54 research outputs found

    From local efforts to a regional initiative: The Latin American and Caribbean Bat Conservation Network (RELCOM)

    Get PDF
    Durante mucho tiempo, esfuerzos individuales de conservación han tendido a formar grupos de trabajo para maximizar su alcance a una escala mayor y beneficiarse de las sinergias que provee el poder interactuar con iniciativas similares y que alcancen objetivos en común (Guerrero et al. 2013). El unir esfuerzos en redes de interacción ha sido una estrategia promovida fundamentalmente por el hecho de que las aproximaciones centralizadas de arriba hacia abajo (top-down) han fallado en llegar a los tomadores de decisión y por lo tanto en alcanzar resultados tangibles (Bodin & Prell 2014). Más aún, en Latinoamérica muchas iniciativas globales han tenido precisamente ese enfoque top-down, en que las políticas de conservación eran dictadas por entidades que no viven las realidades locales, promueven poco o nada la comunicación y colaboración sur-sur, con la consecuente pérdida de muchas oportunidades de conservación local y efectiva (Rodríguez et al. 2007). La construcción de redes para la conservación tiene, por lo tanto, varios objetivos (Kingston et al. in prep.), que incluyen la construcción de capital social (acceso a información, recursos, conocimiento), el fortalecimiento de relaciones entre actividades conjuntas para lograr mayor eficiencia y finalmente poder transformar los esfuerzos en acciones de conservación.Fil: Aguirre, Luis F.. Universidad Mayor de San Simón. Centro de Biodiversidad y Genética; BoliviaFil: Nassar, Jafet M.. Instituto Venezolano de Investigaciones Cientificas; VenezuelaFil: Barquez, Ruben Marcos. Universidad Nacional de Tucumán. Facultad de Ciencias Naturales e Instituto Miguel Lillo. Programa de Investigación de Biodiversidad Argentina; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Tucumán; ArgentinaFil: Medellin, Rodrigo. Universidad Nacional Autónoma de México; MéxicoFil: Navarro, Laura. Bioconciencia; MéxicoFil: Rodriguez Duran, Armando. Universidad Interamericana; Puerto RicoFil: Rodriguez Herrera, Bernal. Universidad de Costa Rica; Costa Ric

    DNA methylation predicts age and provides insight into exceptional longevity of bats

    Get PDF
    This work was supported by a Paul G. Allen Frontiers Group grant to S.H., the University of Maryland, College of Computer, Mathematical and Natural Sciences to G.S.W., an Irish Research Council Consolidator Laureate Award to E.C.T., a UKRI Future Leaders Fellowship (MR/T021985/1) to S.C.V. and a Discovery Grant from the Natural Sciences and Engineering Research Council (NSERC) of Canada to P.A.F. S.C.V. and P.D. were supported by a Max Planck Research Group awarded to S.C.V. by the Max Planck Gesellschaft, and S.C.V. and E.Z.L. were supported by a Human Frontiers Science Program Grant (RGP0058/2016) awarded to S.C.V. L.J.G. was supported by an NSERC PGS-D scholarship.Exceptionally long-lived species, including many bats, rarely show overt signs of aging, making it difficult to determine why species differ in lifespan. Here, we use DNA methylation (DNAm) profiles from 712 known-age bats, representing 26 species, to identify epigenetic changes associated with age and longevity. We demonstrate that DNAm accurately predicts chronological age. Across species, longevity is negatively associated with the rate of DNAm change at age-associated sites. Furthermore, analysis of several bat genomes reveals that hypermethylated age- and longevity-associated sites are disproportionately located in promoter regions of key transcription factors (TF) and enriched for histone and chromatin features associated with transcriptional regulation. Predicted TF binding site motifs and enrichment analyses indicate that age-related methylation change is influenced by developmental processes, while longevity-related DNAm change is associated with innate immunity or tumorigenesis genes, suggesting that bat longevity results from augmented immune response and cancer suppression.Publisher PDFPeer reviewe

    Scientists warning on the ecological effects of radioactive leaks on ecosystems

    Get PDF
    A nuclear leakage or tactical nuclear weapon use in a limited war could cause immense and long-lasting ecological consequences beyond the direct site of exposure. We call upon all scientists to communicate the importance of the environmental impacts of such an event to all life forms on Earth, including humankind. Changes to ecosystem structure and functioning and species extinctions would alter the biosphere for an unknown time frame. Radiation could trigger cascade effects in marine, atmospheric and terrestrial ecosystems of a magnitude far beyond human capabilities for mitigation or adaptation. Even a “tactical nuclear war” could alter planet Earth’s living boundaries, ending the current Anthropocene era

    A conservation roadmap for the subterranean biome

    Get PDF
    The 15th UN Convention on Biological Diversity (CBD) (COP15) will be held in Kunming, China in October 2021. Historically, CBDs and other multilateral treaties have either alluded to or entirely overlooked the subterranean biome. A multilateral effort to robustly examine, monitor, and incorporate the subterranean biome into future conservation targets will enable the CBD to further improve the ecological effectiveness of protected areas by including groundwater resources, subterranean ecosystem services, and the profoundly endemic subsurface biodiversity. To this end, we proffer a conservation roadmap that embodies five conceptual areas: (1) science gaps and data management needs; (2) anthropogenic stressors; (3) socioeconomic analysis and conflict resolution; (4) environmental education; and (5) national policies and multilateral agreements.Peer reviewe

    Robust evidence for bats as reservoir hosts is lacking in most African virus studies : a review and call to optimize sampling and conserve bats

    Get PDF
    DATA ACCESSIBILITY : Data used in this study are available from the Dryad Digital Repository: https://doi.org/10.5061/dryad.c866t1gcx [222]. Supplementary material is available online [223].Africa experiences frequent emerging disease outbreaks among humans, with bats often proposed as zoonotic pathogen hosts. We comprehensively reviewed virus–bat findings from papers published between 1978 and 2020 to evaluate the evidence that African bats are reservoir and/or bridging hosts for viruses that cause human disease. We present data from 162 papers (of 1322) with original findings on (1) numbers and species of bats sampled across bat families and the continent, (2) how bats were selected for study inclusion, (3) if bats were terminally sampled, (4) what types of ecological data, if any, were recorded and (5) which viruses were detected and with what methodology. We propose a scheme for evaluating presumed virus–host relationships by evidence type and quality, using the contrasting available evidence for Orthoebolavirus versus Orthomarburgvirus as an example. We review the wording in abstracts and discussions of all 162 papers, identifying key framing terms, how these refer to findings, and how they might contribute to people’s beliefs about bats. We discuss the impact of scientific research communication on public perception and emphasize the need for strategies that minimize human–bat conflict and support bat conservation. Finally, we make recommendations for best practices that will improve virological study metadata.Open access funding provided by the Max Planck Society. Bucknell University and, in part, by the National Institute of Allergy and Infectious Diseases of the National Institutes of Health (NIH); the German Academic Exchange Service; the German Research Foundation the Institut Universitaire de France; the South African Research Chair Initiative of the Department of Science and Innovation and administered by the National Research Foundation (NRF) of South Africa; in part, by NSF and National Geographic and Rolex grants.https://royalsocietypublishing.org/journal/rsblam2024Medical VirologyNon

    The status of the world's land and marine mammals: diversity, threat, and knowledge

    Get PDF
    Knowledge of mammalian diversity is still surprisingly disparate, both regionally and taxonomically. Here, we present a comprehensive assessment of the conservation status and distribution of the world's mammals. Data, compiled by 1700+ experts, cover all 5487 species, including marine mammals. Global macroecological patterns are very different for land and marine species but suggest common mechanisms driving diversity and endemism across systems. Compared with land species, threat levels are higher among marine mammals, driven by different processes (accidental mortality and pollution, rather than habitat loss), and are spatially distinct (peaking in northern oceans, rather than in Southeast Asia). Marine mammals are also disproportionately poorly known. These data are made freely available to support further scientific developments and conservation action

    La comunidad de murcielagos de Chajul Chiapas

    No full text
    corecore