يعرض 1 - 20 نتائج من 125 نتيجة بحث عن '"Würmian"', وقت الاستعلام: 0.70s تنقيح النتائج
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    Academic Journal

    المصدر: Mediterranean Botany; Vol. 45 No. 2 (2024); e92514 ; Mediterranean Botany; Vol. 45 Núm. 2 (2024); e92514 ; 2603-9109

    وصف الملف: application/pdf

    Relation: https://revistas.ucm.es/index.php/MBOT/article/view/92514/4564456569607; Agea, D., García-de Lucas, S. & Lorite, J. 2021. Regeneration of submediterranean species Euonymus latifolius (L.) Mill. at its southernmost limit in Europe. Mediterranean Botany 42, e68137. doi:10.5209/mbot.68137. Allúe, J. L. 1990. Atlas fitoclimático de España. Ministerio de Agricultura, IFIE, Madrid. Bañares, A., Blanca, G., Güemes, J., Moreno, J.C. & Ortiz, S., eds. 2008. Lista roja 2008 de la flora vascular española. Dir. Gen. de Medio Natural y Política Forestal (Ministerio de Medio Ambiente, y Medio Rural y Marino) - SEBICOP, Madrid. Baskin, C.C., Baskin, J.M. 1998. Seeds: Ecology, biogeography, and evolution of dormancy and germination. San Diego (CA): Academic Press. 666 pp. Cescatti, A. & Zorer, R. 2003. Structural acclimation and radiation regime of silver fir (Abies alba Mill.) shoots along a light gradient. Plant, Cell & Environment 26: 429-442. doi:10.1046/j.1365-3040.2003.00974.x. Courbier, S. and Pierik, R. 2019. Canopy light quality modulates stress responses in plants. iScience 22, Pages 441-452, ISSN 2589-0042. doi:10.1016/j.isci.2019.11.035. Chao, K.J., Lin, Y.C., Song, G.Z.M. 2022. Understory light environment impacts on seedling establishment and growth in a typhoon-disturbed tropical forest. Plant Ecology 223, 1007–1021 (2022). doi:10.1007/s11258-022-01255-4. Cherbiy-Hoffmann S. U., Hall A. J. & Rousseaux, C.M. 2013. Fruit, yield, and vegetative growth responses to photosynthetically active radiation during oil synthesis in olive trees. Scientia Horticulturae 150, 110-116. doi:10.1016/j.scienta.2012.10.027. Damascos, M.A., & Rapoport, E.H. 2002. Differences in the herb and shrub flora growing under canopy gaps and under closed canopies in a Nothofagus pumilio forest of Argentina. Revista Chilena de Historia Natural 75:465–472. Dormann, C.F., Bagnara, M., Boch, S., Hinderling, J., Janeiro-Otero, A., Schäfer, D., Schall, P. & Hartig, F. 2020. Plant species richness increases with light availability, but not variability, in temperate forests understorey. BMC Ecology 20, 43. doi:10.1186/s12898-020-00311-9. Estevo, C.A., Stralberg, D., Nielsen, S.E. & Bayne, E. 2022. Topographic and vegetation drivers of thermal heterogeneity along the boreal-grassland transition zone in Western Canada: Implications for climate change refugia. Ecology and Evolution 22;12(6):e9008. DOI:10.1002/ece3.9008. PMID: 35784028; PMCID: PMC9217894. Farquhar, G.D. 1989. Models of integrated photosynthesis of cells and leaves. Philosophical Transactions of the Royal Society of London, series B, 323:357–367. GBIF (2023). Euonymus latifolius (L.) Mill. in GBIF Secretariat. GBIF Backbone Taxonomy. Checklist dataset DOI:10.15468/39omei accessed via GBIF.org on 2023-10-11. Givnish, T. J. 1988. Adaptation to sun and shade: a whole-plant perspective. Functional Plant Biology 15:63–92. Gutiérrez, L., Blanca, G., Fabregat, C., López Udias, S., Luque, P. & Benavente, A. 2004. Euonymus latifolius (L.) Miller. En Á. Bañares et al., eds., Atlas y libro rojo de la flora vascular amenazada de España, 2ª edición, 248-249. Dirección General de Conservación de la Naturaleza. Madrid. Herranz, J.M., Copete, M.A. & Ferrandis, P. 2009. Posibles efectos del cambio climático sobre las especies vegetales en Castilla-La Mancha. En A. Rodríguez, H. Fernández & Ignacio Rojano coords. Impactos del Cambio Climático en Castilla-La Mancha. Primer Informe Fundación Gral. de Medio Ambiente, Oficina de Cambio Climático, Consejería de Industria, Energía y Medio Ambiente de la JCCM, Toledo, Cap 9, pp. 292-317. ISBN: 978-84-7788-557-3. Herrero, A., Zavala, M.A. (editores) 2015. Los Bosques y la Biodiversidad frente al Cambio Climático: Impactos, Vulnerabilidad y Adaptación en España. Ministerio de Agricultura, Alimentación y Medio Ambiente, Madrid. Hikosaka, K. Terashima, I. 1995. A model of the acclimation of photosynthesis in the leaves of C3 plants to sun and shade with respect to nitrogen use. Plant Cell Environment 18:605–618. Kitajima K. 1994. Relative importance of photosynthetic traits and allocation patterns as correlates of seedling shade tolerance of 13 tropical trees. Oecologia 98:419–28. Košvancová-Zitová, M., Urban, O., Navrátil, M., Špunda, V., Robson, T.M. & Marek, M.V. 2009. Blue radiation stimulates photosynthetic induction in Fagus sylvatica L. Photosynthetica. 47. doi: 388-398. 10.1007/s11099-009-0060-1. Kume, A. 2017. Importance of the green color, absorption gradient, and spectral absorption of chloroplasts for the radiative energy balance of leaves. Journal Plant Research 130, 501–514. doi:10.1007/s10265-017-0910-z. López, G. 2001. Guía de los árboles y arbustos de la Península Ibérica y Baleares (especies silvestres y las cultivadas más comunes). Ediciones Mundi-Prensa. España. Martín, J., Cirujano, S., Moreno, M., Peris, J.B. & Stübing, G. 2003. La vegetación protegida en Castilla-La Mancha. Junta de Comunidades de Castilla-La Mancha. Matteucci, S. & Colma, A. 1982. Metodología para el estudio de la vegetación. The General Secretariat of the Organization of American States Editor: Eva V. Chesneau. ISBN: 0 8270 1611 5. Médail, F. & Diadema, K. (2009). Glacial refugia influence plant diversity patterns in the Mediterranean Basin. Journal of Biogeography 36. 1333 - 1345. doi:10.1111/j.1365-2699.2008.02051.x. Moreno, J.C. 2011. Lista Roja de la Flora Vascular Española 2010. Actualización con los datos del Adenda 2010 al Atlas y Libro Rojo de la Flora Vascular Amenazada. Dirección General de Conservación de la Naturaleza y Sociedad Española de Biología de la Conservación de Plantas. Madrid. Peña, A., Feliu, J.F., Lozano, J.L. & García-Cardo, O. 2018. Contribución al conocimiento de la distribución y demografía de Euonymus latifolius (L.) Mill. (Celastraceae) en el Sistema Ibérico. Flora Montiberica 72: 8-16. doi:10.13140/RG.2.2.34879.46249 Piervitali, E. and Colacino, M. 2003. Precipitation Scenarios in the Central-Western Mediterranean Basin, in Bolle, H. J. (ed.). Mediterranean Climate Variability and Trends. Springer, Berlin, pp. 245–258. Pinto, F., Berti, M., Olivares, D., Sierralta, W.D., Hinrichsen, P. & Pinto, M. 2011. Leaf development, temperature and light stress control of the expression of early light-inducible proteins (ELIPs) in Vitis vinifera L. Environmental and Experimental Botany 72, 2, 278-283. doi:10.1016/j.envexpbot.2011.04.002. Roberts, M. R. & Paul, N. D. 2005. Seduced by the dark side: integrating molecular and ecological perspectives on the influence of light on plant defence against pests and pathogens. New Phytologist. 170. doi:10.1111/j.1469-8137.2006.01707.x. Rünk, K., Zobel, K. 2007. Phenotypic plasticity and biomass allocation pattern in three Dryopteris (Dryopteridaceae) species on an experimental light-availability gradient. Plant Ecology 193, 85–99. doi:10.1007/s11258-006-9250-0. Saldaña, A., Gianoli, E. & Lusk, C.H. 2005. Ecophysiological responses to light availability in three Blechnum species (Pteridophyta, Blechnaceae) of different ecological breadth. Oecologia 145:252–257. doi:10.1007/s00442-005-0116-2. Sánchez-Salguero, R., Camarero, J., Gutiérrez, E. & González Rouco, J. F., Gazol, A., Sangüesa-Barreda, G., Andreu-Hayles, L., Linares, J. & Seftigen, K. 2016. Assessing forest vulnerability to climate warming using a process-based model of tree growth: bad prospects for rear-edges. Global Change Biology 23. doi:10.1111/gcb.13541. Santiago, A., Herranz, J. & Ferrandis, P. 2023. Seed dormancy break and germination by a rare relict of the Würmian glaciation in the Iberian Peninsula: Euonymus latifolius (Celastraceae). Seed Science Research, 1-6. doi:10.1017/S0960258523000132. Santiago, A., Ahrazem, O., Gómez-Gómez, L, Copete, M.A., Herranz, R & Ferrandis, P. 2019. Seed germination requirements of relictic and broadly-distributed populations of Chaerophyllum aureum (Apiaceae): connecting ecophysiology and genetic identity. Turkish Journal of Botany, 43 (3), 320-330. doi:10.3906/bot-1807-42. Sanz, M.J. & Galán, E. (editors). 2020. Impactos y riesgos derivados del cambio climático en España. Oficina Española de Cambio Climático. Ministerio para la Transición Ecológica y el Reto Demográfico, Madrid. Schoener, T.W. 2009. Ecological niche. In S.A. Levin, S.R. Carpenter, H.C.J. Godfray, A.P. Kinzig, M. Loreau, J.B. Losos, B. Walker & D.S. Wilcove (eds.). The Princeton Guide to Ecology. Princeton University Press, pp. 3-13. Terashima, I., Ooeda, H., Fujita, T., Oguchi, R. 2016. Light environment within a leaf. II. Progress in the past one-third century. Journal of Plant Research 129:353–363. doi:10.1007/s10265-016-0808-1. Trubat, R., Cortina, J. & Vilagrosa, A. 2004. Nutrient status and transplant shock on mediterranean shrubs under semiarid climate. Cuadernos de la Sociedad Española de Ciencias Forestales 17, ISSN 1575-2410, ISSN-e 2386-8368. Valladares, F., Arrieta, S., Aranda, I., Lorenzo, D., Sánchez-Gómez, D., Tena, D., Suárez, F. & Pardos, J.A. 2005. Shade tolerance, photoinhibition sensitivity and phenotypic plasticity of Ilex aquifolium in continental Mediterranean sites. Tree Physiology, Volume 25, Issue 8, August, Pages 1041–1052. doi:10.1093/treephys/25.8.1041. Valladares, F. & Niinemets, Ü. 2008. Shade Tolerance, a Key Plant Feature of Complex Nature and Consequences. Annual Review of Ecology, Evolution, and Systematics 39(1), 37–257. doi:10.1146/annurev.ecolsys.39.110707.173506. Weart, S.R. 2008. The Discovery of Global Warming. Harvard University Press. Wright, S.J., H.C. Muller-Landau, Condit, R. & S.P. Hubbell. 2003. Gap-dependent recruitment, realized vital rates and size distributions of tropical trees. Ecology 84:3174–3185. Yamori, W. 2016. Photosynthetic response to fluctuating environments and photoprotective strategies under abiotic stress. Journal of Plant Research 129:379–395. doi:10.1007/s10265-016-0816-1. Zang, L. X., Xu, R., Yu, Y. S. & Zhao, H. 2021. Effects of Above- and Below-Ground Interactions of Plants on Growth of Tree Seedlings in Low-Elevation Tropical Rainforests on Hainan Island, China. Forests 12(7):905. doi:10.3390/f12070905.; https://revistas.ucm.es/index.php/MBOT/article/view/92514

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    Book

    المصدر: Ehlers , J , Astakhov , V , Gibbard , P L , Hughes , P , Mangerud , J & Svendsen , J I 2024 , Late Pleistocene Glaciations in Eurasia . in Encyclopedia of Quaternary Science : Reference Module in Earth Systems and Environmental Sciences . Elsevier BV . https://doi.org/10.1016/B978-0-323-99931-1.00136-7

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    المصدر: Mayr , C , Stojakowits , P , Lempe , B , Blaauw , M , Diersche , V , Grohganz , M , Correa , M L , Ohlendorf , C , Reimer , P & Zolitschka , B 2019 , ' High-resolution geochemical record of environmental changes during MIS 3 from the northern Alps (Nesseltalgraben, Germany) ' , Quaternary Science Reviews , vol. 218 , pp. 122-136 . https://doi.org/10.1016/j.quascirev.2019.06.013

    وصف الملف: application/pdf

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    المساهمون: Institut national de recherches archéologiques préventives (Inrap), Environnement, Ville, Société (EVS), École normale supérieure de Lyon (ENS de Lyon), Université de Lyon-Université de Lyon-École des Mines de Saint-Étienne (Mines Saint-Étienne MSE), Institut Mines-Télécom Paris (IMT)-Institut Mines-Télécom Paris (IMT)-Université Lumière - Lyon 2 (UL2)-Université Jean Moulin - Lyon 3 (UJML), Université de Lyon-Institut National des Sciences Appliquées de Lyon (INSA Lyon), Université de Lyon-Institut National des Sciences Appliquées (INSA)-Institut National des Sciences Appliquées (INSA)-Université Jean Monnet - Saint-Étienne (UJM)-École Nationale des Travaux Publics de l'État (ENTPE)-École nationale supérieure d'architecture de Lyon (ENSAL)-Centre National de la Recherche Scientifique (CNRS)-Approches Littéraires, Linguistiques et Historiques des Sources (ALLHiS), Université Jean Monnet - Saint-Étienne (UJM)-Université Jean Monnet - Saint-Étienne (UJM), Laboratoire de géographie physique : Environnements Quaternaires et Actuels (LGP), Université Paris 1 Panthéon-Sorbonne (UP1)-Université Paris-Est Créteil Val-de-Marne - Paris 12 (UPEC UP12)-Centre National de la Recherche Scientifique (CNRS), Évolution, Écologie et Paléontologie (Evo-Eco-Paleo) - UMR 8198 (Evo-Eco-Paléo (EEP)), Université de Lille-Centre National de la Recherche Scientifique (CNRS), Laboratoire méditerranéen de préhistoire Europe-Afrique (LAMPEA), Aix Marseille Université (AMU)-Centre National de la Recherche Scientifique (CNRS)-Ministère de la Culture (MC), Institut de Physique du Globe de Paris (IPGP (UMR_7154)), Institut national des sciences de l'Univers (INSU - CNRS)-Université de La Réunion (UR)-Institut de Physique du Globe de Paris (IPG Paris)-Centre National de la Recherche Scientifique (CNRS)-Université Paris Cité (UPCité)

    المصدر: ISSN: 1142-2904.

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    Academic Journal

    المساهمون: Institut national de recherches archéologiques préventives Inrap, Environnement, Ville, Société EVS, Laboratoire de géographie physique : Environnements Quaternaires et Actuels LGP, Évolution, Écologie et Paléontologie (Evo-Eco-Paleo) - UMR 8198 Evo-Eco-Paléo (EEP), Laboratoire méditerranéen de préhistoire Europe-Afrique LAMPEA, Institut de Physique du Globe de Paris IPGP (UMR_7154)

    وصف الملف: application/octet-stream

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    وصف الملف: text/tab-separated-values, 5863 data points

    Relation: https://doi.org/10.1594/PANGAEA.914109; Mayr, Christoph; Stojakowits, Philipp; Lempe, Bernhard; Blaauw, Maarten; Diersche, Volker; Grohganz, Madleen; López Correa, Matthias; Ohlendorf, Christian; Reimer, Paula J; Zolitschka, Bernd (2019): High-resolution geochemical record of environmental changes during MIS 3 from the northern Alps (Nesseltalgraben, Germany). Quaternary Science Reviews, 218, 122-136, https://doi.org/10.1016/j.quascirev.2019.06.013; https://doi.pangaea.de/10.1594/PANGAEA.914104; https://doi.org/10.1594/PANGAEA.914104

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    وصف الملف: text/tab-separated-values, 3662 data points

    Relation: https://doi.org/10.1594/PANGAEA.914109; Mayr, Christoph; Stojakowits, Philipp; Lempe, Bernhard; Blaauw, Maarten; Diersche, Volker; Grohganz, Madleen; López Correa, Matthias; Ohlendorf, Christian; Reimer, Paula J; Zolitschka, Bernd (2019): High-resolution geochemical record of environmental changes during MIS 3 from the northern Alps (Nesseltalgraben, Germany). Quaternary Science Reviews, 218, 122-136, https://doi.org/10.1016/j.quascirev.2019.06.013; https://doi.pangaea.de/10.1594/PANGAEA.914105; https://doi.org/10.1594/PANGAEA.914105

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    وصف الملف: text/tab-separated-values, 209748 data points

    Relation: https://doi.org/10.1594/PANGAEA.914109; Mayr, Christoph; Stojakowits, Philipp; Lempe, Bernhard; Blaauw, Maarten; Diersche, Volker; Grohganz, Madleen; López Correa, Matthias; Ohlendorf, Christian; Reimer, Paula J; Zolitschka, Bernd (2019): High-resolution geochemical record of environmental changes during MIS 3 from the northern Alps (Nesseltalgraben, Germany). Quaternary Science Reviews, 218, 122-136, https://doi.org/10.1016/j.quascirev.2019.06.013; https://doi.pangaea.de/10.1594/PANGAEA.914106; https://doi.org/10.1594/PANGAEA.914106

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    وصف الملف: text/tab-separated-values, 214 data points

    Relation: https://doi.org/10.1594/PANGAEA.914109; Mayr, Christoph; Stojakowits, Philipp; Lempe, Bernhard; Blaauw, Maarten; Diersche, Volker; Grohganz, Madleen; López Correa, Matthias; Ohlendorf, Christian; Reimer, Paula J; Zolitschka, Bernd (2019): High-resolution geochemical record of environmental changes during MIS 3 from the northern Alps (Nesseltalgraben, Germany). Quaternary Science Reviews, 218, 122-136, https://doi.org/10.1016/j.quascirev.2019.06.013; https://doi.pangaea.de/10.1594/PANGAEA.914107; https://doi.org/10.1594/PANGAEA.914107

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    جغرافية الموضوع: LATITUDE: 47.656700 * LONGITUDE: 13.046700

    وصف الملف: application/zip, 4 datasets

    Relation: Mayr, Christoph; Stojakowits, Philipp; Lempe, Bernhard; Blaauw, Maarten; Diersche, Volker; Grohganz, Madleen; López Correa, Matthias; Ohlendorf, Christian; Reimer, Paula J; Zolitschka, Bernd (2019): High-resolution geochemical record of environmental changes during MIS 3 from the northern Alps (Nesseltalgraben, Germany). Quaternary Science Reviews, 218, 122-136, https://doi.org/10.1016/j.quascirev.2019.06.013; https://doi.pangaea.de/10.1594/PANGAEA.914109; https://doi.org/10.1594/PANGAEA.914109

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