipto y E. botryoides. Las plantas crecen en un suelo ácido con un pH tan bajo como 2,5.[3]

Melaleuca quinquenervia se introdujo en Florida desde 1900, cuando las muestras fueron plantados cerca de Orlando.[7]​ Hubo dos importantes introducciones, una por J. Gifford en la Costa Este en 1907, y otra de A.C. Andrews a la costa oeste en 1912.[8]​ La Administración del Agua del Sur de Florida ha registrado Melaleuca alrededor de las áreas en las que se introdujeron originalmente: al suroeste de Broward y Dade en el norte de la costa este y el sur del condado de Lee y el norte del condado de Collier, en la costa oeste.[9]

Ecología

Melaleuca quinquenervia se regenera después de los incendios forestales por el rebrote de yemas epicórmicas y su lignotubérculo leñoso y se ha registrado la floración a las pocas semanas de ser quemada. Los árboles pueden vivir por más de 100 años, con 40 años de edad los árboles lograr un diámetro de tronco de 2,7 m en el cultivo.

Las flores sirven como una rica fuente de néctar para otros organismos, incluyendo los murciélagos de la fruta, una amplia gama de insectos y aves,[10]​ tales como Trichoglossus chlorolepidotus.[11]​ La Pteropus poliocephalus y Pteropus scapulatus'' que consumen las flores.[12]

Química

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Melaleuca quinquenervia aceite esencial
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Quimiotipos en Melaleuca quinquenervia

M. quinquenervia ha demostrado que produce formas químicas distintas. Estas formas o quimiotipos se caracterizan por los compuestos orgánicos terpenos. El quimiotipo 1 tiene terpenos acíclicos foliares, con concentraciones de sesquiterpeno E- nerolidol 74-95% del total del aceite y monoterpeno Linalool.[13]​ El quimiotipo 2 tiene una alta concentración de terpenos foliares cíclicos, en particular, sesquiterpeno viridiflorol con 13 a 66% del total del aceite. Quimiotipo 2 también incluye monoterpenos 1,8 - cineol y α- terpineol.[13]​ Grandinin es un elagitanino también se encuentra en las hojas de M. quinquenervia.[14]

Usos y cultivo

Melaleuca quinquenervia tiene múltiples usos, y es ampliamente utilizado tradicionalmente por los indígenas australianos. Una mezcla se hace con las aromáticas hojas para tratar resfriados, dolores de cabeza y enfermedades en general.[15]​ El aceite de la hoja destilada también se utiliza externamente para la tos, los resfriados , neuralgias y reumatismo.[16]​ El nerolidol y linalol quimiotipo también se cultiva y se destila en una pequeña escala para su uso en perfumería.

La corteza de papel como se utiliza tradicionalmente para la fabricación de coolamons , en la vivienda, y para envolver alimentos horneados como revestimiento en los hornos de tierra. El néctar se extrae tradicionalmente por lavado en coolamons de agua que posteriormente se consumen como una bebida. La flor perfumada también produce una miel de color ámbar oscura dependiendo del distrito. Es de sabor fuerte y acaramelada y no se considera como una miel de alta calidad, pero sin embargo es popular.[17]

La madera es tolerante de ser empapada, y se utiliza en las cercas.[18]

Melaleuca quinquenervia se utiliza a menudo como un árbol plantado en la calle o en los parques y jardines públicos, sobre todo en Sídney.[19]​ En su Australia nativa, es excelente como barrera contra el viento, la selección de árboles y una fuente de alimentos para una amplia gama de especies de insectos y aves locales.[10][20]​ Puede tolerar suelos anegados.[18]​ Es considerado por el Departamento de Agricultura de Estados Unidos (USDA) como una maleza invasora en Florida donde fue introducida para drenar pantanos.

El aceite esencial de Melaleuca quinquenervia se utiliza en una variedad de productos cosméticos, especialmente en Australia. El aceite se utiliza en la herbolaria y la medicina natural para trabajar como agente antiséptico y antibacteriano, para ayudar con las infecciones de vejiga, problemas respiratorios y catarros . El aceite tiene una puntuación de riesgo muy bajo (nivel 0) en el Cosmetic Safety Basebase.[21]

Taxonomía

Melaleuca quinquenervia fue descrita por (Cav.) S.T.Blake y publicado en Proceedings of the Royal Society of Queensland 69(7): 76. 1958.[22]

Melaleuca quinquenervia fue descrita por primera vez como miembro de Metrosideros por el naturalista español Antonio José Cavanilles en 1797,[23]​ y Stanley Thatcher Blake del Herbario de Queensland después la colocó en Melaleuca en 1958.

Etimología

Melaleuca: nombre genérico que deriva del griego antiguo: melanos = "negro" y leukos = "blanco" (esto hace referencia a los troncos de las plantas de este género).

quinquenervia: epíteto específico que deriva del latín quinque = "cinco", y nervus = "nervios" - en referencia a venas de las hojas.

Sinonimia
  • Melaleuca leucadendra var. angustifolia L.f.
  • Melaleuca leucadendra var. coriacea (Poir.) Cheel
  • elaleuca maidenii R.T.Baker
  • Melaleuca smithii R.T.Baker
  • Melaleuca viridiflora var. rubriflora Pancher ex Brongn. & Gris
  • Metrosideros albida Sieber ex DC.
  • Metrosideros coriacea Poir.
  • Metrosideros quinquenervia Cav.[24][25]

Referencias

  1. Harden G (1991). «Melaleuca quinquenervia (Cav.) S.T.Blake». Plantnet. Royal Botanic Gardens, Sídney. Consultado el 5 de mayo de 2008.
  2. «Melaleuca quinquenervia». Germplasm Resources Information Network. United States Department of Agriculture. 14 de diciembre de 2004. Archivado desde el original el 18 de enero de 2012. Consultado el 6 de febrero de 2009.
  3. a b Benson, Doug; McDougall, Lyn (1998). «Ecology of Sídney plant species:Part 6 Dicotyledon family Myrtaceae». Cunninghamia 5 (4): 969.
  4. Dieter Mueller-Dombois, Francis Raymond Fosberg (1998). Vegetation of the tropical Pacific islands. Springer. p. 159. ISBN 0-387-98313-9. Consultado el 17 de marzo de 2011.
  5. Barlow, B.A. (1998). «Patterns of differentiation in tropical species of Melaleuca L. (Myrtaceae)». Proceedings of the Ecological Society of Australia 15: 239-247.
  6. C.E., Turner; T. D. Center, D. W. Burrows, and G. R. Buckingham (1998). Ecology and management of Melaleuca quinquenervia, an invader of wetlands in Florida, USA. Wetlands Ecology and Management 5. pp. 165-178. La referencia utiliza el parámetro obsoleto |coautores= (ayuda)
  7. Meskimen, G. F. (1962). A silvical study of the melaleuca tree in south Florida. Univ. FL, Gainesville, FL. MS Thesis. p. 177.
  8. Rothra, E.O. (1972). «John Clayton Gifford on preserving tropical Florida». Miami Press, Coral Gables. |fechaacceso= requiere |url= (ayuda)
  9. Wheeler, G; K.M. Ordung (2006). «Lack of an induced response following fire and herbivory of two chemotypes of Melaleuca quinquenervia and its effect on two biological control agents». Biological Control 39 (2): 154-161. doi:10.1016/j.biocontrol.2006.05.016. La referencia utiliza el parámetro obsoleto |coautores= (ayuda)
  10. a b Error en la cita: Etiqueta no válida; no se ha definido el contenido de las referencias llamadas EJ93
  11. Lepschi BJ (1993). «Food of some birds in eastern New South Wales: additions to Barker & Vestjens». Emu 93 (3): 195-99. doi:10.1071/MU9930195.
  12. Eby P (1995). The biology and management of flying foxes in NSW. Hurstville, NSW: National Parks & Wildlife Service.
  13. a b Ireland, B.F.; D.B. Hibbert, R.J. Goldsack, J.C. Doran and J.J. Brophy (2002). «Chemical variation in the leaf essential oil of Melaleuca quinquenervia (Cav.) S.T. Blake». Biochemical Systematics and Ecology: 457-470. La referencia utiliza el parámetro obsoleto |coautores= (ayuda)
  14. Polyphenols of Melaleuca quinquenervia leaves - pharmacological studies of grandinin. Moharram F. A., Marzouk M. S., El-Toumy S. A. A., Ahmed A. A. E. and Aboutabl E. A., Phytotherapy Research, Volume 17 Issue 7, Pages 767-773, doi 10.1002/ptr.1214
  15. Maiden, J.H., The Forest Flora of New South Wales, vol. 1, Government Printer, Sídney, 1904.
  16. Blake, S.T., Contributions from the Queensland Herbarium, No.1, 1968.
  17. Cribb, A.B. & J.W., Useful Wild Plants in Australia, Collins 1982, p. 23, ISBN 0-00-636397-0.
  18. a b Halliday, Ivan (1989). A Field Guide to Australian Trees. Melbourne: Hamlyn Australia. p. 262. ISBN 0-947334-08-4.
  19. Halliday, Ivan (2004). Melaleucas: A Field and Garden Guide. Sídney: New Holland Press. p. 238. ISBN 1-876334-98-3.
  20. Elliot, Rodger (1994). Attracting Wildlife to Your Garden. Melbourne: Lothian Press. p. 58. ISBN 0-85091-628-3.
  21. Cosmetic Safety Basebase
  22. «Melaleuca quinquenervia». Tropicos.org. Missouri Botanical Garden. Consultado el 16 de octubre de 2013.
  23. «MMetrosideros quinquenervia Cav.». Australian Plant Name Index (APNI), IBIS database. Centre for Plant Biodiversity Research, Australian Government.
  24. Melaleuca quinquenervia en PlantList
  25. «Melaleuca quinquenervia». World Checklist of Selected Plant Families. Consultado el 15 de octubre de 2013.

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Melaleuca quinquenervia: Brief Summary ( Espanhol; Castelhano )

fornecido por wikipedia ES

Melaleuca quinquenervia, o niaouli, es un árbol de pequeño y mediano tamaño perteneciente a la familia Myrtaceae. La planta es originaria de Nueva Caledonia, Papúa Nueva Guinea y la costa este de Australia, a partir de Botany Bay en Nueva Gales del Sur hacia el Norte, en Queensland y el Territorio del Norte.​ Se ha naturalizado en los Everglades de Florida, donde se considera una maleza seria por el USDA.​ Es un árbol de hoja ancha que crece como un árbol frondoso de hasta 20 m de altura, con el tronco cubierto por una gruesa corteza parecida al papel de color blanco, beige y gris. Las hojas gris-verdes son ovaladas y las flores de color crema o blancas como cepillos de botellas, aparecen desde finales de primavera hasta el otoño.

licença
cc-by-sa-3.0
direitos autorais
Autores y editores de Wikipedia
original
visite a fonte
site do parceiro
wikipedia ES

Niaouli ( Francês )

fornecido por wikipedia FR

Melaleuca quinquenervia

Le niaouli (Melaleuca quinquenervia) est un arbre de la famille des Myrtaceae originaire de la côte orientale de l'Australie et de Nouvelle-Calédonie.

L'espèce a été plantée dans de nombreuses régions tropicales pour l'exploitation de son bois, de ses fleurs pour la production de miel ou de ses feuilles pour la production d'huile essentielle[1]. Le niaouli est aussi utilisé comme plante d'ornement dans de nombreuses contrées tropicales, mais est parfois devenu une espèce exotique envahissante, perturbant notamment les écosystèmes marécageux comme dans les Everglades, en Floride.

Étymologie

Le terme de latin scientifique melaleuca est composé de deux termes empruntés au grec : melas (μέλας, « noir ») et leucos (λευκός, « blanc »), en raison des contrastes de couleur entre la base du tronc et les branches de l'espèce type (telle qu'elle pouvait être connue de Linné à travers la description de Rumphius).

L'épithète spécifique quinquenervia est composée de deux termes latins : quinque « cinq » et nervus « nerf », en référence aux cinq nervures des feuilles.

Le terme de niaouli dérive de yauli dans la langue de l'archipel Bélep[2] à l'extrême nord de la Grande Terre dans l'aire coutumière Hoot ma Waap (Nouvelle-Calédonie). Il est aussi appelé l'« arbre à peau », en raison d'une écorce s'exfoliant en grandes plaques de « peau » qui se détachent du tronc. Les Australiens les comparent à des feuilles de papier, ce qui explique le nom de Paper Bark Tea Tree ou de Broad-leaved paper bark qu'ils donnent à l'arbre.

Nomenclature et synonymes

Melaleuca quinquenervia manifeste une instabilité morphologique importante en Australie ou en Nouvelle-Calédonie. En Nouvelle-Calédonie, où il était connu sous le nom local de niaouli, il fut longtemps appelé Melaleuca viridiflora Gaertn[3]. À Madagascar, les ouvrages de botanique présentent le niaouli, sous le nom de Melaleuca viridiflora Sol. ex Gaertn., très souvent mis en synonymie avec Melaleuca leucadendra L. Mais selon Ramanoelina et al.[4], des études ont montré que le niaouli malgache appartient à l'espèce Melaleuca quinquenervia (Cav.) S.T. Blake.

Des études récentes de Craven et Barlow[5] ont montré la nécessité de revoir le statut de plusieurs espèces de Melaleuca. Les deux espèces M. quinquenervia et M. viridiflora appartiennent à un groupe de mélaleucas, désigné comme « Complexe Melaleuca leucadendra ». Suivant Craven[6] (2003), il rassemble les 15 espèces suivantes : 1. M. arcana, 2. M. argentea, 3. M. cajuputi Powell., 4. M. clarksonii, 5. M. cornucopiae, 6. M. dealbata, 7. M. fluviatilis, 8. M. lasiandra, 9. M. leucadendra (L.) L., 10. M. nervosa, 11. M. quinquenervia (Cav.) Blake, 12. M. saligna, 13. M. sericea, 14. M. stenostachya, 15. M. viridiflora Sol. Ces espèces sont caractérisées par des feuilles persistantes, odorantes, et larges et une écorce s'exfoliant en larges bandes. Elles se rencontrent à l'état naturel au nord-est de l'Australie tandis que M. quinquefolia s'étend sur la côte orientale australienne jusqu'à Sydney et en Nouvelle-Calédonie.

Selon The Plant List, Melaleuca quinquenervia possède pour synonymes[7] :

  • Metrosideros quinquenervia Cav.
  • Melaleuca viridiflora var. rubriflora Pancher ex Brongn. & Gris
  • Melaleuca leucadendra var. coriacea / albida (Poir.) Cheel
  • Melaleuca smithii R.T.Baker
  • Melaleuca maidenii R.T.Baker

Description

Le niaouli[1],[8] est un arbre en général de taille moyenne (de 4 à 12 m) mais pouvant atteindre 25 m. Il a souvent une silhouette tortueuse, rarement droite. Le tronc est couvert d'une écorce blanchâtre, épaisse de plus d'un centimètre[9], spongieuse mais laminée en nombreuses couches qui se détachent en larges bandes. Les jeunes rameaux sont densément soyeux et les jeunes feuilles blanchâtres, velues et brillantes[10].

Comme la plupart des espèces du genre Melaleuca, le niaouli est caractérisé par des feuilles persistantes, odorantes, se plaçant dans un plan vertical. Les feuilles sont lancéolées à oblancéolées, coriaces, de 5 à 9 cm de long, sur 0,6 à 2,4 cm de large[8]. Elles sont parcourues par 5 nervures parallèles.

Les inflorescences terminales sont de faux épis[11], de 4 à 8 cm de long sur environ 3 cm de large. Les fleurs sont généralement blanches ou blanc crème (rarement jaunes) et groupées par trois. Chacune comporte 5 sépales libres, 5 pétales (avec des glandes linéaires et elliptiques) et de nombreuses étamines (de 30 à 40, groupées en 6-9 faisceaux).

En Nouvelle-Calédonie, la floraison et la fructification s'étalent toute l'année, en fonction des conditions climatiques[11]. Les fleurs sont pollinisées par les abeilles, les oiseaux (notamment les perruches) et les roussettes.

Les fruits sont de petites capsules, en forme de coupe, glabres, renfermant des milliers de graines.

Paperbark.jpg Melaleuca quinquenervia (leaves).JPG Melaleuca quinquenervia.jpg Écorce de niaouli Feuilles Inflorescence

Distribution

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Distribution

Melaleuca quinquenervia est originaire de la côte sud-est de l'Australie, jusqu'à Sydney, de la Nouvelle-Calédonie (sur la côte ouest et dans le nord du Territoire) et de la Nouvelle-Guinée[12]. Le niaouli a été introduit en Guyane Française, Afrique de l'Est (Ouganda, Kenya, Tanzanie), en Égypte, Cameroun, Bénin, Malaisie, Philippines, Vietnam, Indonésie et Madagascar.

En Nouvelle-Calédonie, le niaouli pousse dans la brousse, les formations secondarisées et les zones humides[11] (marécages, zones inondables, estuaires…). La savane à niaouli apparaît après la destruction de la forêt sèche primaire par le défrichement et les feux répétés. Elle est liée à l'essor de l'élevage, introduit par les Européens à partir de 1850 dans les plaines littorales. Elle constitue une des formations les plus étendues de Nouvelle-Calédonie. Les niaoulis peuvent se maintenir ensuite malgré les feux de brousse réguliers, grâce aux propriétés ignifuges des multiples couches de liège qui couvrent le tronc[13],[14]. Mais il semble que les formations en équilibre avec le milieu (dites climaciques) soient celles des zones marécageuses. Car c'est là que les niaoulis ont le plus beau développement. Ce sont en outre des formations qui livrées à elles-mêmes, restent inchangées alors que les savanes à niaoulis disparaissent devant la concurrence d'autres plantes.

Le niaouli est une essence robuste, peu exigeante et qui s'adapte à de nombreuses conditions. Il se rencontre partout, du niveau de la mer jusqu'à 900–1000 m d'altitude, sur toutes les expositions. Peu à peu, il a fini par couvrir 40 % de la Nouvelle-Calédonie (Cherrier[9], 1981).

Dans les autres régions tropicales où il a été introduit, le niaouli est généralement planté en basse altitude pour l'exploitation de son bois, de ses fleurs pour la production de miel ou de ses feuilles pour la production d'huile essentielle[1]. Il a été aussi introduit comme arbre d'ornement, comme c'est le cas à La Réunion où on l'observe dans les parcs et les jardins[15]. Il s'est naturalisé mais ne présente pas pour le moment de menace importante.

Introduit en 1886 en Floride pour l'ornement, il fut aussi largement planté afin de prévenir l'érosion des sols[16]. Il s'y est naturalisé et est devenu depuis une espèce envahissante, perturbant les écosystèmes marécageux comme dans les Everglades, en Floride.

Melaleuca quinquenervia Livistona australis Wyrrabalong NP 1.jpg Niaoulis.jpg Forêt à niaouli et Levistona australis
Wyrrabalong National Park,
New South Wales, Australie Savane à Niaoulis
formation ouverte très étendue
en Nouvelle-Calédonie

Usages

En Nouvelle-Calédonie, on peut distinguer les usages traditionnels suivants[9] :

  • Le bois est utilisé pour faire des poteaux (bois de mine, piquets de clôture), de la pâte à papier, du bois d’œuvre (parquets, ponts de bateaux...), du bois de feu et du charbon de bois.
  • Les feuilles donnent par distillation l'huile essentielle de niaouli, appelée aussi goménol. Mélangée à de l'huile, elle sert à masser les muscles douloureux. L'infusion des feuilles servait traditionnellement à laver les enfants et les malades dans la région de langue ajië et leur décoction pour lutter contre la grippe dans la région de langue xârâcùù (enquête IRD inéd. d'après Gaydou et als[1]).
  • L'écorce est constituée de couches successives de suber (ou liège) qui donnent la peau de niaouli. Elle sert principalement pour couvrir les toits et les parois des cases. Le grand pouvoir isolant du suber confère étanchéité et isolation thermique aux habitations[1]. À l'île des Pins, la peau de niaouli servait à couvrir les fours enterrés. Elle est utilisée aussi pour faire des torches[10]. Autrefois, il était d'usage à la naissance d'un enfant de l'envelopper dans la peau de niaouli afin de lui assurer force et protection[17].
  • Les fleurs pollinisées par les abeilles donnent un très bon miel.
  • Les plantations de niaouli servent de brise-vent et à la lutte contre l'érosion dans les zones dégradées.

Importance du niaouli dans la culture kanak

Arbre typique de la Nouvelle-Calédonie, il est l'un de ses emblèmes et les kanak y sont sentimentalement attachés. On donnait son nom aux poilus néocalédoniens, partis combattre en métropole au sein du bataillon mixte du Pacifique lors de la Première Guerre mondiale[18].

En 1975, quand démarre sur le plateau de Tango l'opération de reboisement qui vise à constituer une forêt de Pinus caribaea en lieu et place des savanes à niaoulis, les populations mélanésiennes expriment leur incompréhension et leur mécontentement.

« Depuis toujours, les niaoulis ont été les arbres de notre pays et les compagnons de nos ancêtres. Ils ont rendu beaucoup de services. [...] C'est avec leur 'peau' que nous avons couvert nos toits ; et jusqu'aux murs de nos cases. Ils nous ont donné nos médicaments ; le feu de nos foyers était alimenté par leurs branches... Or voici que nous sommes occupés à tuer ces arbres qui ont été bons pour nous [...] »[19]

Traditionnellement, les nouveau-nés des tribus kanak sont enveloppés dans de l'écorce de niaouli afin de les protéger et de leur donner de la force[20].

L'huile essentielle de niaouli

L'huile essentielle est souvent utilisée pour les douleurs comme les rhumatismes, les courbatures ou encore les coups de froid. [21]

Philatélie

Cette espèce figure sur un timbre émis par l'OPT en 1982, dessiné par Huguette Sainson, et sur un autre de 2014, dessiné par Jean-Paul Véret-Lemarinier[22].

Photos

Notes et références

  1. a b c d et e E.M. Gaydou, C. Menut, « Le niaouli de Nouvelle-Calédonie », Ethnopharmacologia, vol. 45,‎ 2010
  2. O'Reilly, Patrick, 1953. Le français parlé en Nouvelle-Calédonie. Apports étrangers et vocables nouveaux. Archaïsmes et expressions familières. Journal de la Société des océanistes, 9 : 203-228. DOI : 10.3406/jso.1953.1777
  3. Annales des sciences naturelles. Botanique., 1834 Référence Biodiversity Heritage Library : 41587010#page/75
  4. Ramanoelina P.A.R., Gaydou E.M., Bianchini J.P., « Caractérisation des huiles essentielles industrielles de Niaouli (Melaleuca quinquenervia) de Madagascar - Propositions d’avant-projet de normes », Terre Malgache Tany Malagasy, vol. 24,‎ 2005, p. 59-91 (lire en ligne)
  5. Craven LA, Barlow BA., « New taxa and new combinations in Melaleuca (Myrtaceae) », Novon, vol. 7,‎ 1997, p. 113-119.
  6. Lyn A. Craven, « Behind the names: the botany of tea tree, cajuput and niaouli », dans Ian Southwell, Robert Lowe, Tea Tree : The Genus Melaleuca, CRC Press, 2003
  7. (en) Référence The Plant List : Melaleuca quinquenervia (Cav.) S.T.Blake (Source: KewGarden WCSP)
  8. a et b B. Verdcourt, Flora of Tropical East Africa, Rotterdam: Balkema, Royal Botanic Gardens, Kew, 2001 (lire en ligne)
  9. a b et c J.F. Cherrier, « Le niaouli en Nouvelle-Calédonie (Melaleuca quinquenervia S.T. Blake) », R.F.F., vol. XXXIII, no 4,‎ 1981 (lire en ligne)
  10. a et b B. Trilles, S. Bouraïma-Madjebi, G. Valet, « Melaleuca quinquenerva (cavanilles) S.T. Blake, Niaouli », dans Ian Southwell, Robert Lowe, Tea Tree : The Genus Melaleuca, CRC Press, 2003
  11. a b et c association ENDEMIA Faune et Flore de Nouvelle-Calédonie, « Melaleuca quinquenervia (Espece) »
  12. Min B. Rayamajhi (USDA Agricultural Research Service), « Melaleuca quinquenervia (Cav.) Blake »
  13. M. Hoff, « La végétation de Nouvelle-Calédonie », Bulletin de l'association philomathique d'Alsace et de Lorraine (fonds ORSTOM), vol. 19,‎ 1982
  14. « Le Niaouli (Melaleuca quinquenervia) »
  15. Mi-aime-a-ou.com, « Niaoulin Melaleuca quinquenervia (Cav.) S.T. Blake, Arbre de la Réunion », 202/2014
  16. G.S. Wheeler P.D. Pratt, R.M. Giblin-Davis, K.M. Ordung, « Intraspecific variation of Melaleuca quinquenervia leaf oils in its naturalized range in Florida, the Caribbean, and Hawaii », Biochemical Systematics and Ecology, vol. 35,‎ 2007, p. 489-500
  17. Maison de la Nouvelle-Calédonie, « Le niaouli de Nouvelle-Calédonie, un arbre aux multiples ressources » [PDF], sur mncparis.fr, 30 septembre 2011 (consulté le 25 mars 2019)
  18. Émission radiophonique. Page consultée le 10 avril 2012.
  19. J. M. Kohler, Pour ou contre le pinus. Les Mélanésiens face aux projets de développement, Nouméa, Institut culturel mélanésien, collection Sillon d'ignames, 1984, 171 p. (lire en ligne), pp 17-18
  20. Emmanuel Kasarhérou, Béalo Wedoye, Roger Boulay, Claire Merleau-Ponty, Guide des plantes du chemin kanak, Nouméa, Agence de développement de la culture kanak, 1998, 77 p. (ISBN 9782909407760), p. 70-71
  21. « Huile Essentielle de Niaouli BIO | Huile essentielle aromathérapie | Puressentiel », sur fr.puressentiel.com (consulté le 7 septembre 2020)
  22. « LE NIAOULI », sur caledoscope.opt.nc (consulté le 19 janvier 2020)

Annexes

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wikipedia FR

Niaouli: Brief Summary ( Francês )

fornecido por wikipedia FR

Melaleuca quinquenervia

Le niaouli (Melaleuca quinquenervia) est un arbre de la famille des Myrtaceae originaire de la côte orientale de l'Australie et de Nouvelle-Calédonie.

L'espèce a été plantée dans de nombreuses régions tropicales pour l'exploitation de son bois, de ses fleurs pour la production de miel ou de ses feuilles pour la production d'huile essentielle. Le niaouli est aussi utilisé comme plante d'ornement dans de nombreuses contrées tropicales, mais est parfois devenu une espèce exotique envahissante, perturbant notamment les écosystèmes marécageux comme dans les Everglades, en Floride.

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Melaleuca quinquenervia ( Italiano )

fornecido por wikipedia IT

Melaleuca quinquenervia ((Cav.) S.T.Blake, 1958) è un albero di medie dimensioni appartenente alla famiglia Myrtaceae, originario di Nuova Caledonia, Papua Nuova Guinea ed Australia orientale[2].

Introdotta dall'uomo, si è naturalizzata in varie parti del mondo. Colonizza facilmente le aree umide costiere della fascia tropicale, le sponde dei fiumi e dei canali, riesce a crescere anche con l'apparato radicale completamente sommerso. Impiantata nelle Everglades in Florida, ed ora è classificata come una forma infestante grave da parte del Dipartimento dell'Agricoltura degli Stati Uniti d'America.

Descrizione

Questa specie cresce fino a 20 m di altezza e possiede una corteccia cartacea facilmente sfaldabile in fogli sottili di colore bianco, beige e grigio; le foglie sono ovali e grigio-verdi.

Note

  1. ^ (EN) Melaleuca quinquenervia, su IUCN Red List of Threatened Species, Versione 2020.2, IUCN, 2020.
  2. ^ (EN) Melaleuca quinquenervia (Cav.) S.T.Blake | Plants of the World Online | Kew Science, su Plants of the World Online. URL consultato il 19 febbraio 2021.

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Melaleuca quinquenervia: Brief Summary ( Italiano )

fornecido por wikipedia IT

Melaleuca quinquenervia ((Cav.) S.T.Blake, 1958) è un albero di medie dimensioni appartenente alla famiglia Myrtaceae, originario di Nuova Caledonia, Papua Nuova Guinea ed Australia orientale.

Introdotta dall'uomo, si è naturalizzata in varie parti del mondo. Colonizza facilmente le aree umide costiere della fascia tropicale, le sponde dei fiumi e dei canali, riesce a crescere anche con l'apparato radicale completamente sommerso. Impiantata nelle Everglades in Florida, ed ora è classificata come una forma infestante grave da parte del Dipartimento dell'Agricoltura degli Stati Uniti d'America.

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Autori e redattori di Wikipedia
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wikipedia IT

Melaleuca quinquenervia ( Ucraniano )

fornecido por wikipedia UK

Будова

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Кора
 src=
Квітка

Високе дерево до 25 м. Кора бежевого кольору легко відшаровується листками схожими на папір, за що дерево отримало англійську назву "папербарк" (англ. paperbark). Білі квіти зібрані у ефектні продовгуваті суцвіття. Плід - коробочка.

Життєвий цикл

Цвіте з березня по липень. Коробочки дозрівають у листопаді і зберігаються на дереві до наступного року. Насіння проростає 5 днів при температурі 30°C.

Поширення та середовище існування

Походить з Нової Каледонії. Папуа Нової Гвінеї та східної Австралії. Росте переважно на кислих, погано дренованих ґрунтах на болотах та вздовж водойм. Може рости на солоних ґрунтах.

Практичне використання

У деревині зберігається велика кількість кремнію, що ускладнює обробку та розпилювання. Хороший медонос. Мед має специфічний запах.

З листя видобувають ефірну олію для медицини та парфумерії.

Листоподібна кора дерева традиційно використовувалася аборигенами Австралії для побудови традиційних жител.

Використовується у озеленені австралійських міст.

Цікаві факти

Примітки

  1. a - E-ukraina vortaro. vortaro.ukrainio.org.ua. Процитовано 2016-08-22.

Джерела

  • Factsheet - Melaleuca quinquenervia //Florabank - URL
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Tràm gió ( Vietnamita )

fornecido por wikipedia VI

Melaleuca quinquenervia là một loài thực vật có hoa trong Họ Đào kim nương. Loài này được (Cav.) S.T.Blake mô tả khoa học đầu tiên năm 1958.[1]

Hình ảnh

Chú thích

  1. ^ The Plant List (2010). Melaleuca quinquenervia. Truy cập ngày 7 tháng 6 năm 2013.

Liên kết ngoài


Hình tượng sơ khai Bài viết phân họ thực vật Myrtoideae này vẫn còn sơ khai. Bạn có thể giúp Wikipedia bằng cách mở rộng nội dung để bài được hoàn chỉnh hơn.
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Wikipedia tác giả và biên tập viên
original
visite a fonte
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wikipedia VI

Tràm gió: Brief Summary ( Vietnamita )

fornecido por wikipedia VI

Melaleuca quinquenervia là một loài thực vật có hoa trong Họ Đào kim nương. Loài này được (Cav.) S.T.Blake mô tả khoa học đầu tiên năm 1958.

licença
cc-by-sa-3.0
direitos autorais
Wikipedia tác giả và biên tập viên
original
visite a fonte
site do parceiro
wikipedia VI