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Nature Policy Plan
Ministry of Public Housing, Spatial Planning, Environment And Infrastructure Ministerie van Volkshuisvesting, Ruimtelijke Ordening, Milieu en Infrastructuur Nature Policy Plan 2021 – 2025 Established/Approved: Date: By: i Nature Policy Plan Sint Maarten 2021 – 2025 “We the people of Sint Maarten: RESOLVED to provide for the continuing preservation of nature and the environment”. Constitution of Sint Maarten ii Nature Policy Plan Sint Maarten 2021 – 2025 Nature Policy Plan Sint Maarten 2021 – 2025 Ministry of Public Housing, Spatial Planning, Environment and Infrastructure (Ministry of VROMI) Address: Government of Sint Maarten Ministry of VROMI Soualiga Road #1 Pond Island, Great Bay Sint Maarten Contact: [email protected] [email protected] iii Nature Policy Plan Sint Maarten 2021 – 2025 Lignum Vitae (Guaiacum officinale) iv Photo by: Mark Yokoyama Nature Policy Plan Sint Maarten 2021 – 2025 Acknowledgments In writing the Nature Policy Plan Sint Maarten 2021 – 2025, the Ministry of VROMI consulted several government ministries, and external stakeholders including private sector entities and NGO’s. Some were engaged in the preparation of the policy from the onset; others were part of a review of the policy and stakeholder meetings. The Ministry of VROMI acknowledges and appreciates the time and effort of the stakeholders who contributed to the formulation of this Nature Policy Plan, which provides insights into the current state of affairs of nature on Sint Maarten and the proposed way forward on nature conservation -
Anatomia Foliar De Allagoptera Nees (Arecaceae) Como Subsídio À
Universidade de Brasília Instituto de Ciências Biológicas Departamento de Botânica Programa de Pós Graduação em Botânica Dissertação de Mestrado Anatomia foliar de Allagoptera Nees (Arecaceae) como subsídio à taxonomia André Silva Pinedo Orientadora: Profª Drª Sueli Maria Gomes Brasília, março de 2015 i Universidade de Brasília Instituto de Ciências Biológicas Departamento de Botânica Programa de Pós Graduação em Botânica Dissertação de Mestrado Anatomia foliar de Allagoptera Nees (Arecaceae) como subsídio à taxonomia Dissertação apresentada ao Programa de Pós- Graduação em Botânica da Universidade de Brasília como um dos requisitos para obtenção do título de Mestre em Botânica. André Silva Pinedo Orientadora: Profª Drª Sueli Maria Gomes Brasília, março de 2015 ii Universidade de Brasília Instituto de Ciências Biológicas Departamento de Botânica Programa de Pós Graduação em Botânica Banca examinadora: iii Agradecimentos Primeiramente a Deus, sou eternamente grato pela minha vida, pela oportunidade proporcionada e pela capacitação de estar realizando este curso de pós-graduação, que tem sido uma grande experiência de amadurecimento para mim; À minha orientadora, Profª. Drª. Sueli Maria Gomes, pela sua paciência ao me ensinar e constantes críticas construtivas que fez ao longo do período em que trabalhamos juntos, que fizeram desse mestrado uma grande oportunidade para o meu crescimento profissional; À Profª. Drª. Renata Corrêa Martins, por sua parceria nesse projeto, auxiliando na coleta e identificação das espécies, além de ser uma profissional extremamente prestativa; À Profª. Drª. Cássia Munhoz, minha orientadora em estágio de Iniciação Científica na graduação, motivando-me a trabalhar com plantas; Ao Prof. Dr. Eduardo Gomes Gonçalves, por ter me incentivado a trabalhar com o grupo das palmeiras; À Profª. -
Canavalia Rosea (Swartz) DC
Canavalia rosea (Swartz) DC. Identifiants : 6152/canros Association du Potager de mes/nos Rêves (https://lepotager-demesreves.fr) Fiche réalisée par Patrick Le Ménahèze Dernière modification le 30/09/2021 Classification phylogénétique : Clade : Angiospermes ; Clade : Dicotylédones vraies ; Clade : Rosidées ; Clade : Fabidées ; Ordre : Fabales ; Famille : Fabaceae ; Classification/taxinomie traditionnelle : Règne : Plantae ; Sous-règne : Tracheobionta ; Division : Magnoliophyta ; Classe : Magnoliopsida ; Ordre : Fabales ; Famille : Fabaceae ; Genre : Canavalia ; Synonymes : Canavalia apiculata Piper, Canavalia arenicola Piper, Canavalia baueriana Endl, Canavalia emarginata (Jacq.) G. Don, Canavalia maritima (Aubl.) Thouars, Canavalia miniata (Kunth) DC, Canavalia moneta Welw, Canavalia obcordata Voigt, Canavalia obtusifolia (Lam.) DC, Canavalia obtusifolia (Lam.) DC. var. emarginata (Jacq.) DC, Canavalia obtuifolia (Lam.) DC. var. insularis Ridl, Canavalia podocarpa Dunn, Clitoria rotundifolia (Vah.) Sesse & Mocino, Dolichos emarginatus Jacq, Dolichos littoralis Vell, Dolichos maritimus Aubl, Dolichos miniatus Kunth, Dolichos obcordatus Roxb, Dolichos obovatus Schum. & Thonn, Dolichos obtusifolius Lam, Dolichos roseus Sw ; Nom(s) anglais, local(aux) et/ou international(aux) : Mackenzie Bean, Fire Bean, Coastal jack bean, , Fanta, Fue fai va'a, Kachang laut, Kachang rang-rang, Kam pra, Kia tia, Lerelere, N'habo, Nhabo, Norfolk Island bean, Tagale, Tobalo-sosso, Tua- kla ; Rapport de consommation et comestibilité/consommabilité inférée (partie(s) utilisable(s) et usage(s) alimentaire(s) correspondant(s)) : Parties comestibles : graines, gousses, fleurs, fruits{{{0(+x) (traduction automatique) | Original : Seeds, Pods, Flowers, Fruit{{{0(+x) ATTENTION: Les graines sont crues vénéneuses. Les graines sont comestibles après une cuisson complète. Ils sont également torréfiés et moulus et utilisés comme substitut du café. Les fleurs sont consommées comme arôme. Ils sont utilisés dans les sauces. Les gousses sont comestibles lorsqu'elles sont jeunes. -
Lista Plantas, Reserva
Lista de Plantas, Reserva, Jardín Botanico de Vallarta - Plant List, Preserve, Vallarta Botanical Garden [2019] P 1 de(of) 5 Familia Nombre Científico Autoridad Hábito IUCN Nativo Invasor Family Scientific Name Authority Habit IUCN Native Invasive 1 ACANTHACEAE Dicliptera monancistra Will. H 2 Henrya insularis Nees ex Benth. H NE Nat. LC 3 Ruellia stemonacanthoides (Oersted) Hemsley H NE Nat. LC 4 Aphelandra madrensis Lindau a NE Nat+EMEX LC 5 Ruellia blechum L. H NE Nat. LC 6 Elytraria imbricata (Vahl) Pers H NE Nat. LC 7 AGAVACEAE Agave rhodacantha Trel. Suc NE Nat+EMEX LC 8 Agave vivipara vivipara L. Suc NE Nat. LC 9 AMARANTHACEAE Iresine nigra Uline & Bray a NE Nat. LC 10 Gomphrena nitida Rothr a NE Nat. LC 11 ANACARDIACEAE Astronium graveolens Jacq. A NE Nat. LC 12 Comocladia macrophylla (Hook. & Arn.) L. Riley A NE Nat. LC 13 Amphipterygium adstringens (Schlecht.) Schiede ex Standl. A NE Nat+EMEX LC 14 ANNONACEAE Oxandra lanceolata (Sw.) Baill. A NE Nat. LC 15 Annona glabra L. A NE Nat. LC 16 ARACEAE Anthurium halmoorei Croat. H ep NE Nat+EMEX LC 17 Philodendron hederaceum K. Koch & Sello V NE Nat. LC 18 Syngonium neglectum Schott V NE Nat+EMEX LC 19 ARALIACEAE Dendropanax arboreus (l.) Decne. & Planchon A NE Nat. LC 20 Oreopanax peltatus Lind. Ex Regel A VU Nat. LC 21 ARECACEAE Chamaedorea pochutlensis Liebm a LC Nat+EMEX LC 22 Cryosophila nana (Kunth) Blume A NT Nat+EJAL LC 23 Attalea cohune Martius A NE Nat. LC 24 ARISTOLOCHIACEAE Aristolochia taliscana Hook. & Aarn. V NE Nat+EMEX LC 25 Aristolochia carterae Pfeifer V NE Nat+EMEX LC 26 ASTERACEAE Ageratum corymbosum Zuccagni ex Pers. -
Chemical Element Concentrations of Cycad Leaves: Do We Know Enough?
horticulturae Review Chemical Element Concentrations of Cycad Leaves: Do We Know Enough? Benjamin E. Deloso 1 , Murukesan V. Krishnapillai 2 , Ulysses F. Ferreras 3, Anders J. Lindström 4, Michael Calonje 5 and Thomas E. Marler 6,* 1 College of Natural and Applied Sciences, University of Guam, Mangilao, GU 96923, USA; [email protected] 2 Cooperative Research and Extension, Yap Campus, College of Micronesia-FSM, Colonia, Yap 96943, Micronesia; [email protected] 3 Philippine Native Plants Conservation Society Inc., Ninoy Aquino Parks and Wildlife Center, Quezon City 1101, Philippines; [email protected] 4 Plant Collections Department, Nong Nooch Tropical Botanical Garden, 34/1 Sukhumvit Highway, Najomtien, Sattahip, Chonburi 20250, Thailand; [email protected] 5 Montgomery Botanical Center, 11901 Old Cutler Road, Coral Gables, FL 33156, USA; [email protected] 6 Western Pacific Tropical Research Center, University of Guam, Mangilao, GU 96923, USA * Correspondence: [email protected] Received: 13 October 2020; Accepted: 16 November 2020; Published: 19 November 2020 Abstract: The literature containing which chemical elements are found in cycad leaves was reviewed to determine the range in values of concentrations reported for essential and beneficial elements. We found 46 of the 358 described cycad species had at least one element reported to date. The only genus that was missing from the data was Microcycas. Many of the species reports contained concentrations of one to several macronutrients and no other elements. The cycad leaves contained greater nitrogen and phosphorus concentrations than the reported means for plants throughout the world. Magnesium was identified as the macronutrient that has been least studied. -
Furcraea Foetida
Furcraea foetida Mauritius hemp Furcraea foetida (L.) Haw. Syn. Agave foetida, Furcraea gigantea Family: Agavaceae Description: Long pointed leaves, to 8 ft long by 8 inches wide, light green, succulent, arranged densely around a short stem, a few widely spaced prickles on margins of most leaves, especially near the base. A some- what woody stalk emerges after several years and grows to about 40 ft; lateral branches, themselves usually branched, bear numerous pale yellow flowers along the branches, pendant, 1 inch in diameter, fragrant, 3 inner petals (tepals) positioned be- tween 3 outer ones. Fruits are capsules, cylindrical, contain- ing black seed. Many bulblets (bulbils) capable of developing into new plants are formed on inflorescence. Genus named for French chemist A.F. Fourcroy (d. 1809); foetida for the slightly unpleasant smell of the plant sap(70). Often confused with sisal (Agave sisalana Perrine), also a weed of arid areas. Both were introduced into Hawai‘i in attempts to start a cordage industry(59, 70). The in- florescences of sisal are upright at the end of the branches. Agave sisalana Distribution: Originally from South America, culti- vated for fiber, and thus widely naturalized. Occurs in dry, rocky areas. In Hawai‘i, naturalized on all islands except Niÿihau and Kahoÿolawe. First reported in Management: Tolerant of aqueous sprays of Hawai‘i in 1888(70). glyphosate, hexazinone, and triclopyr and to soil appli- cations of hexazinone. Sensitive to foliar sprays of 2,4- Environmental impact: Displaces other plants in D in diesel and very sensitive to foliar sprays of triclopyr drier forests and pastures. -
Journal of the International Palm Society Vol. 58(4) Dec. 2014 the INTERNATIONAL PALM SOCIETY, INC
Palms Journal of the International Palm Society Vol. 58(4) Dec. 2014 THE INTERNATIONAL PALM SOCIETY, INC. The International Palm Society Palms (formerly PRINCIPES) Journal of The International Palm Society Founder: Dent Smith The International Palm Society is a nonprofit corporation An illustrated, peer-reviewed quarterly devoted to engaged in the study of palms. The society is inter- information about palms and published in March, national in scope with worldwide membership, and the June, September and December by The International formation of regional or local chapters affiliated with the Palm Society Inc., 9300 Sandstone St., Austin, TX international society is encouraged. Please address all 78737-1135 USA. inquiries regarding membership or information about Editors: John Dransfield, Herbarium, Royal Botanic the society to The International Palm Society Inc., 9300 Gardens, Kew, Richmond, Surrey, TW9 3AE, United Sandstone St., Austin, TX 78737-1135 USA, or by e-mail Kingdom, e-mail [email protected], tel. 44-20- to [email protected], fax 512-607-6468. 8332-5225, Fax 44-20-8332-5278. OFFICERS: Scott Zona, Dept. of Biological Sciences (OE 167), Florida International University, 11200 SW 8 Street, President: Leland Lai, 21480 Colina Drive, Topanga, Miami, Florida 33199 USA, e-mail [email protected], tel. California 90290 USA, e-mail [email protected], 1-305-348-1247, Fax 1-305-348-1986. tel. 1-310-383-2607. Associate Editor: Natalie Uhl, 228 Plant Science, Vice-Presidents: Jeff Brusseau, 1030 Heather Drive, Cornell University, Ithaca, New York 14853 USA, e- Vista, California 92084 USA, e-mail mail [email protected], tel. 1-607-257-0885. -
Functional Structure of the Bromeliad Tank Microbiome Is Strongly Shaped by Local Geochemical Conditions
Environmental Microbiology (2017) 19(8), 3132–3151 doi:10.1111/1462-2920.13788 Functional structure of the bromeliad tank microbiome is strongly shaped by local geochemical conditions Stilianos Louca,1,2* Saulo M. S. Jacques,3,4 denitrification steps, ammonification, sulfate respira- Aliny P. F. Pires,3 Juliana S. Leal,3,5 tion, methanogenesis, reductive acetogenesis and 6 1,2,7 Angelica L. Gonzalez, Michael Doebeli and anoxygenic phototrophy. Overall, CO2 reducers domi- Vinicius F. Farjalla3 nated in abundance over sulfate reducers, and 1Biodiversity Research Centre, University of British anoxygenic phototrophs largely outnumbered oxy- Columbia, Vancouver, BC, Canada. genic photoautotrophs. Functional community 2Department of Zoology, University of British Columbia, structure correlated strongly with environmental vari- Vancouver, BC, Canada. ables, between and within a single bromeliad species. 3Department of Ecology, Biology Institute, Universidade Methanogens and reductive acetogens correlated Federal do Rio de Janeiro, Rio de Janeiro, Brazil. with detrital volume and canopy coverage, and exhib- 4Programa de Pos-Graduac ¸ao~ em Ecologia e ited higher relative abundances in N. cruenta.A Evoluc¸ao,~ Universidade Estadual do Rio de Janeiro, Rio comparison of bromeliads to freshwater lake sedi- de Janeiro, Brazil. ments and soil from around the world, revealed stark differences in terms of taxonomic as well as func- 5Programa de Pos-Graduac ¸ao~ em Ecologia, tional microbial community structure. Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil. 6Biology Department & Center for Computational & Introduction Integrative Biology, Rutgers University, Camden, NJ, USA. Bromeliads (fam. Bromeliaceae) are plants found through- 7Department of Mathematics, University of British out the neotropics, with many species having rosette-like Columbia, Vancouver, BC, Canada. -
Canavalia Rosea Click on Images to Enlarge
Species information Abo ut Reso urces Hom e A B C D E F G H I J K L M N O P Q R S T U V W X Y Z Canavalia rosea Click on images to enlarge Family Fabaceae Scientific Name Canavalia rosea (Sw.) DC. Candolle, A.P. de (1825) Prodromus 2: 404. Common name Flowers. Copyright Barry Jago Bean, Beach; Coastal Jack Bean; Bean, Coastal Jacl; Bean, Mackenzie; Coastal Canavalia; Canavalia, Coastal; Beach Bean; Bean, Beach; Fire Bean; Mackenzie Bean Stem A slender vine not exceeding a stem diameter of 2 cm. Leaves Middle leaflet blade about 6.3-7 x 5-6.2 cm, stalk about 2.5-3.5 cm long, grooved on the upper surface. Lateral leaflet blades about 5.5-7.4 x 3.5-4.8 cm on stalks about 0.3-0.5 cm long. Compound leaf petiole about 3.5-5.2 cm long, grooved on the upper surface. Stipules caducous. Stipels about 2.5-3 mm long. Lateral Fruits. Copyright CSIRO veins forming loops inside the blade margin. Flowers Racemes longer than the leaves. Flowers about 20-25 mm diam. at anthesis. Calyx tube about 12-14 mm long, lobes of unequal size, about 1.6-3.5 mm long. Petals: standard about 25 mm long; wings and keel about 23 mm long. Stamens 10, all filaments +/- fused to form a tube about 15-18 mm long with free filaments projecting above the tube. Free filaments about 3-6 mm long, alternately longer and shorter. Ovary elongated, densely clothed in appressed pale (whitish) hairs. -
P-Methoxycinnamic Acid Diesters Lower Dyslipidemia, Liver Oxidative Stress and Toxicity in High-Fat Diet Fed Mice and Human Peripheral Blood Lymphocytes
nutrients Article p-Methoxycinnamic Acid Diesters Lower Dyslipidemia, Liver Oxidative Stress and Toxicity in High-Fat Diet Fed Mice and Human Peripheral Blood Lymphocytes Raquel Teixeira Terceiro Paim 1,*, Paula Salmito Alves Rodrigues 1, José Ytalo Gomes da Silva 1, Valdir Ferreira de Paula Junior 2, Bruno Bezerra da Silva 1 , Claísa Andréa Silva De Freitas 1, Reinaldo Barreto Oriá 3, Eridan Orlando Pereira Tramontina Florean 1, Davide Rondina 4 and Maria Izabel Florindo Guedes 1 1 Biotechnology & Molecular Biology Laboratory, State University of Ceara, Fortaleza 60.714-903, Brazil; [email protected] (P.S.A.R.); [email protected] (J.Y.G.d.S.); [email protected] (B.B.d.S.); [email protected] (C.A.S.D.F.); [email protected] (E.O.P.T.F.); fl[email protected] (M.I.F.G.) 2 Postgraduate Program in Veterinary Sciences, Faculty of Veterinary Medicine, State University of Ceara, Fortaleza CE 60.714-903, Brazil; [email protected] 3 Laboratory of Tissue healing, Ontogeny and Nutrition, Department of Morphology and Institute of Biomedicine, Federal University of Ceara, Fortaleza 60.430-270, Brazil; [email protected] 4 Laboratory of Nutrition and Ruminant Production, State University of Ceara, Fortaleza 60.714-903, Brazil; [email protected] * Correspondence: [email protected]; Tel.: +55-85997287264 Received: 10 December 2019; Accepted: 16 January 2020; Published: 20 January 2020 Abstract: The pursuit of cholesterol lowering natural products with less side effects is needed for controlling dyslipidemia and reducing the increasing toll of cardiovascular diseases that are associated with morbidity and mortality worldwide. -
Functional Structure of the Bromeliad Tank Microbiome Is Strongly Shaped by Local Geochemical Conditions
Environmental Microbiology (2017) 19(8), 3132–3151 doi:10.1111/1462-2920.13788 Functional structure of the bromeliad tank microbiome is strongly shaped by local geochemical conditions Stilianos Louca,1,2* Saulo M. S. Jacques,3,4 denitrification steps, ammonification, sulfate respira- Aliny P. F. Pires,3 Juliana S. Leal,3,5 tion, methanogenesis, reductive acetogenesis and 6 1,2,7 Angelica L. Gonzalez, Michael Doebeli and anoxygenic phototrophy. Overall, CO2 reducers domi- Vinicius F. Farjalla3 nated in abundance over sulfate reducers, and 1Biodiversity Research Centre, University of British anoxygenic phototrophs largely outnumbered oxy- Columbia, Vancouver, BC, Canada. genic photoautotrophs. Functional community 2Department of Zoology, University of British Columbia, structure correlated strongly with environmental vari- Vancouver, BC, Canada. ables, between and within a single bromeliad species. 3Department of Ecology, Biology Institute, Universidade Methanogens and reductive acetogens correlated Federal do Rio de Janeiro, Rio de Janeiro, Brazil. with detrital volume and canopy coverage, and exhib- 4Programa de Pos-Graduac ¸ao~ em Ecologia e ited higher relative abundances in N. cruenta.A Evoluc¸ao,~ Universidade Estadual do Rio de Janeiro, Rio comparison of bromeliads to freshwater lake sedi- de Janeiro, Brazil. ments and soil from around the world, revealed stark differences in terms of taxonomic as well as func- 5Programa de Pos-Graduac ¸ao~ em Ecologia, tional microbial community structure. Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil. 6Biology Department & Center for Computational & Introduction Integrative Biology, Rutgers University, Camden, NJ, USA. Bromeliads (fam. Bromeliaceae) are plants found through- 7Department of Mathematics, University of British out the neotropics, with many species having rosette-like Columbia, Vancouver, BC, Canada. -
Chemical Constituents from the Roots of Furcraea Bedinghausii Koch
International Letters of Chemistry, Physics and Astronomy Online: 2013-08-05 ISSN: 2299-3843, Vol. 16, pp 9-19 doi:10.18052/www.scipress.com/ILCPA.16.9 CC BY 4.0. Published by SciPress Ltd, Switzerland, 2013 Chemical Constituents from the Roots of Furcraea bedinghausii Koch Rémy B. Teponno1,*, Beaudelaire K. Ponou1,2, Dennis Fiorini2, Luciano Barboni2, Léon A. Tapondjou1 1Laboratory of Environmental and Applied Chemistry, Department of Chemistry, Faculty of Science, University of Dschang, PO Box 183, Dschang, Cameroon 2School of Science and Technology, Chemistry Division, University of Camerino, Via S. Agostino 1, I-62032 Camerino, Italy *E-mail address: [email protected] ABSTRACT Phytochemical investigation of the roots of Furcraea bedinghausii Koch. Led to the isolation of a mixture of two new homoisoflavones, 5,7-dihydroxy-3-(3,4-methylenedioxybenzyl)-chromone (4a) and 5,7-dihydroxy-3-(4-methoxybenzyl)-chromone (4b), together with the known β-sitosterol (1), 7,4'-dihydroxyhomoisoflavane (2), dihydrobonducellin (3), kaempferol (5), 5,7-dihydroxy-3-(4- hydroxybenzyl)-chromone (6), 1-linoleylglycerol (7), 6’-linoleyl-3-O-β-D-glucopyranosyl-β-sitosterol (8), trans-3,3’,5,5’-tetrahydroxy-4’-methoxystilbene (9), yuccaol C (10), yuccaol D (11), 3-O-β-D- glucopyranosyl-β-sitosterol (12), 4-[6-O-(4-hydroxy-3,5-dimethoxybenzoyl)-β-D- glucopyranosyloxy]-3-methoxybenzoic acid (13) and two pairs of steroidal saponins: (25R)-2α-3β– dihydroxy-5α-spirostan-12-one 3-O-β-D-glucopyranosyl-(1→2)-O-[β-D-xylopyranosyl-(1→3)]-O-β- D-glucopyranosyl-(1→4)-β-D-galactopyranoside (14a) and (25R)-2α-3β–dihydroxy-5α-spirost-9-en- 12-one 3-O-β-D-glucopyranosyl-(1→2)-O-[β-D-xylopyranosyl-(1→3)]-O-β-D-glucopyranosyl- (1→4)- β-D-galactopyranoside (14b), (25R)-3β–hydroxy-5α-spirostan-12-one 3-O-β-D- glucopyranosyl-(1→2)-O-[β-D-xylopyranosyl-(1→3)]-O-β-D-glucopyranosyl-(1→4)-β-D- galactopyranoside (15a) and (25R)-3β–hydroxy-5α-spirost-9-en-12-one 3-O-β-D-glucopyranosyl- (1→2)-O-[β-D-xylopyranosyl-(1→3)]-O-β-D-glucopyranosyl-(1→4)-β-D-galactopyranoside (15b).