Seed Ecology Iii

Total Page:16

File Type:pdf, Size:1020Kb

Seed Ecology Iii SEED ECOLOGY III The Third International Society for Seed Science Meeting on Seeds and the Environment “Seeds and Change” Conference Proceedings June 20 to June 24, 2010 Salt Lake City, Utah, USA Editors: R. Pendleton, S. Meyer, B. Schultz Proceedings of the Seed Ecology III Conference Preface Extended abstracts included in this proceedings will be made available online. Enquiries and requests for hardcopies of this volume should be sent to: Dr. Rosemary Pendleton USFS Rocky Mountain Research Station Albuquerque Forestry Sciences Laboratory 333 Broadway SE Suite 115 Albuquerque, New Mexico, USA 87102-3497 The extended abstracts in this proceedings were edited for clarity. Seed Ecology III logo designed by Bitsy Schultz. i June 2010, Salt Lake City, Utah Proceedings of the Seed Ecology III Conference Table of Contents Germination Ecology of Dry Sandy Grassland Species along a pH-Gradient Simulated by Different Aluminium Concentrations.....................................................................................................................1 M Abedi, M Bartelheimer, Ralph Krall and Peter Poschlod Induction and Release of Secondary Dormancy under Field Conditions in Bromus tectorum.......................2 PS Allen, SE Meyer, and K Foote Seedling Production for Purposes of Biodiversity Restoration in the Brazilian Cerrado Region Can Be Greatly Enhanced by Seed Pretreatments Derived from Seed Technology......................................................4 S Anese, GCM Soares, ACB Matos, DAB Pinto, EAA da Silva, and HWM Hilhorst Epicotyl Dormancy – Revisited..............................................................................................................................6 CC Baskin and JM Baskin Effect of Inbreeding Depression and Population Size on Seed Germination: A Review..................................8 JM Baskin and CC Baskin Effect of Fire on a Seed Bank Pathogen and on Seeds of Its Host, Bromus tectorum...................................10 J Beckstead, SE Meyer, LE Street and PS Allen Modeling and Predicting Changes in Dormancy in Soil Seed Banks...............................................................12 RL Benech-Arnold and D Batlla Variation in Germination and Nursery Performance of Prunus africana and Hagenia abyssinica Populations in Ethiopia.........................................................................................................................................14 BA Betremariam Stream Flow, Seed Suspension, and Seasonality: Hydrochory in a Semi-arid Stream, Verde River, Arizona, USA.........................................................................................................................................................................15 J Betsch, J Stromberg and D Setaro Maturity, Germination and Longevity Studies in a Narrow Endemic Columbine in the Italian Alps (Aquilegia thalictrifolia Scott et Kotschy)...........................................................................................................16 C Bonomi, A Mondoni, M Bolognesi and E Bortoluzzi Seed Ecology of Australian Rutaceae.................................................................................................................18 H Bowers, S Turner, D Merritt, B Tan and K Dixon Does Cattle Dung Cause Differences in the Germination Response of Grazing Increasers vs Decreasers?...........................................................................................................................................................20 CP Carmona, FM Azcárate and B Peco Effects of Light and Temperature on Seed Germination of Ficus spp. from Two Contrasting Tropical Microhabitats.........................................................................................................................................................22 H Chen and M Cao Effect of the Acorn Pericarp on Germination of Pasania konishii (Fagaceae)................................................24 S-Y Chen Seed Dormancy and Germination of Cycas taitungensis (Cycadaceae)..........................................................26 C-T Chien Restoring the Desert: Using Seed Ecological Information to Restore Arid-zone Mines................................28 LE Commander, DJ Merritt and KW Dixon Germination and Field Survival of Sarracenia leucophylla Seeds...................................................................30 K Connor and H Gibbs The Effect of Scarification and Stratification Treatments on the Germination of Danthonia californica Seed from Three Populations........................................................................................................................................32 DC Darris Where Dispersal Meets Dormancy: “Hard” Seed Dispersal by Herbivorous Mammals.................................34 B D’hondt, M Hoffmann Does Ethylene Play Some Role in the Germination Enhancement of Clustered Reseda complicata Seeds?....................................................................................................................................................................36 M. Díaz-Miguel Predicting Optimum Germination Conditions for Wild Species Stored in Seed Banks……………………….38 JB Dickie, RJ Probert, K Liu and L Robb Interactions Across Seed and Adult Life Stages: Ecological and Evolutionary Consequences...................40 K Donohue The Use of Agricultural Direct Drill Tynes to Improve Direct Seeding Results in Revegetation Using Australian Native Tree and Shrub Seeds............................................................................................................41 M Driver, M Zeschke, R Ellis and M Taylor Effects of Seed Storage on Germination of Two Succulent Desert Halophytes with Little Dormancy and Short-lived Seeds..................................................................................................................................................43 A El-Keblawy Seed Dormancy, Persistence, and Germination Response Inform Restoration Capability in a Biodiverse Semi-arid Zone Ecoregion...................................................................................................................................45 TE Erickson, DJ Merritt, SR Turner, PJ Ainsley and KW Dixon Haplotype Variation for a Major Seed Dormancy Gene-Containing Region in the Lineage of Wild, Weedy, and Cultivated Rice................................................................................................................................................47 June 2010, Salt Lake City, Utah ii Proceedings of the Seed Ecology III Conference J Feng and X-Y Gu Relationship between Climate and Seed Germination at a Local Scale in a Narrow Endemic Species.......49 E Fernández-Pascual, B Jiménez-Alfaro, TE Díaz-González and F Pérez-García Seed Biology and Germination of the Basal Angiosperm Amborella trichopoda...........................................51 B Fogliani, N Klein, G Gâteblé and C Scutt Dormancy Cycling of Brassicaceae Species in the Field: Impact of Thermal Gradients and Nitrate on Seeds During Annual Cycles................................................................................................................................53 S Footitt, H Clay, K Dent, A Mead and W Finch-Savage Arabidopsis Dormancy in the Field: a Molecular-physiological Analysis Uncovers New Dormancy Cycling Behavior.................................................................................................................................................................55 S Footitt, H Őlçer-Footitt, ID Soler, H Clay, K Dent and W Finch-Savage Pigmentation and Symbiosis: Seed Properties and Their Implications for Platanthera praeclara (Orchidaceae).........................................................................................................................................................57 MM From Comparative Genetics of Seed Dormancy between Tropical and Temperate Ecotypes of Weedy Rice.......59 X-Y Gu, L Zhang, J Feng and M E Foley Evaluation of Reproductive Success in Senecio coincyi Rouy, a Threatened Species from Spain………...61 S Guerrero-García, F Martínez-García, V Martínez-Fernández and F Pérez-García Oceanic Dispersal: Can Seeds Really Float, Survive, and Germinate?...........................................................63 LK Guja, DJ Merritt, G Wardell-Johnson and KW Dixon Bromus tectorum: Variation in Seed Dormancy Among Populations..............................................................65 DN Harmon, C Clements and M Clark Does an Increase in the Duration of Cold Stratification Have an Effect on the Germination of Eucalyptus nitens H. Deane & Maiden and Three Other Victorian Eucalypt Species?.......................................................67 MJ Hirst, CR Nitschke, NG Walsh and SK Arndt Seed Surface Structure in Central European Species.......................................................................................68 C Hoppe and O Tackenberg Australian Alpine Seeds and Seedlings: Can They Cope with Change?.........................................................70 G Hoyle, A Nicotra, K Steadman and R Good Cyclic Sensitivity Patterns in Seeds with Physical Dormancy..........................................................................72 KMGG Jayasuriya An Evaluation of Seed Scarification Methods of Four Native Lupinus Species..............................................74 CD Jones, SL Jensen, and MR Stevens Seasonal Sporulation-Revealed Complexity in Life Cycles of Norway Spruce Cone Rusts………………….76 J Kaitera, E Tillman-Sutela and A Kauppi
Recommended publications
  • Additional Information
    Current Survey Introduced Flora Records Vegetation Condition *Acetosa vesicaria Excellent 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000 mE 535,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 536,000 mE 536,000 537,000 mE 537,000 534,000 mE 534,000 mE 535,000 534,000 mE 534,000
    [Show full text]
  • Appendix Color Plates of Solanales Species
    Appendix Color Plates of Solanales Species The first half of the color plates (Plates 1–8) shows a selection of phytochemically prominent solanaceous species, the second half (Plates 9–16) a selection of convol- vulaceous counterparts. The scientific name of the species in bold (for authorities see text and tables) may be followed (in brackets) by a frequently used though invalid synonym and/or a common name if existent. The next information refers to the habitus, origin/natural distribution, and – if applicable – cultivation. If more than one photograph is shown for a certain species there will be explanations for each of them. Finally, section numbers of the phytochemical Chapters 3–8 are given, where the respective species are discussed. The individually combined occurrence of sec- ondary metabolites from different structural classes characterizes every species. However, it has to be remembered that a small number of citations does not neces- sarily indicate a poorer secondary metabolism in a respective species compared with others; this may just be due to less studies being carried out. Solanaceae Plate 1a Anthocercis littorea (yellow tailflower): erect or rarely sprawling shrub (to 3 m); W- and SW-Australia; Sects. 3.1 / 3.4 Plate 1b, c Atropa belladonna (deadly nightshade): erect herbaceous perennial plant (to 1.5 m); Europe to central Asia (naturalized: N-USA; cultivated as a medicinal plant); b fruiting twig; c flowers, unripe (green) and ripe (black) berries; Sects. 3.1 / 3.3.2 / 3.4 / 3.5 / 6.5.2 / 7.5.1 / 7.7.2 / 7.7.4.3 Plate 1d Brugmansia versicolor (angel’s trumpet): shrub or small tree (to 5 m); tropical parts of Ecuador west of the Andes (cultivated as an ornamental in tropical and subtropical regions); Sect.
    [Show full text]
  • Species of the Box-Gum Woodlands and Derived Native Grasslands
    White Box-Yellow Box-Blakely’s Red Gum Grassy Woodland and Derived Native Grassland Ecological Community Species List White Box-Yellow Box-Blakely’s Red Gum Grassy Woodland and Derived Native Grassland Ecological Community Species List This species list is designed to provide information about plant species that can be found in the White Box-Yellow Box-Blakely’s Red Gum Grassy Woodland and Derived Native Grassland ecological community listed under the Environment Protection and Biodiversity Conservation Act 1999. The species list was developed to complement the Listing Information Guide, and should be read in that context. It provides information on scientific and common names of the species, the kind of plant the species is, whether it is an ‘important’ species for the purposes of this ecological community and whether it is exotic or native, perennial or annual. The list is not exhaustive and not all of the species listed will occur in every patch of White Box-Yellow Box-Blakely’s Red Gum Grassy Woodland and Derived Native Grassland. If there are any species that you think should be added to the list, removed from the list, or that are categorised incorrectly, please contact [email protected]. As such, this document may change over time and you should check that you are referring to the most recent version of the list. Caveat: This list has been compiled from a range of sources. While reasonable efforts have been made to ensure the accuracy of the information, no guarantee is given, nor responsibility taken, by the Commonwealth for its accuracy, currency or completeness.
    [Show full text]
  • Acacia Pruinosa A.Cunn
    WATTLE Acacias of Australia Acacia pruinosa A.Cunn. ex Benth. Source: Australian Plant Image Index (a.31257). Source: W orldW ideW attle ver. 2. Source: W orldW ideW attle ver. 2. ANBG © M. Fagg, 1998 Published at: w w w .w orldw idew attle.com Published at: w w w .w orldw idew attle.com See illustration. See illustration. Acacia pruinosa occurrence map. O ccurrence map generated via Atlas of Living Australia (https://w w w .ala.org.au). Common Name Frosty Wattle Family Fabaceae Distribution Extends from Miles, south-eastern Qld, to the tablelands, slopes and adjacent plains of northern N.S.W., as far W as Emmaville and S to Cuttabri. Description Pruinose shrub or tree to 6 m high. Bark smooth, dark red or purplish. Branchlets inconspicuously ridged, reddish or blue-black, glossy, ±pruinose, glabrous. Young foliage-tips greyish green. Leaves subcoriaceous, glaucous; petiole above pulvinus mostly 1.8–6 cm long, usually with a prominent elongated gland at base of or to ½-way below lowest pair of pinnae, glabrous; rachis 1.5–10 cm long, with a gland at base of all or some pairs of pinnae, glabrous; interjugary glands absent; pinnae (1–) 2–4 (–5) pairs, widely spaced, 3–9 cm long; pinnules 7–20 pairs, narrowly oblong, 8–18 mm long, 2.5–5 (–6) mm wide, obtuse, glabrous, the main nerve percurrent with two shorter secondary nerves from base not reaching margin. Inflorescences in axillary racemes or false-panicles or terminal false-panicles; peduncles 3–8 mm long. Heads globular, 5–10 mm diam., 40–60-flowered, golden; calyx-lobes spathulate.
    [Show full text]
  • Phylogeny and Subfamilial Classification of the Grasses (Poaceae) Author(S): Grass Phylogeny Working Group, Nigel P
    Phylogeny and Subfamilial Classification of the Grasses (Poaceae) Author(s): Grass Phylogeny Working Group, Nigel P. Barker, Lynn G. Clark, Jerrold I. Davis, Melvin R. Duvall, Gerald F. Guala, Catherine Hsiao, Elizabeth A. Kellogg, H. Peter Linder Source: Annals of the Missouri Botanical Garden, Vol. 88, No. 3 (Summer, 2001), pp. 373-457 Published by: Missouri Botanical Garden Press Stable URL: http://www.jstor.org/stable/3298585 Accessed: 06/10/2008 11:05 Your use of the JSTOR archive indicates your acceptance of JSTOR's Terms and Conditions of Use, available at http://www.jstor.org/page/info/about/policies/terms.jsp. JSTOR's Terms and Conditions of Use provides, in part, that unless you have obtained prior permission, you may not download an entire issue of a journal or multiple copies of articles, and you may use content in the JSTOR archive only for your personal, non-commercial use. Please contact the publisher regarding any further use of this work. Publisher contact information may be obtained at http://www.jstor.org/action/showPublisher?publisherCode=mobot. Each copy of any part of a JSTOR transmission must contain the same copyright notice that appears on the screen or printed page of such transmission. JSTOR is a not-for-profit organization founded in 1995 to build trusted digital archives for scholarship. We work with the scholarly community to preserve their work and the materials they rely upon, and to build a common research platform that promotes the discovery and use of these resources. For more information about JSTOR, please contact [email protected].
    [Show full text]
  • Enabling the Market: Incentives for Biodiversity in the Rangelands
    Enabling the Market: Incentives for Biodiversity in the Rangelands: Report to the Australian Government Department of the Environment and Water Resources by the Desert Knowledge Cooperative Research Centre Anita Smyth Anthea Coggan Famiza Yunus Russell Gorddard Stuart Whitten Jocelyn Davies Nic Gambold Jo Maloney Rodney Edwards Rob Brandle Mike Fleming John Read June 2007 Copyright and Disclaimers © Commonwealth of Australia 2007 Information contained in this publication may be copied or reproduced for study, research, information or educational purposes, subject to inclusion of an acknowledgment of the source. The views and opinions expressed in this publication are those of the authors and do not necessarily reflect those of the Australian Government or the Minister for the Environment and Water Resources. While reasonable efforts have been made to ensure that the contents of this publication are factually correct, the Australian Government does not accept responsibility for the accuracy or completeness of the contents, and shall not be liable for any loss or damage that may be occasioned directly or indirectly through the use of, or reliance on, the contents of this publication. Contributing author information Anita Smyth: CSIRO Sustainable Ecosystems Anthea Coggan: CSIRO Sustainable Ecosystems Famiza Yunus: CSIRO Sustainable Ecosystems Russell Gorddard: CSIRO Sustainable Ecosystems Stuart Whitten: CSIRO Sustainable Ecosystems Jocelyn Davies: CSIRO Sustainable Ecosystems Nic Gambold: Central Land Council Jo Maloney Rodney Edwards: Ngaanyatjarra Council Rob Brandle: South Austalia Department for Environment and Heritage Mike Fleming: South Australia Department of Water, Land and Biodiversity Conservation John Read: BHP Billiton Desert Knowledge CRC Report Number 18 Information contained in this publication may be copied or reproduced for study, research, information or educational purposes, subject to inclusion of an acknowledgement of the source.
    [Show full text]
  • Fruits and Seeds of Genera in the Subfamily Faboideae (Fabaceae)
    Fruits and Seeds of United States Department of Genera in the Subfamily Agriculture Agricultural Faboideae (Fabaceae) Research Service Technical Bulletin Number 1890 Volume I December 2003 United States Department of Agriculture Fruits and Seeds of Agricultural Research Genera in the Subfamily Service Technical Bulletin Faboideae (Fabaceae) Number 1890 Volume I Joseph H. Kirkbride, Jr., Charles R. Gunn, and Anna L. Weitzman Fruits of A, Centrolobium paraense E.L.R. Tulasne. B, Laburnum anagyroides F.K. Medikus. C, Adesmia boronoides J.D. Hooker. D, Hippocrepis comosa, C. Linnaeus. E, Campylotropis macrocarpa (A.A. von Bunge) A. Rehder. F, Mucuna urens (C. Linnaeus) F.K. Medikus. G, Phaseolus polystachios (C. Linnaeus) N.L. Britton, E.E. Stern, & F. Poggenburg. H, Medicago orbicularis (C. Linnaeus) B. Bartalini. I, Riedeliella graciliflora H.A.T. Harms. J, Medicago arabica (C. Linnaeus) W. Hudson. Kirkbride is a research botanist, U.S. Department of Agriculture, Agricultural Research Service, Systematic Botany and Mycology Laboratory, BARC West Room 304, Building 011A, Beltsville, MD, 20705-2350 (email = [email protected]). Gunn is a botanist (retired) from Brevard, NC (email = [email protected]). Weitzman is a botanist with the Smithsonian Institution, Department of Botany, Washington, DC. Abstract Kirkbride, Joseph H., Jr., Charles R. Gunn, and Anna L radicle junction, Crotalarieae, cuticle, Cytiseae, Weitzman. 2003. Fruits and seeds of genera in the subfamily Dalbergieae, Daleeae, dehiscence, DELTA, Desmodieae, Faboideae (Fabaceae). U. S. Department of Agriculture, Dipteryxeae, distribution, embryo, embryonic axis, en- Technical Bulletin No. 1890, 1,212 pp. docarp, endosperm, epicarp, epicotyl, Euchresteae, Fabeae, fracture line, follicle, funiculus, Galegeae, Genisteae, Technical identification of fruits and seeds of the economi- gynophore, halo, Hedysareae, hilar groove, hilar groove cally important legume plant family (Fabaceae or lips, hilum, Hypocalypteae, hypocotyl, indehiscent, Leguminosae) is often required of U.S.
    [Show full text]
  • Acacia Inaequilatera Domin
    Acacia inaequilatera Domin Identifiants : 196/acaina Association du Potager de mes/nos Rêves (https://lepotager-demesreves.fr) Fiche réalisée par Patrick Le Ménahèze Dernière modification le 29/09/2021 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 : Acacia ; Synonymes : In the past often confused with Acacia pyrifoli ; Nom(s) anglais, local(aux) et/ou international(aux) : baderi , Partirri ; Rapport de consommation et comestibilité/consommabilité inférée (partie(s) utilisable(s) et usage(s) alimentaire(s) correspondant(s)) : Rapport de consommation et comestibilité/consommabilité inférée (partie(s) utilisable(s) et usage(s) alimentaire(s) correspondant(s)) : Données absentes/manquantes et/ou insuffisantesµ{{{(dp*)µ. Les graines vertes sont consommées néant, inconnus ou indéterminés.néant, inconnus ou indéterminés. Illustration(s) (photographie(s) et/ou dessin(s)): Autres infos : dont infos de "FOOD PLANTS INTERNATIONAL" : Distribution : Il pousse dans les zones arides. Il convient aux climats chauds et secs. Il a besoin d'un sol bien drainé et d'une Page 1/2 position ensoleillée{{{0(+x) (traduction automatique). Original : It grows in arid areas. It suits hot dry climates. It needs a well drained soil and a sunny position{{{0(+x). Localisation : Australie*{{{0(+x) (traduction automatique). Original : Australia*{{{0(+x). Notes : Il existe environ 1350 espèces d'Acacia. Plus de 1 000 se produisent en Australie. Aussi comme Mimosaceae{{{0(+x) (traduction automatique). Original : There are about 1,350 Acacia species. Over 1,000 occur in Australia. Also as Mimosaceae{{{0(+x).
    [Show full text]
  • Tree and Tree-Like Species of Mexico: Asteraceae, Leguminosae, and Rubiaceae
    Revista Mexicana de Biodiversidad 84: 439-470, 2013 Revista Mexicana de Biodiversidad 84: 439-470, 2013 DOI: 10.7550/rmb.32013 DOI: 10.7550/rmb.32013439 Tree and tree-like species of Mexico: Asteraceae, Leguminosae, and Rubiaceae Especies arbóreas y arborescentes de México: Asteraceae, Leguminosae y Rubiaceae Martin Ricker , Héctor M. Hernández, Mario Sousa and Helga Ochoterena Herbario Nacional de México, Departamento de Botánica, Instituto de Biología, Universidad Nacional Autónoma de México. Apartado postal 70- 233, 04510 México D. F., Mexico. [email protected] Abstract. Trees or tree-like plants are defined here broadly as perennial, self-supporting plants with a total height of at least 5 m (without ascending leaves or inflorescences), and with one or several erect stems with a diameter of at least 10 cm. We continue our compilation of an updated list of all native Mexican tree species with the dicotyledonous families Asteraceae (36 species, 39% endemic), Leguminosae with its 3 subfamilies (449 species, 41% endemic), and Rubiaceae (134 species, 24% endemic). The tallest tree species reach 20 m in the Asteraceae, 70 m in the Leguminosae, and also 70 m in the Rubiaceae. The species-richest genus is Lonchocarpus with 67 tree species in Mexico. Three legume genera are endemic to Mexico (Conzattia, Hesperothamnus, and Heteroflorum). The appendix lists all species, including their original publication, references of taxonomic revisions, existence of subspecies or varieties, maximum height in Mexico, and endemism status. Key words: biodiversity, flora, tree definition. Resumen. Las plantas arbóreas o arborescentes se definen aquí en un sentido amplio como plantas perennes que se pueden sostener por sí solas, con una altura total de al menos 5 m (sin considerar hojas o inflorescencias ascendentes) y con uno o varios tallos erectos de un diámetro de al menos 10 cm.
    [Show full text]
  • Біологія 62/2012 Засновано 1958 Року
    ВІСНИК КИЇВСЬКОГО НАЦІОНАЛЬНОГО УНІВЕРСИТЕТУ ІМЕНІ ТАРАСА ШЕВЧЕНКА ISSN 1728-2748 БІОЛОГІЯ 62/2012 Засновано 1958 року Подано експериментальні дані про особливості будови, розвитку і функціонування рослинних і тваринних організмів, флору і фауну України, одержані на основі досліджень, що проводяться науковця- ми біологічного факультету в галузях фізіології рослин і тварин, генетики, ботаніки, зоології, мікробі- ології, вірусології. Викладено також нові дані стосовно біохімічних і біофізичних основ регуляції у клі- тинах і органах у нормі й після впливу різноманітних фізико-хімічних факторів, наведено результати нових методичних розробок. Для наукових співробітників, викладачів, аспірантів і студентів. Collection of articles written by the scientists of biological faculty contains data on research in molecular biology, physiology, genetics, microbiology, virology, botanics, zoology concerning the structure, development and function of the plant and animal organisms, flora and fauna of Ukraine. Results of newly developed biophysical methods of biological research, biochemical data regarding metabolic regulation under the influence of different factors are presented. For scientists, professors, aspirants and students. ВІДПОВІДАЛЬНИЙ РЕДАКТОР Л.І. Остапченко, д-р біол. наук, проф. РЕДАКЦІЙНА Є.О. Торгало, канд. біол. наук (відп. секр.).; Т.В. Берегова, КОЛЕГІЯ д-р біол. наук, проф.; В.К. Рибальченко, д-р біол. наук, проф.; В.С. Мартинюк, д-р біол. наук, проф.; С.В. Демидов, д-р біол. наук, проф.; М.Е. Дзержинський, д-р біол. наук, проф.; М.С. Мірошниченко, д-р біол. наук, проф.; М.М. Мусієнко, д-р біол. наук, проф., чл.-кор. УААН; В.К. Позур, д-р біол. наук, проф.; І.Ю. Костіков, д-р біол. наук, доц.; В.В. Серебряков, д-р біол.
    [Show full text]
  • Rare Or Threatened Vascular Plant Species of Wollemi National Park, Central Eastern New South Wales
    Rare or threatened vascular plant species of Wollemi National Park, central eastern New South Wales. Stephen A.J. Bell Eastcoast Flora Survey PO Box 216 Kotara Fair, NSW 2289, AUSTRALIA Abstract: Wollemi National Park (c. 32o 20’– 33o 30’S, 150o– 151oE), approximately 100 km north-west of Sydney, conserves over 500 000 ha of the Triassic sandstone environments of the Central Coast and Tablelands of New South Wales, and occupies approximately 25% of the Sydney Basin biogeographical region. 94 taxa of conservation signiicance have been recorded and Wollemi is recognised as an important reservoir of rare and uncommon plant taxa, conserving more than 20% of all listed threatened species for the Central Coast, Central Tablelands and Central Western Slopes botanical divisions. For a land area occupying only 0.05% of these divisions, Wollemi is of paramount importance in regional conservation. Surveys within Wollemi National Park over the last decade have recorded several new populations of signiicant vascular plant species, including some sizeable range extensions. This paper summarises the current status of all rare or threatened taxa, describes habitat and associated species for many of these and proposes IUCN (2001) codes for all, as well as suggesting revisions to current conservation risk codes for some species. For Wollemi National Park 37 species are currently listed as Endangered (15 species) or Vulnerable (22 species) under the New South Wales Threatened Species Conservation Act 1995. An additional 50 species are currently listed as nationally rare under the Briggs and Leigh (1996) classiication, or have been suggested as such by various workers. Seven species are awaiting further taxonomic investigation, including Eucalyptus sp.
    [Show full text]
  • Palatability of Plants to Camels (DBIRD NT)
    Technote No. 116 June 2003 Agdex No: 468/62 ISSN No: 0158-2755 The Palatability of Central Australian Plant Species to Camels Dr B. Dorges, Dr J. Heucke, Central Australian Camel Industry Association and R. Dance, Pastoral Division, Alice Springs BACKGROUND About 600,000 camels (Camelus dromedarius) are believed to inhabit the arid centre of Australia, mainly in South Australia, Western Australia and the Northern Territory. Most of these camels are feral. A small camel industry has developed, which harvests selected animals for domestic and export markets, primarily for meat. Camels can eat more than 80% of the common plant species found in Central Australia. Some plant species are actively sought by camels and may need to be protected. METHOD Observations of grazing preferences by camels were made periodically for up to 12 years on five cattle stations in Central Australia. Where camels were accustomed to the presence of humans, it was possible to observe their grazing preferences from a few metres. Radio transmitters were fitted on some camels for easy detection and observation at any time. These evaluations were used to establish a diet preference or palatability index for observed food plants. Table 1. Palatability index for camels Index Interpretation 1 only eaten when nothing else is available 2 rarely eaten 3 common food plant 4 main food plant at times 5 preferred food plant 6 highly preferred food plant 7 could be killed by camel browsing More information can be obtained from the web site of the Central Australian Camel Industry Association http://www.camelsaust.com.au 2 RESULTS Table 2.
    [Show full text]