Funariales Michael Lüth 2007
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Translocation and Transport
Glime, J. M. 2017. Nutrient Relations: Translocation and Transport. Chapt. 8-5. In: Glime, J. M. Bryophyte Ecology. Volume 1. 8-5-1 Physiological Ecology. Ebook sponsored by Michigan Technological University and the International Association of Bryologists. Last updated 17 July 2020 and available at <http://digitalcommons.mtu.edu/bryophyte-ecology/>. CHAPTER 8-5 NUTRIENT RELATIONS: TRANSLOCATION AND TRANSPORT TABLE OF CONTENTS Translocation and Transport ................................................................................................................................ 8-5-2 Movement from Older to Younger Tissues .................................................................................................. 8-5-6 Directional Differences ................................................................................................................................ 8-5-8 Species Differences ...................................................................................................................................... 8-5-8 Mechanisms of Transport .................................................................................................................................... 8-5-9 Source to Sink? ............................................................................................................................................ 8-5-9 Enrichment Effects ..................................................................................................................................... 8-5-10 Internal Transport -
Lehman Caves Management Plan
National Park Service U.S. Department of the Interior Great Basin National Park Lehman Caves Management Plan June 2019 ON THE COVER Photograph of visitors on tour of Lehman Caves NPS Photo ON THIS PAGE Photograph of cave shields, Grand Palace, Lehman Caves NPS Photo Shields in the Grand Palace, Lehman Caves. Lehman Caves Management Plan Great Basin National Park Baker, Nevada June 2019 Approved by: James Woolsey, Superintendent Date Executive Summary The Lehman Caves Management Plan (LCMP) guides management for Lehman Caves, located within Great Basin National Park (GRBA). The primary goal of the Lehman Caves Management Plan is to manage the cave in a manner that will preserve and protect cave resources and processes while allowing for respectful recreation and scientific use. More specifically, the intent of this plan is to manage Lehman Caves to maintain its geological, scenic, educational, cultural, biological, hydrological, paleontological, and recreational resources in accordance with applicable laws, regulations, and current guidelines such as the Federal Cave Resource Protection Act and National Park Service Management Policies. Section 1.0 provides an introduction and background to the park and pertinent laws and regulations. Section 2.0 goes into detail of the natural and cultural history of Lehman Caves. This history includes how infrastructure was built up in the cave to allow visitors to enter and tour, as well as visitation numbers from the 1920s to present. Section 3.0 states the management direction and objectives for Lehman Caves. Section 4.0 covers how the Management Plan will meet each of the objectives in Section 3.0. -
Flora of New Zealand Mosses
FLORA OF NEW ZEALAND MOSSES FUNARIACEAE A.J. FIFE Fascicle 45 – APRIL 2019 © Landcare Research New Zealand Limited 2019. Unless indicated otherwise for specific items, this copyright work is licensed under the Creative Commons Attribution 4.0 International licence Attribution if redistributing to the public without adaptation: “Source: Manaaki Whenua – Landcare Research” Attribution if making an adaptation or derivative work: “Sourced from Manaaki Whenua – Landcare Research” See Image Information for copyright and licence details for images. CATALOGUING IN PUBLICATION Fife, Allan J. (Allan James), 1951– Flora of New Zealand : mosses. Fascicle 45, Funariaceae / Allan J. Fife. -- Lincoln, N.Z. : Manaaki Whenua Press, 2019. 1 online resource ISBN 978-0-947525-58-3 (pdf) ISBN 978-0-478-34747-0 (set) 1.Mosses -- New Zealand -- Identification. I. Title. II. Manaaki Whenua – Landcare Research New Zealand Ltd. UDC 582.344.55(931) DC 588.20993 DOI: 10.7931/B15MZ6 This work should be cited as: Fife, A.J. 2019: Funariaceae. In: Smissen, R.; Wilton, A.D. Flora of New Zealand – Mosses. Fascicle 45. Manaaki Whenua Press, Lincoln. http://dx.doi.org/10.7931/B15MZ6 Date submitted: 25 Oct 2017; Date accepted: 2 Jul 2018 Cover image: Entosthodon radians, habit with capsule, moist. Drawn by Rebecca Wagstaff from A.J. Fife 5882, CHR 104422. Contents Introduction..............................................................................................................................................1 Typification...............................................................................................................................................1 -
Moss Cell Walls: Structure and Biosynthesis Alison W
University of Rhode Island DigitalCommons@URI Biological Sciences Faculty Publications Biological Sciences 2012 Moss cell walls: structure and biosynthesis Alison W. Roberts University of Rhode Island, [email protected] Eric M. Roberts See next page for additional authors Creative Commons License This work is licensed under a Creative Commons Attribution 3.0 License. Follow this and additional works at: https://digitalcommons.uri.edu/bio_facpubs Citation/Publisher Attribution Roberts AW, Roberts EM and Haigler CH (2012) Moss cell walls: structure and biosynthesis. Front. Plant Sci. 3:166. doi: 10.3389/ fpls.2012.00166 Available at: https://doi.org/10.3389/fpls.2012.00166 This Article is brought to you for free and open access by the Biological Sciences at DigitalCommons@URI. It has been accepted for inclusion in Biological Sciences Faculty Publications by an authorized administrator of DigitalCommons@URI. For more information, please contact [email protected]. Authors Alison W. Roberts, Eric M. Roberts, and Candace H. Haigler This article is available at DigitalCommons@URI: https://digitalcommons.uri.edu/bio_facpubs/205 MINI REVIEW ARTICLE published: 19 July 2012 doi: 10.3389/fpls.2012.00166 Moss cell walls: structure and biosynthesis Alison W. Roberts1*, Eric M. Roberts2 and Candace H. Haigler3,4 1 Department of Biological Sciences, University of Rhode Island, Kingston, RI, USA 2 Department of Biology, Rhodes Island College, Providence, RI, USA 3 Department of Crop Science, North Carolina State University, Raleigh, NC, USA 4 Department of Plant Biology, North Carolina State University, Raleigh, NC, USA Edited by: The genome sequence of the moss Physcomitrella patens has stimulated new research Seth DeBolt, University of Kentucky, examining the cell wall polysaccharides of mosses and the glycosyl transferases that syn- USA thesize them as a means to understand fundamental processes of cell wall biosynthesis Reviewed by: and plant cell wall evolution. -
Economic and Ethnic Uses of Bryophytes
Economic and Ethnic Uses of Bryophytes Janice M. Glime Introduction Several attempts have been made to persuade geologists to use bryophytes for mineral prospecting. A general lack of commercial value, small size, and R. R. Brooks (1972) recommended bryophytes as guides inconspicuous place in the ecosystem have made the to mineralization, and D. C. Smith (1976) subsequently bryophytes appear to be of no use to most people. found good correlation between metal distribution in However, Stone Age people living in what is now mosses and that of stream sediments. Smith felt that Germany once collected the moss Neckera crispa bryophytes could solve three difficulties that are often (G. Grosse-Brauckmann 1979). Other scattered bits of associated with stream sediment sampling: shortage of evidence suggest a variety of uses by various cultures sediments, shortage of water for wet sieving, and shortage around the world (J. M. Glime and D. Saxena 1991). of time for adequate sampling of areas with difficult Now, contemporary plant scientists are considering access. By using bryophytes as mineral concentrators, bryophytes as sources of genes for modifying crop plants samples from numerous small streams in an area could to withstand the physiological stresses of the modern be pooled to provide sufficient material for analysis. world. This is ironic since numerous secondary compounds Subsequently, H. T. Shacklette (1984) suggested using make bryophytes unpalatable to most discriminating tastes, bryophytes for aquatic prospecting. With the exception and their nutritional value is questionable. of copper mosses (K. G. Limpricht [1885–]1890–1903, vol. 3), there is little evidence of there being good species to serve as indicators for specific minerals. -
Evolutionary Implications of a Peroxidase with High Affinity For
plants Article Evolutionary Implications of a Peroxidase with High Affinity for Cinnamyl Alcohols from Physcomitrium patens, a Non-Vascular Plant Teresa Martínez-Cortés 1 , Federico Pomar 1 and Esther Novo-Uzal 2,* 1 Grupo de Investigación en Biología Evolutiva, Centro de Investigaciones Científicas Avanzadas, Universidade da Coruña, 15071 A Coruña, Spain; [email protected] (T.M.-C.); [email protected] (F.P.) 2 Instituto Gulbenkian de Ciência, 2780-156 Oeiras, Portugal * Correspondence: [email protected] Abstract: Physcomitrium (Physcomitrella) patens is a bryophyte highly tolerant to different stresses, allowing survival when water supply is a limiting factor. This moss lacks a true vascular system, but it has evolved a primitive water-conducting system that contains lignin-like polyphenols. By means of a three-step protocol, including ammonium sulfate precipitation, adsorption chromatography on phenyl Sepharose and cationic exchange chromatography on SP Sepharose, we were able to purify and further characterize a novel class III peroxidase, PpaPrx19, upregulated upon salt and H2O2 treatments. This peroxidase, of a strongly basic nature, shows surprising homology to angiosperm peroxidases related to lignification, despite the lack of true lignins in P. patens cell walls. Moreover, PpaPrx19 shows catalytic and kinetic properties typical of angiosperm peroxidases involved in Citation: Martínez-Cortés, T.; Pomar, F.; Novo-Uzal, E. Evolutionary oxidation of monolignols, being able to efficiently use hydroxycinnamyl alcohols as substrates. Our Implications of a Peroxidase with results pinpoint the presence in P. patens of peroxidases that fulfill the requirements to be involved in High Affinity for Cinnamyl Alcohols the last step of lignin biosynthesis, predating the appearance of true lignin. -
Distribution and Phylogenetic Significance of the 71-Kb Inversion
Annals of Botany 99: 747–753, 2007 doi:10.1093/aob/mcm010, available online at www.aob.oxfordjournals.org Distribution and Phylogenetic Significance of the 71-kb Inversion in the Plastid Genome in Funariidae (Bryophyta) BERNARD GOFFINET1,*, NORMAN J. WICKETT1 , OLAF WERNER2 , ROSA MARIA ROS2 , A. JONATHAN SHAW3 and CYMON J. COX3,† 1Department of Ecology and Evolutionary Biology, 75 North Eagleville Road, University of Connecticut, Storrs, CT 06269-3043, USA, 2Universidad de Murcia, Facultad de Biologı´a, Departamento de Biologı´a Vegetal, Campus de Espinardo, 30100-Murcia, Spain and 3Department of Biology, Duke University, Durham, NC 27708, USA Received: 31 October 2006 Revision requested: 21 November 2006 Accepted: 21 December 2006 Published electronically: 2 March 2007 † Background and Aims The recent assembly of the complete sequence of the plastid genome of the model taxon Physcomitrella patens (Funariaceae, Bryophyta) revealed that a 71-kb fragment, encompassing much of the large single copy region, is inverted. This inversion of 57% of the genome is the largest rearrangement detected in the plastid genomes of plants to date. Although initially considered diagnostic of Physcomitrella patens, the inversion was recently shown to characterize the plastid genome of two species from related genera within Funariaceae, but was lacking in another member of Funariidae. The phylogenetic significance of the inversion has remained ambiguous. † Methods Exemplars of all families included in Funariidae were surveyed. DNA sequences spanning the inversion break ends were amplified, using primers that anneal to genes on either side of the putative end points of the inver- sion. Primer combinations were designed to yield a product for either the inverted or the non-inverted architecture. -
Volume 1, Chapter 2-7: Bryophyta
Glime, J. M. 2017. Bryophyta – Bryopsida. Chapt. 2-7. In: Glime, J. M. Bryophyte Ecology. Volume 1. Physiological Ecology. Ebook 2-7-1 sponsored by Michigan Technological University and the International Association of Bryologists. Last updated 10 January 2019 and available at <http://digitalcommons.mtu.edu/bryophyte-ecology/>. CHAPTER 2-7 BRYOPHYTA – BRYOPSIDA TABLE OF CONTENTS Bryopsida Definition........................................................................................................................................... 2-7-2 Chromosome Numbers........................................................................................................................................ 2-7-3 Spore Production and Protonemata ..................................................................................................................... 2-7-3 Gametophyte Buds.............................................................................................................................................. 2-7-4 Gametophores ..................................................................................................................................................... 2-7-4 Location of Sex Organs....................................................................................................................................... 2-7-6 Sperm Dispersal .................................................................................................................................................. 2-7-7 Release of Sperm from the Antheridium..................................................................................................... -
Bryophytes Sl
à Enzo et à Lino 1 Bryophytes sl. Mousses, hépatiques et anthocérotes Mosses, liverworts and hornworts Glossaire illustré Illustrated glossary septembre 2016 Leica Chavoutier 2 …il faut aussi, condition requise abso- lument pour quiconque veut entrer ou plutôt se glisser dans l’univers des mousses, se pencher vers le sol pour y diriger ses yeux, se baisser… » Véronique Brindeau 3 Introduction Planches Glossaire : français/english Glossary : english/français Bibliographie Index des photographies 4 « …elles sont d’avant le temps des hommes, bien avant celui des arbres et des fleurs… » Véronique Brindeau Introduction Ce glossaire traite des mousses, hépatiques et anthocérotes, trois phylums proches par certaines parties de leurs structures et surtout par leur cycle de vie qui sont actuellement regroupés pour former les Bryophytes sl. Ce glossaire se veut une aide à la reconnaissance des termes courants utili- sés en bryologie mais aussi un complément donné à tous les utilisateurs des flores et autres publications rédigées en anglais qui ne maîtrisent pas par- faitement la langue et qui sont vite confrontés à des interprétations dou- teuses en consultant l’habituel dictionnaire bilingue. Il se veut pratique d’utilisation et pour ce fait est largement illustré. Ce glossaire ne peut être que partiel : il était impossible d’inclure dans les définitions tous les cas de figures. L’utilisation la plus courante a été privi- légiée. Chaque terme est associé à un thème d’utilisation et c’est dans ce contexte que la définition est donnée. Les thèmes retenus concernent : la morphologie, l’anatomie, les supports, le port ou habitus, la chorologie, la nomenclature, la taxonomie, la systématique, les stratégies de vie, les abré- viations, les écosystèmes (critères géologiques, pédologiques, hydrolo- giques, édaphiques, climatiques …) Pour des descriptions plus détaillées le lecteur pourra se reporter aux ou- vrages cités dans la « Bibliographie ». -
Physcomitrium Patens Infection by Colletotrichum Gloeosporioides: Understanding the Fungal–Bryophyte Interaction by Microscopy, Phenomics and RNA Sequencing
Journal of Fungi Article Physcomitrium patens Infection by Colletotrichum gloeosporioides: Understanding the Fungal–Bryophyte Interaction by Microscopy, Phenomics and RNA Sequencing Adriana Otero-Blanca 1 , Yordanis Pérez-Llano 1 , Guillermo Reboledo-Blanco 2, Verónica Lira-Ruan 1 , Daniel Padilla-Chacon 3, Jorge Luis Folch-Mallol 4 , María del Rayo Sánchez-Carbente 4 , Inés Ponce De León 2 and Ramón Alberto Batista-García 1,* 1 Centro de Investigación en Dinámica Celular, Instituto de Investigación en Ciencias Básicas y Aplicadas, Universidad Autónoma del Estado de Morelos, Cuernavaca 62209, Mexico; [email protected] (A.O.-B.); [email protected] (Y.P.-L.); [email protected] (V.L.-R.) 2 Departamento de Biología Molecular, Instituto de Investigaciones Biológicas Clemente Estable, Montevideo 11600, Uruguay; [email protected] (G.R.-B.); [email protected] (I.P.D.L.) 3 Consejo Nacional de Ciencia y Tecnología (CONACyT), Colegio de Postgraduados de México, Campus Montecillo, Texcoco 56230, Mexico; [email protected] 4 Centro de Investigación en Biotecnología, Universidad Autónoma del Estado de Morelos, Cuernavaca 62209, Mexico; [email protected] (J.L.F.-M.); [email protected] (M.d.R.S.-C.) Citation: Otero-Blanca, A.; * Correspondence: [email protected] or [email protected]; Tel.: +52-777-3297020 Pérez-Llano, Y.; Reboledo-Blanco, G.; Lira-Ruan, V.; Padilla-Chacon, D.; Abstract: Anthracnose caused by the hemibiotroph fungus Colletotrichum gloeosporioides is a dev- Folch-Mallol, J.L.; Sánchez-Carbente, astating plant disease with an extensive impact on plant productivity. The process of colonization M.d.R.; Ponce De León, I.; and disease progression of C. -
Species List For: Labarque Creek CA 750 Species Jefferson County Date Participants Location 4/19/2006 Nels Holmberg Plant Survey
Species List for: LaBarque Creek CA 750 Species Jefferson County Date Participants Location 4/19/2006 Nels Holmberg Plant Survey 5/15/2006 Nels Holmberg Plant Survey 5/16/2006 Nels Holmberg, George Yatskievych, and Rex Plant Survey Hill 5/22/2006 Nels Holmberg and WGNSS Botany Group Plant Survey 5/6/2006 Nels Holmberg Plant Survey Multiple Visits Nels Holmberg, John Atwood and Others LaBarque Creek Watershed - Bryophytes Bryophte List compiled by Nels Holmberg Multiple Visits Nels Holmberg and Many WGNSS and MONPS LaBarque Creek Watershed - Vascular Plants visits from 2005 to 2016 Vascular Plant List compiled by Nels Holmberg Species Name (Synonym) Common Name Family COFC COFW Acalypha monococca (A. gracilescens var. monococca) one-seeded mercury Euphorbiaceae 3 5 Acalypha rhomboidea rhombic copperleaf Euphorbiaceae 1 3 Acalypha virginica Virginia copperleaf Euphorbiaceae 2 3 Acer negundo var. undetermined box elder Sapindaceae 1 0 Acer rubrum var. undetermined red maple Sapindaceae 5 0 Acer saccharinum silver maple Sapindaceae 2 -3 Acer saccharum var. undetermined sugar maple Sapindaceae 5 3 Achillea millefolium yarrow Asteraceae/Anthemideae 1 3 Actaea pachypoda white baneberry Ranunculaceae 8 5 Adiantum pedatum var. pedatum northern maidenhair fern Pteridaceae Fern/Ally 6 1 Agalinis gattingeri (Gerardia) rough-stemmed gerardia Orobanchaceae 7 5 Agalinis tenuifolia (Gerardia, A. tenuifolia var. common gerardia Orobanchaceae 4 -3 macrophylla) Ageratina altissima var. altissima (Eupatorium rugosum) white snakeroot Asteraceae/Eupatorieae 2 3 Agrimonia parviflora swamp agrimony Rosaceae 5 -1 Agrimonia pubescens downy agrimony Rosaceae 4 5 Agrimonia rostellata woodland agrimony Rosaceae 4 3 Agrostis elliottiana awned bent grass Poaceae/Aveneae 3 5 * Agrostis gigantea redtop Poaceae/Aveneae 0 -3 Agrostis perennans upland bent Poaceae/Aveneae 3 1 Allium canadense var. -
Format Mitteilungen
9 Mitt. dtsch. malakozool. Ges. 86 9 – 12 Frankfurt a. M., Dezember 2011 Under Threat: The Stability of Authorships of Taxonomic Names in Malacology RUUD A. BANK Abstract: Nomenclature must be constructed in accordance with agreed rules. The International Commission on Zoological Nomenclature was founded in Leiden in September 1895. It not only produced a Code of nomencla- ture, that was refined over the years, but also provided arbitration and advice service, all with the aim of ensur- ing that every animal has one unique and universally accepted name. Name changes reduce the efficiency of biological nomenclature as a reference system. The Code was established to precisely specify the circumstances under which a name must be changed, and in what way. Name changes are only permitted if it is necessitated by a correction of nomenclatural error, by a change in classification, or by a correction of a past misidentification. Also authorships are regulated by the Code, mainly by Article 50. In a recent paper by WELTER-SCHULTES this Article is interpreted in a way that is different from previous interpretations by the zoological (malacological) community, leading to major changes in authorships. It is here argued that his alternative interpretations (1) are not in line with the spirit of the Code, and (2) will not serve the stability of nomenclature. It is important that interpretation and application of the existing rules be objective, consistent, and clear. Keywords: authorships, malacology, nomenclature, Code, ICZN, Article 50, Pisidium Zusammenfassung: In der Nomenklatur müssen übereinstimmende Regeln gelten. Die Internationale Kommis- sion für Zoologische Nomenklatur (ICZN) wurde im September 1895 in Leiden gegründet.