MANGROVES Synonyms Definition Introduction
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261 Comparative Morphology and Anatomy of Few Mangrove Species
261 International Journal of Bio-resource and Stress Management 2012, 3(1):001-017 Comparative Morphology and Anatomy of Few Mangrove Species in Sundarbans, West Bengal, India and its Adaptation to Saline Habitat Humberto Gonzalez Rodriguez1, Bholanath Mondal2, N. C. Sarkar3, A. Ramaswamy4, D. Rajkumar4 and R. K. Maiti4 1Facultad de Ciencias Forestales, Universidad Autonoma de Nuevo Leon, Carr. Nac. No. 85, Km 145, Linares, N.L. Mexico 2Department of Plant Protection, Palli Siksha Bhavana, Visva-Bharati, Sriniketan (731 236), West Bengal, India 3Department of Agronomy, SASRD, Nagaland University, Medziphema campus, Medziphema (PO), DImapur (797 106), India 4Vibha Seeds, Inspire, Plot#21, Sector 1, Huda Techno Enclave, High Tech City Road, Madhapur, Hyderabad, Andhra Pradesh (500 081), India Article History Abstract Manuscript No. 261 Mangroves cover large areas of shoreline in the tropics and subtropics where they Received in 30th January, 2012 are important components in the productivity and integrity of their ecosystems. High Received in revised form 9th February, 2012 variability is observed among the families of mangroves. Structural adaptations include Accepted in final form th4 March, 2012 pneumatophores, thick leaves, aerenhyma in root helps in surviving under flooded saline conditions. There is major inter- and intraspecific variability among mangroves. In this paper described morpho-anatomical characters helps in identification of family Correspondence to and genus and species of mangroves. Most of the genus have special type of roots which include Support roots of Rhizophora, Pnematophores of Avicennia, Sonneratia, Knee *E-mail: [email protected] roots of Bruguiera, Ceriops, Buttress roots of Xylocarpus. Morpho-anatomically the leaves show xerophytic characteristics. -
Biomass and Net Primary Productivity of Mangrove Communities Along the Oligohaline Zone of Sundarbans, Bangladesh Md
Kamruzzaman et al. Forest Ecosystems (2017) 4:16 DOI 10.1186/s40663-017-0104-0 RESEARCH Open Access Biomass and net primary productivity of mangrove communities along the Oligohaline zone of Sundarbans, Bangladesh Md. Kamruzzaman1,2*, Shamim Ahmed2 and Akira Osawa1 Abstract Background: The article presents the first estimates of biomass and productivity for mangrove forests along the Oligohaline zone of the Sundarbans Reserve Forest (SRF), Bangladesh. This study was conducted overone year from March 2016 to April 2017. Stand structure, above and below-ground biomass changes, and litterfall production were measured within a 2100 m2 sample plot. Methods: All trees in the study plots were numbered and height (H) and diameter at breast height (DBH) were measured. Tree height (H) and DBH for each tree were measured in March 2016 and 2017. We apply the above and belowground biomass equation for estimating the biomass of the mangrove tree species (Chave et al. Oecologia 145:87−99, 2005; Komiyama et al. J Trop Ecol 21:471–477, 2005). Litterfall was collected using 1-mm mesh litter traps with collection area of 0.42 m2. Net Primary Production (NPP) was estimated by the summation method of Ogawa Primary productivity of Japanese forests: productivity of terrestrial communities, JIBP synthesis (1977) and Matsuura and Kajimoto Carbon dynamics of terrestrial ecosystem: Systems approach to global environment (2013). Results: Heritiera fomes has maintained its dominance of the stand and also suffered the highest tree mortality (2.4%) in the suppressed crown class. The total above-ground biomass (AGB) and below-ground biomass (BGB) of the studied stand was 154.8 and 84.2 Mg∙ha−1, respectively. -
Section 1-Maggie-Final AM
KEY TO GROUP 1 Mangroves and plants of saline habitats, i.e., regularly inundated by king tides. A. leaves B. leaves C. simple D. compound opposite alternate leaf leaf 1 Mature plants less than 60 cm high, often prostrate and succulent go to 2 1* Mature plants greater than 60 cm high, shrubs or trees go to 4 2 Plants without obvious leaves, succulent (samphires) go to Group 1.A 2* Plants with obvious leaves, sometimes succulent go to 3 3 Grass, non-succulent, leaves narrow, margins rolled inwards go to Group 1.B 3* Plants with succulent leaves, may be flattened, cylindrical or almost so go to Group 1.C 4 Trees or shrubs with opposite leaves (see sketch A) go to 5 4* Trees or shrubs with alternate leaves (B) go to 6 5 Leaves with oil glands visible when held to the light and an aromatic smell when crushed or undersurface whitish go to Group 1.D Large oil glands as seen with a good hand lens 5* Leaves without oil glands or a whitish undersurface, but prop roots, knee roots or buttresses may be present go to Group 1.E 6 Plants with copious milky sap present when parts, such as stems and leaves are broken (CAUTION) go to Group 1.F 6* Plants lacking milky sap when stems or leaves broken go to 7 7 Shrubs or trees with simple leaves (C) go to Group 1.G 7* Trees with compound leaves (D) go to Group 1.H 17 GROUP 1.A Plants succulent with no obvious leaves (samphires). -
SHORT NOTES Status of Mangroves in Naawan, Misamis Oriental And
doi: 10.48031/msunjear.2015.03.10 SHORT NOTES Status of Mangroves in Naawan, Misamis Oriental and Prospects for Vegetative Expansion Jeanette J. Samson¹ and Ermelinda G. Tobias² ¹Instituteof Fisheries Research and Development MindanaoStateUniversity at Naawan, Naawan, Misamis Oriental, Philippines ²Department of Biological Sciences MindanaoStateUniversity – Iligan Institute of Technology, Iligan City, Philippines Email: [email protected] ABSTRACT An assessment of the plant community structure of mangroves in Naawan, Misamis Oriental was conducted to evaluate its status and potential for vegetative expansion. The survey was carried out in three coastal barangays, namely: Linangkayan, Poblacion, and Maputi using a transect-plot survey technique. Results show that the mangrove stands of Naawan are already degraded due to fishpond development, human settlement and other resource-use activities. A highly diverse mangrove vegetation still exists with 30 species identified belonging to 22 families. At least 11 species are true mangroves while the rest are associates. The dominant mangrove species are Nypa fruticans (Nipa), Avicennia rumphiana (Miyapi), and Lumnitzera racemosa (Kulasi). N. fruticans dominates in terms of stem density while A. rumphiana largely contributes to the total basal area (13.7 m2 ha-1) of measured woody plants. The Naawan mangroves have low regenerative capacity in terms of production of saplings and seedlings except for L. racemosa and A. rumphiana, thus, planting is needed to rehabilitate them. Three sites were identified with a potential area of 5.2 ha for vegetation expansion through multispecies reforestation. Keywords: mangroves, assessment, basal area, vegetative expansion, Naawan. INTRODUCTION Mangroves are a diverse group of woody plants that thrive between the terrestrial and tidal interspace in sheltered shores, estuaries, tidal creeks, lagoons, marshes and mud flats in tropical and sub-tropical regions of the world (Tomlinson, 1986; Field 1995). -
Species Composition and Zonal Distribution of Mangrove Plants in the Myeik Coastal Areas of Myanmar
Journal of Aquaculture & Marine Biology Research Article Open Access Species composition and zonal distribution of mangrove plants in the Myeik coastal areas of Myanmar Abstract Volume 9 Issue 2 - 2020 The species composition and zonal distribution of mangroves in five research sites viz., Tin-Zar-Ni-Win,1 U Soe-Win2 Kapa, Masanpa, Panadoung, Kywe Ka Yan and Kyauk Phyar from Myeik coastal areas 1Marine Biologist, Fauna & Flora International (FFI), Myanmar were studied from December 2017 to July 2018. Transect lines in landward, seaward 2Department of Marine Science, Mawlamyine University, and shoreline, and plots based on Point Center Quarter Method (PCQM) were used. Myanmar A total of 21 species of true mangrove were recorded. Rhizophora apiculata and R. Mucronata were the most dominant species in the study sites, especially in the seaward Correspondence: Tin-Zar-Ni-Win, Marine Biologist, Fauna & areas. Among the recorded species, Aegiceras corniculatum, Avicennia officinalis, R. Flora International (FFI), Myanmar apiculata, R. mucronata, Sonneratia alba and Nypa fruticans were distributed in all study Email sites. Bruguiera gymnorhiza and B.cylindrica, were recorded only in shoreline areas and Heritiera littoralisis was found only in landward areas in all study sites. Among the Received: April 07, 2020 | Published: April 28, 2020 study sites, Kapa has been designated as the highest species composition, representing 17 species, whereas Kyauk Phyar, representing 12 species as the lowest species composition. The environmental parameters of mangrove forests were also provided in all study sites. The various salinity and temperature ranges of seawater (25.0-30.0‰ and 28.0-32.0ºC) and soil (25.0-33.0‰ and 27.6-31.4ºC) significantly controlled the distribution of mangrove species of mangroves. -
Mangroves and Saltmarshes of Moreton Bay
https://moretonbayfoundation.org/ 1 Moreton Bay Quandamooka & Catchment: Past, present, and future Chapter 5 Habitats, Biodiversity and Ecosystem Function Mangroves and saltmarshes of Moreton Bay Abstract The mangroves and saltmarshes of Moreton Bay comprising 18,400 ha are important habitats for biodiversity and providing ecosystem services. Government policy and legislation largely reflects their importance with protection provided through a range of federal and state laws, including the listing of saltmarsh communities in 2013 under the Environment Protection and Biodiversity Conservation Act 1999 (EPBC Act). Local communities also conserve and manage mangroves and saltmarshes. Recent scientific research on these ecosystems in Moreton Bay has described food webs, habitat use by fauna, carbon sequestration and effects of climate change. The area of saltmarsh has declined by 64% since 1955 due to mangrove encroachment into saltmarsh habitats and past conversion to rural and urban land uses. Mangrove encroachment into saltmarsh habitats, which has been reported in other locations in Australia and across the world, has increased the area of mangrove habitat by 6.4% over the same period. This is consistent with predictions of habitat changes under climate change, and demonstrates the need for management strategies that ensure these ecosystems are maintained. Keywords: coastal wetlands, intertidal, wetland management, EPBC Act, wetland change, drivers of wetland change, South East Queensland, soil carbon stocks Introduction Mangroves and saltmarshes, which are components of the estuarine wetlands of Moreton Bay, are dominated by salt-tolerant vegetation that occurs from approximately mean sea level to the highest astronomical tidal plane. They occur within the river systems and tidal creeks of Moreton Bay as well as on the comparatively open coasts of the Bay where they fringe both islands and the mainland. -
RHIZOPHORACEAE Ceriops Tagal(Perr.) C.B. Rob. Synonyms
Mangrove Guidebook for Southeast Asia Part 2: DESCRIPTIONS – Trees & shrubs 1'(9./'.1 "$ $ 235 "¨π∞∂∑∫ª®Æ®≥ /¨ππ "! 1∂© Synonyms : Ceriops australis White, Ceriops boiviniana Tul., Ceriops candolleana Arn., Ceriops candolleana var. sasakii Hayata, Ceriops candolleana var. spathulata Blume, Ceriops forsteniana, Ceriops lucida Miq., Ceriops pauciflora Benth., Ceriops somalensis Chiovenda, Ceriops tagal var. australis White, Ceriops timoriensis Domin, Mangium caryophylloides Rumph., Rhizophora candel (non L.) Blanco, Rhizophora tagal Perr., Rhizophora timoriensis DC. Vernacular name(s) : Tengar, Tengah (Mal.), Tangar, Tingih, Palun, Parun, Bido-bido (Ind.), Magtongod, Pakat, Rungon, Tagasa, Tangal, Tanggal, Tangal lalaki, Tigasan, Tungod - Tangal (Phil.), Madame (Myan.), Dà vôi (Viet.), Prong, Prong daeng (Thai.), Smerkrohorm (Camb.) Description : Small tree or shrub up to 6 m tall, occasionally to 15(-25) m, with a grey, occasionally brown, smooth bark and with a flanged stem base. The tree often has small stilt roots. The rounded, glossy-green leaves measure 5.5-10 by 2-3.5 cm, are obovate-elliptic and often have an inwardly-curled margin. The 5-10 flowered, pendulous flower head measures 2 by 10-20. It has a long, slender stalk, is resinous and occurs at the ends of new shoots or in the axils on older ones. Calyx lobes are erect in flower, recurved in fruit, 4-5 mm long, with a 2 mm long tube. Flowers are white and soon turn brown. Petals are linked via marginal hairs and have a top that bears three trumpet-shaped lobes, 0.5 mm across. The stamens have long, slender filaments that extend far beyond the blunt anthers. -
World Journal of Pharmaceutical Sciences a Complete Profile On
World Journal of Pharmaceutical Sciences ISSN (Print): 2321-3310; ISSN (Online): 2321-3086 Published by Atom and Cell Publishers © All Rights Reserved Available online at: http://www.wjpsonline.org/ Review Article A complete profile on Xylocarpus moluccensis: traditional uses, pharmacological activities and phytoconstituents Raja S and Ravindranadh K GITAM Institute of Pharmacy, GITAM University, Visakhapatnam- Andhra Pradesh, India-Pincode-530 045 Received: 31-10-2014 / Revised: 14-11-2014 / Accepted: 17-11-2014 ABSTRACT The present work offers a review addressing the ethnomedical, active constituents and pharmacological activity of Xylocarpus moluccensis (belonging to Meliaceae family) regarded as one of the most significant plant species in traditional system of medicine. The plant is used in different parts of the world for the treatment of several ailments like diarrhea, fever, dysentery, candidacies, scabies, baby rash, stomach pains, and constipation joint pains, chest pains, and relapsing sickness etc., Xylocarpus moluccensis is the source of a diverse kind of chemical constituents such as swietemahonolide, febrifugin, khayasin T, febrifugin A, gedunin, isolariciresinol, phaseic acid, aromadendrin, 4-hydroxy cinnamic acid, 4-hydroxybenzoic acid, 4-hydroxyphenylaceticacid, and xylogranatinin. The isolated phytochemicals as well as different extracts exhibited significant biological activities such as antibacterial, anti diabetic, antioxidant activity, antifilarial, anti diarrheal, CNS depressant and cytotoxic activities. Exhaustive research regarding isolation of more phytochemicals and pharmacology study on this medicinal plant is still necessary so as to explore the plant regarding its medicinal importance. Therefore, the aim of this review is to boost up present day researchers in this direction to undertake further investigations of this plant. Key words: Xylocarpus moluccensis, Swietemahonolide, Febrifugin, Khayasin T. -
Threatened Jott
Journal ofThreatened JoTT TaxaBuilding evidence for conservation globally PLATINUM OPEN ACCESS 10.11609/jott.2020.12.3.15279-15406 www.threatenedtaxa.org 26 February 2020 (Online & Print) Vol. 12 | No. 3 | Pages: 15279–15406 ISSN 0974-7907 (Online) ISSN 0974-7893 (Print) ISSN 0974-7907 (Online); ISSN 0974-7893 (Print) Publisher Host Wildlife Information Liaison Development Society Zoo Outreach Organization www.wild.zooreach.org www.zooreach.org No. 12, Thiruvannamalai Nagar, Saravanampatti - Kalapatti Road, Saravanampatti, Coimbatore, Tamil Nadu 641035, India Ph: +91 9385339863 | www.threatenedtaxa.org Email: [email protected] EDITORS English Editors Mrs. Mira Bhojwani, Pune, India Founder & Chief Editor Dr. Fred Pluthero, Toronto, Canada Dr. Sanjay Molur Mr. P. Ilangovan, Chennai, India Wildlife Information Liaison Development (WILD) Society & Zoo Outreach Organization (ZOO), 12 Thiruvannamalai Nagar, Saravanampatti, Coimbatore, Tamil Nadu 641035, Web Design India Mrs. Latha G. Ravikumar, ZOO/WILD, Coimbatore, India Deputy Chief Editor Typesetting Dr. Neelesh Dahanukar Indian Institute of Science Education and Research (IISER), Pune, Maharashtra, India Mr. Arul Jagadish, ZOO, Coimbatore, India Mrs. Radhika, ZOO, Coimbatore, India Managing Editor Mrs. Geetha, ZOO, Coimbatore India Mr. B. Ravichandran, WILD/ZOO, Coimbatore, India Mr. Ravindran, ZOO, Coimbatore India Associate Editors Fundraising/Communications Dr. B.A. Daniel, ZOO/WILD, Coimbatore, Tamil Nadu 641035, India Mrs. Payal B. Molur, Coimbatore, India Dr. Mandar Paingankar, Department of Zoology, Government Science College Gadchiroli, Chamorshi Road, Gadchiroli, Maharashtra 442605, India Dr. Ulrike Streicher, Wildlife Veterinarian, Eugene, Oregon, USA Editors/Reviewers Ms. Priyanka Iyer, ZOO/WILD, Coimbatore, Tamil Nadu 641035, India Subject Editors 2016–2018 Fungi Editorial Board Ms. Sally Walker Dr. B. -
Aglaia Cucullata: a Little-Known Mangrove with Big Potential for Research
ISSN 1880-7682 Volume 18, No. 1 November 2020 [] Aglaia cucullata: A little-known mangrove with big potential for research Wijarn Meepol1, Gordon S. Maxwell2 & Sonjai Havanond3 1Chief, Mangrove Forest Research Centre Ranong, Department Marine and Coastal Resources, Thailand 2Open University of Hong Kong, Director Ecosystem Research Centre, Paeroa, New Zealand 3Expert, Department of Marine and Coastal Resources, Bangkok, Thailand Introduction The mangrove Aglaia cucullata (previously known as Amoora cucullata) is described in the IUCN Red List of Threatened Species as “not well known” and “poorly known”, and designated as Data Deficient (IUCN, 2017). In many respects, this assessment may well be justified since A. cucullata does not feature strongly in the mangrove literature. This paper seeks to help enhance the current Red List status of A. cucullata by reviewing its botany, uses, ecology and physiology. A description of a natural population of A. cucullata in the Ranong mangrove forest, which is the first record for Thailand, is provided. Past research studies of the species in Thailand are mentioned and research opportunities are discussed. Botany and uses The genus Aglaia (previously known as Amoora) comprises 25–30 species, many are economically important timber trees (Xu et al., 2019). Described in the Mangrove Guidebook for Southeast Asia by Giesen et al. (2007), Aglaia cucullata (Roxb.) Pellegr. (Figure 1) belongs to the family Meliaceae. The species occurs in lowland forest and along tidal riverbanks. A mangrove associate, A. cucullata is a small to medium-sized tree with plank buttresses and pneumatophores. The bark is smooth, brown or pale orange, and somewhat scaly. -
Genetic Structure and Population Demographic History of a Widespread Mangrove Plant Xylocarpus Granatum (Meliaceae) Across the Indo-West Pacific Region
Article Genetic Structure and Population Demographic History of a Widespread Mangrove Plant Xylocarpus granatum (Meliaceae) across the Indo-West Pacific Region Yuki Tomizawa 1,†,‡, Yoshiaki Tsuda 2,†, Mohd Nazre Saleh 3,† ID , Alison K. S. Wee 4,5 ID , Koji Takayama 6, Takashi Yamamoto 4,7, Orlex Baylen Yllano 8, Severino G. Salmo III 9 ID , Sarawood Sungkaew 10, Bayu Adjie 11, Erwin Ardli 12, Monica Suleiman 13 ID , Nguyen Xuan Tung 14, Khin Khin Soe 15, Kathiresan Kandasamy 16, Takeshi Asakawa 1, Yasuyuki Watano 1 ID , Shigeyuki Baba 4 and Tadashi Kajita 4,7,* ID 1 Department of Biology, Graduate School of Science, Chiba University, Chiba 263-8522, Japan; [email protected] (Y.T.); [email protected] (T.A.); [email protected] (Y.W.) 2 Sugadaira Research Station, Mountain Science Center, University of Tsukuba, 1278-294 Sugadairakogen, Ueda, Nagano 386-2204, Japan; [email protected] 3 Faculty of Forestry, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor Darul Ehsan, Malaysia; [email protected] 4 Iriomote Station, Tropical Biosphere Research Center, University of the Ryukyus, 870 Uehara, Taketomi-cho, Yaeyama-gun, Okinawa 907-1541, Japan; [email protected] (A.K.S.W.); [email protected] (T.Y.); [email protected] (S.B.) 5 Guangxi Key Laboratory of Forest Ecology and Coservation, College of Forestry, Guangxi University, Nanning 530000, China 6 Museum of Natural and Environmental History, Shizuoka, 5762 Oya, Suruga-ku, Shizuoka 422-8017, Japan; [email protected] 7 United Graduate School -
Bioinsecticide Test of Crude Stem Bark Extracts of Some
G.J.B.A.H.S.,Vol.2(3):28-31 (July – September, 2013) ISSN: 2319 – 5584 BIOINSECTICIDE TEST OF CRUDE STEM BARK EXTRACTS OF SOME MELIACEOUS PLANTS AGAINST SPODOPTERA LITURA Tukiran Chemistry Department, Faculty of Mathematics and Natural Sciences, State University of Surabaya Jl. Ketintang, Surabaya, 60231, East Java, Indonesia. Abstract In the study of screening for bioinsecticides from plants, the activity of the stem bark extracts of some Meliaceous plants growth in Indonesia, namely Aglaia odorata Lour, Aglaia odoratissima Blume, Aglaia elaeagnoidea A.Juss, Sandoricum koetjape Merr. and Xylocarpus moluccensis (Lamk.) M.Roem was investigated. Solvent residues of these stem bark of plants were obtained from different solvent extracts (hexane, chloroform and methanolic extracts). All extracts dissolved in distilled water and added tween 80 (a few drops) as emulsifying agent were separately tested at various concentration (mg/L) continuously for 1, 2 and 3 days on the third instar larvae of the armyworm, Spodoptera litura. The results indicated the presence of bioinsecticide effect which was maximum of Sandoricum koetjape. This plant extracts (hexane and methanolic extracts) gave enough sensitive effects to the third instar larvae with LC50s of 104.24 and 170.23 mg/L, respectively after 3 days of application. Meanwhile, other plant extracts showed much less sensitive and relatively insensitive after 3 days of application because their LC50 values were more than 200 and 1500 mg/L, respectively. Keywords: Bioinsecticide, Lethal Concentration (LC50), Meliaceae, Spodoptera litura. 1. Introduction Spodoptera litura (Fabricius) (Lepidoptera: Noctuidae) is a polyphagous insect pest (Holloway, 1989). It is an indigenous pest of a variety of crops in South Asia and was found to cause more than 26-100% yield loss in groundnut (Dhir et al., 1992 as stated by Muthusamy et al., 2011).