Volume 19, Issue 1
Review

A plant's perspective of extremes: terrestrial plant responses to changing climatic variability

Christopher P.O. Reyer

Corresponding Author

Potsdam Institute for Climate Impact Research, Telegrafenberg, PO Box 601203, Potsdam, 14412 Germany

Correspondence: C. Reyer, tel. + 49 331 28820725, fax + 49 331 288 2695, e‐mail: reyer@pik-potsdam.deSearch for more papers by this author
Sebastian Leuzinger

School of Applied Sciences, Auckland University of Technology, Auckland, 1142 New Zealand

Institute of Terrestrial Ecosystems ITES, ETH Zürich, Universitätstrasse 16, Zürich, CH‐8092 Switzerland

Institute of Botany, University of Basel, Schönbeinstrasse 6, Basel, CH‐4056 Switzerland

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Anja Rammig

Potsdam Institute for Climate Impact Research, Telegrafenberg, PO Box 601203, Potsdam, 14412 Germany

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Annett Wolf

Institute of Terrestrial Ecosystems ITES, ETH Zürich, Universitätstrasse 16, Zürich, CH‐8092 Switzerland

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Ruud P. Bartholomeus

KWR Watercycle Research Institute, PO Box 1072, 3430 BB, Nieuwegein, The Netherlands

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Antonello Bonfante

Institute for Mediterranean Agricultural and Forest Systems (CNR‐ISAFoM), National Research Council of Italy, via Patacca 85, Ercolano (NA), 80056 Italy

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Francesca de Lorenzi

Institute for Mediterranean Agricultural and Forest Systems (CNR‐ISAFoM), National Research Council of Italy, via Patacca 85, Ercolano (NA), 80056 Italy

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Marie Dury

Unité de Modélisation du Climat et des Cycles Biogéochimiques, Université de Liège, Bât. B5c, Allée du Six Août 17, Liège, B‐4000 Belgium

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Philipp Gloning

Chair of Ecoclimatology, Technische Universität München, Hans‐Carl‐von‐Carlowitz‐Platz 2, Freising, 85354 Germany

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Renée Abou Jaoudé

Department for Innovation in Biological, Agro‐food and Forest systems (DIBAF), University of Tuscia, via S. Camillo de Lellis snc, Viterbo, 01100 Italy

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Tamir Klein

Department of Environmental Sciences and Energy Research, Weizmann Institute of Science, Rehovot, Israel

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Thomas M. Kuster

Institute of Terrestrial Ecosystems ITES, ETH Zürich, Universitätstrasse 16, Zürich, CH‐8092 Switzerland

Swiss Federal Research Institute WSL, Zürcherstr. 111, Birmensdorf, CH‐8903, 76100 Switzerland

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Monica Martins

Institute of Geography and Spatial Planning (IGOT), University of Lisbon, Edifício da Faculdade de Letras, Alameda da Universidade, Lisboa, 1600‐214 Portugal

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Georg Niedrist

Institute for Alpine Environment, European Academy of Bolzano/Bozen, Drususallee 1, Bolzano/Bozen, 39100 Italy

Institute of Ecology, University of Innsbruck, Sternwartestr. 15, Innsbruck, 6020 Austria

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Maria Riccardi

Institute for Mediterranean Agricultural and Forest Systems (CNR‐ISAFoM), National Research Council of Italy, via Patacca 85, Ercolano (NA), 80056 Italy

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Georg Wohlfahrt

Institute of Ecology, University of Innsbruck, Sternwartestr. 15, Innsbruck, 6020 Austria

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Paolo de Angelis

Department for Innovation in Biological, Agro‐food and Forest systems (DIBAF), University of Tuscia, via S. Camillo de Lellis snc, Viterbo, 01100 Italy

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Giovanbattista de Dato

Department for Innovation in Biological, Agro‐food and Forest systems (DIBAF), University of Tuscia, via S. Camillo de Lellis snc, Viterbo, 01100 Italy

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Louis François

Unité de Modélisation du Climat et des Cycles Biogéochimiques, Université de Liège, Bât. B5c, Allée du Six Août 17, Liège, B‐4000 Belgium

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Annette Menzel

Chair of Ecoclimatology, Technische Universität München, Hans‐Carl‐von‐Carlowitz‐Platz 2, Freising, 85354 Germany

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Marízia Pereira

Department of Landscape, Environment and Planning, University of Évora, Colégio Luis António Verney Rua Romão Ramalho, Évora, 7000‐671 Portugal

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First published: 07 September 2012
Citations: 241

Abstract

We review observational, experimental, and model results on how plants respond to extreme climatic conditions induced by changing climatic variability. Distinguishing between impacts of changing mean climatic conditions and changing climatic variability on terrestrial ecosystems is generally underrated in current studies. The goals of our review are thus (1) to identify plant processes that are vulnerable to changes in the variability of climatic variables rather than to changes in their mean, and (2) to depict/evaluate available study designs to quantify responses of plants to changing climatic variability. We find that phenology is largely affected by changing mean climate but also that impacts of climatic variability are much less studied, although potentially damaging. We note that plant water relations seem to be very vulnerable to extremes driven by changes in temperature and precipitation and that heatwaves and flooding have stronger impacts on physiological processes than changing mean climate. Moreover, interacting phenological and physiological processes are likely to further complicate plant responses to changing climatic variability. Phenological and physiological processes and their interactions culminate in even more sophisticated responses to changing mean climate and climatic variability at the species and community level. Generally, observational studies are well suited to study plant responses to changing mean climate, but less suitable to gain a mechanistic understanding of plant responses to climatic variability. Experiments seem best suited to simulate extreme events. In models, temporal resolution and model structure are crucial to capture plant responses to changing climatic variability. We highlight that a combination of experimental, observational, and/or modeling studies have the potential to overcome important caveats of the respective individual approaches.

Number of times cited according to CrossRef: 241

  • Adaptation of Irrigated and Rainfed Agriculture to Climate Change: The Vulnerability of Production Systems and the Potential of Intraspecific Biodiversity (Case Studies in Italy), Handbook of Climate Change Adaptation, 10.1007/978-3-642-40455-9, (1-35), (2021).
  • A series of unfortunate events: characterizing the contingent nature of physiological extremes using long-term environmental records, Proceedings of the Royal Society B: Biological Sciences, 10.1098/rspb.2019.2333, 287, 1918, (20192333), (2020).
  • Advancing the Understanding of Adaptive Capacity of Social‐Ecological Systems to Absorb Climate Extremes, Earth's Future, 10.1029/2019EF001221, 8, 2, (2020).
  • Decoupling of impact factors reveals the response of German winter wheat yields to climatic changes, Global Change Biology, 10.1111/gcb.15073, 26, 6, (3601-3626), (2020).
  • Climate Extreme Versus Carbon Extreme: Responses of Terrestrial Carbon Fluxes to Temperature and Precipitation, Journal of Geophysical Research: Biogeosciences, 10.1029/2019JG005252, 125, 4, (2020).
  • Local extinction risk under climate change in a neotropical asymmetrically dispersed epiphyte, Journal of Ecology, 10.1111/1365-2745.13361, 108, 4, (1553-1564), (2020).
  • Adverse weather conditions for UK wheat production under climate change, Agricultural and Forest Meteorology, 10.1016/j.agrformet.2019.107862, 282-283, (107862), (2020).
  • Linking variability of tree water use and growth with species resilience to environmental changes, Ecography, 10.1111/ecog.04968, 43, 9, (1386-1399), (2020).
  • Climate models predict a divergent future for the medicinal tree Boswellia serrata Roxb. in India, Global Ecology and Conservation, 10.1016/j.gecco.2020.e01040, (e01040), (2020).
  • Impact of extreme weather conditions on European crop production in 2018, Philosophical Transactions of the Royal Society B: Biological Sciences, 10.1098/rstb.2019.0510, 375, 1810, (20190510), (2020).
  • Replanting agricultural landscapes: how well do plants survive after habitat restoration?, Restoration Ecology, 10.1111/rec.13242, 0, 0, (2020).
  • Beneficial microbes ameliorate abiotic and biotic sources of stress on plants, Functional Ecology, 10.1111/1365-2435.13499, 0, 0, (2020).
  • Contrasting Leaf Trait Responses of Conifer and Broadleaved Seedlings to Altered Resource Availability Are Linked to Resource Strategies, Plants, 10.3390/plants9050621, 9, 5, (621), (2020).
  • Woody plant subregions of the Amazon forest, Journal of Ecology, 10.1111/1365-2745.13406, 0, 0, (2020).
  • Tracing Extremes across Iconic Desert Landscapes: Socio-Ecological and Cultural Responses to Climate Change, Water Scarcity, and Wildflower Superblooms, Human Ecology, 10.1007/s10745-020-00145-5, (2020).
  • Extreme precipitation enhances phenolic concentrations of spinach ( Spinacia oleracea ) , Journal of Crop Improvement, 10.1080/15427528.2020.1750521, (1-19), (2020).
  • The impact of drought spells on forests depends on site conditions: The case of 2017 summer heat wave in southern Europe, Global Change Biology, 10.1111/gcb.14825, 26, 2, (851-863), (2019).
  • Towards comparable assessment of the soil nutrient status across scales—Review and development of nutrient metrics, Global Change Biology, 10.1111/gcb.14802, 26, 2, (392-409), (2019).
  • Natural history collections document biological responses to climate change, Global Change Biology, 10.1111/gcb.14922, 26, 2, (340-342), (2019).
  • Response of foundation macrophytes to near‐natural simulated marine heatwaves, Global Change Biology, 10.1111/gcb.14801, 26, 2, (417-430), (2019).
  • Projecting terrestrial biodiversity intactness with GLOBIO 4, Global Change Biology, 10.1111/gcb.14848, 26, 2, (760-771), (2019).
  • Extensive land cover change across Arctic–Boreal Northwestern North America from disturbance and climate forcing, Global Change Biology, 10.1111/gcb.14804, 26, 2, (807-822), (2019).
  • Terrestrial N2O emissions and related functional genes under climate change: A global meta‐analysis, Global Change Biology, 10.1111/gcb.14847, 26, 2, (931-943), (2019).
  • Multiple trade‐offs regulate the effects of woody plant removal on biodiversity and ecosystem functions in global rangelands, Global Change Biology, 10.1111/gcb.14839, 26, 2, (709-720), (2019).
  • Introduced plants as novel Anthropocene habitats for insects, Global Change Biology, 10.1111/gcb.14915, 26, 2, (971-988), (2019).
  • Altered ignition catchments threaten a hyperdiverse fire‐dependent ecosystem, Global Change Biology, 10.1111/gcb.14861, 26, 2, (616-628), (2019).
  • The response of stomatal conductance to seasonal drought in tropical forests, Global Change Biology, 10.1111/gcb.14820, 26, 2, (823-839), (2019).
  • Effects of macroclimate and resource on the diversity of tropical wood-inhabiting fungi, Forest Ecology and Management, 10.1016/j.foreco.2019.01.016, 436, (79-87), (2019).
  • Different ways to die in a changing world: Consequences of climate change for tree species performance and survival through an ecophysiological perspective, Ecology and Evolution, 10.1002/ece3.5663, 9, 20, (11979-11999), (2019).
  • Climate effects on the onset of flowering in the United Kingdom, Environmental Sciences Europe, 10.1186/s12302-019-0271-4, 31, 1, (2019).
  • Resilience to extreme flooding shown by both hydric and mesic wetland plant species, Ecohydrology, 10.1002/eco.2158, 12, 8, (2019).
  • Ecosystem hydrologic and metabolic flashiness are shaped by plant community traits and precipitation, Agricultural and Forest Meteorology, 10.1016/j.agrformet.2019.107674, 279, (107674), (2019).
  • Investigating the spatially heterogeneous relationships between climate factors and NDVI in China during 1982 to 2013, Journal of Geographical Sciences, 10.1007/s11442-019-1682-2, 29, 10, (1597-1609), (2019).
  • Controlling factors for land productivity under extreme climatic events in continental Europe and the Mediterranean Basin, CATENA, 10.1016/j.catena.2019.104124, 182, (104124), (2019).
  • Robust Response of Terrestrial Plants to Rising CO2, Trends in Plant Science, 10.1016/j.tplants.2019.04.003, (2019).
  • Independent and combined effects of daytime heat stress and night-time recovery determine thermal performance, Biology Open, 10.1242/bio.038141, 8, 3, (bio038141), (2019).
  • Forecasting dryland vegetation condition months in advance through satellite data assimilation, Nature Communications, 10.1038/s41467-019-08403-x, 10, 1, (2019).
  • The adaptive potential of plant populations in response to extreme climate events, Ecology Letters, 10.1111/ele.13244, 22, 5, (866-874), (2019).
  • The Effects of Interaction between Climate Change and Land‐Use/Cover Change on Biodiversity‐Related Ecosystem Services, Global Challenges, 10.1002/gch2.201800095, 3, 9, (2019).
  • Pure, shared, and coupling effects of climate change and sea level rise on the future distribution of Spartina alterniflora along the Chinese coast, Ecology and Evolution, 10.1002/ece3.5129, 9, 9, (5380-5391), (2019).
  • Soil carbonate drives local adaptation in , Plant, Cell & Environment, 10.1111/pce.13567, 42, 8, (2384-2398), (2019).
  • Can leaf net photosynthesis acclimate to rising and more variable temperatures?, Plant, Cell & Environment, 10.1111/pce.13525, 42, 6, (1913-1928), (2019).
  • Bryophyte and macrolichen diversity show contrasting elevation relationships and are negatively affected by disturbances in laurel forests of Madeira island, Journal of Vegetation Science, 10.1111/jvs.12802, 30, 6, (1122-1133), (2019).
  • Rethinking false spring risk, Global Change Biology, 10.1111/gcb.14642, 25, 7, (2209-2220), (2019).
  • Range size and growth temperature influence Eucalyptus species responses to an experimental heatwave, Global Change Biology, 10.1111/gcb.14590, 25, 5, (1665-1684), (2019).
  • Geographical adaptation prevails over species‐specific determinism in trees’ vulnerability to climate change at Mediterranean rear‐edge forests, Global Change Biology, 10.1111/gcb.14544, 25, 4, (1296-1314), (2019).
  • Indirect effects of water availability in driving and predicting productivity in the Gobi desert, Science of The Total Environment, 10.1016/j.scitotenv.2019.133952, 697, (133952), (2019).
  • Temperature variability drives within-species variation in germination strategy and establishment characteristics of an alpine herb, Oecologia, 10.1007/s00442-018-04328-2, (2019).
  • Early-Warning Signals of Individual Tree Mortality Based on Annual Radial Growth, Frontiers in Plant Science, 10.3389/fpls.2018.01964, 9, (2019).
  • The resilience of perennial grasses under two climate scenarios is correlated with carbohydrate metabolism in meristems, Journal of Experimental Botany, 10.1093/jxb/erz424, (2019).
  • Evaluation of some physiological and biochemical parameters of Camelina sativa seedlings under osmotic stress, Faktori eksperimental'noi evolucii organizmiv, 10.7124/FEEO.v25.1179, 25, (287-292), (2019).
  • The 2012 Flash Drought Threatened US Midwest Agroecosystems, Chinese Geographical Science, 10.1007/s11769-019-1066-7, (2019).
  • Asynchronous leaf and cambial phenology in a tree species of the Congo Basin requires space–time conversion of wood traits, Annals of Botany, 10.1093/aob/mcz069, (2019).
  • Rewilding in the Garden: are garden hybrid plants (cultivars) less resilient to the effects of hydrological extremes than their parent species? A case study with Primula, Urban Ecosystems, 10.1007/s11252-019-00865-7, (2019).
  • Compensatory Growth of Scots Pine Seedlings Mitigates Impacts of Multiple Droughts Within and Across Years, Frontiers in Plant Science, 10.3389/fpls.2019.00519, 10, (2019).
  • Climatic determinants impacting the distribution of greenness in China: regional differentiation and spatial variability, International Journal of Biometeorology, 10.1007/s00484-019-01683-4, (2019).
  • Climatic Response of Cedrela fissilis Radial Growth in the Ombrophilous Mixed Forest, Paraná, Brazil, Floresta e Ambiente, 10.1590/2179-8087.036118, 26, 3, (2019).
  • Attribution of growing season vegetation activity to climate change and human activities in the Three-River Headwaters Region, China, Journal of Hydroinformatics, 10.2166/hydro.2019.003, (2019).
  • Microclimatic buffering in forests of the future: the role of local water balance, Ecography, 10.1111/ecog.03836, 42, 1, (1-11), (2018).
  • Elevated CO 2 compensates for drought effects in lemon saplings via stomatal downregulation, increased soil moisture, and increased wood carbon storage, Environmental and Experimental Botany, 10.1016/j.envexpbot.2018.01.004, 148, (117-127), (2018).
  • Sensitivity of European wheat to extreme weather, Field Crops Research, 10.1016/j.fcr.2017.11.008, 222, (209-217), (2018).
  • An assessment of the impacts of climate extremes on the vegetation in Mongolian Plateau: Using a scenarios-based analysis to support regional adaptation and mitigation options, Ecological Indicators, 10.1016/j.ecolind.2018.08.031, 95, (805-814), (2018).
  • Climate, tree masting and spatial behaviour in wild boar (Sus scrofa L.): insight from a long-term study, Annals of Forest Science, 10.1007/s13595-018-0726-6, 75, 2, (2018).
  • Climate change impacts on agro-climatic indices derived from downscaled weather generator scenarios for eastern Denmark, European Journal of Agronomy, 10.1016/j.eja.2018.04.004, 101, (222-238), (2018).
  • Legume plants may facilitate Zanthoxylum bungeanum tolerance to extreme rainfall, Scientific Reports, 10.1038/s41598-018-34449-w, 8, 1, (2018).
  • Climatic and hydrologic controls on net primary production in a semiarid loess watershed, Journal of Hydrology, 10.1016/j.jhydrol.2018.11.031, (2018).
  • Northern forest tree populations are physiologically maladapted to drought, Nature Communications, 10.1038/s41467-018-07701-0, 9, 1, (2018).
  • Global patterns of extreme drought-induced loss in land primary production: Identifying ecological extremes from rain-use efficiency, Science of The Total Environment, 10.1016/j.scitotenv.2018.02.114, 628-629, (611-620), (2018).
  • Phenotypic plasticity in response to temperature fluctuations is genetically variable, and relates to climatic variability of origin, in Arabidopsis thaliana, AoB PLANTS, 10.1093/aobpla/ply043, 10, 4, (2018).
  • Geography, environment and organismal traits in the diversification of a major tropical herbaceous angiosperm radiation, AoB PLANTS, 10.1093/aobpla/ply008, 10, 1, (2018).
  • How a 10-day heatwave impacts barley grain yield when superimposed onto future levels of temperature and CO 2 as single and combined factors, Agriculture, Ecosystems & Environment, 10.1016/j.agee.2018.01.025, 259, (45-52), (2018).
  • Environmental and geographical space partitioning between core and peripheral Myrsine species (Primulaceae) of the Brazilian Atlantic Forest, Botanical Journal of the Linnean Society, 10.1093/botlinnean/boy034, 187, 4, (633-652), (2018).
  • Information Underload: Ecological Complexity, Incomplete Knowledge, and Data Deficits Create Challenges for the Assisted Migration of Forest Trees, BioScience, 10.1093/biosci/biy001, 68, 4, (251-263), (2018).
  • Exploring adaptation strategies of coffee production to climate change using a process-based model, Ecological Modelling, 10.1016/j.ecolmodel.2018.01.009, 371, (76-89), (2018).
  • Interactive effects of high temperature and drought stress during stem elongation, anthesis and early grain filling on the yield formation and photosynthesis of winter wheat, Field Crops Research, 10.1016/j.fcr.2018.02.022, 221, (182-195), (2018).
  • Precipitation amount and frequency affect seedling emergence and growth of Reaumuria soongarica in northwestern China, Journal of Arid Land, 10.1007/s40333-018-0013-2, 10, 4, (574-587), (2018).
  • Climate variability decreases species richness and community stability in a temperate grassland, Oecologia, 10.1007/s00442-018-4208-1, 188, 1, (183-192), (2018).
  • Behavioural thermoregulation alters microhabitat utilization and demographic rates in ectothermic invertebrates, Animal Behaviour, 10.1016/j.anbehav.2018.06.003, 142, (49-57), (2018).
  • Response of a facultative CAM plant and its competitive relationship with a grass to changes in rainfall regime, Plant and Soil, 10.1007/s11104-018-3657-y, 427, 1-2, (321-333), (2018).
  • Extreme drought alters growth and interactions with exotic grasses, but not survival, for a California annual forb, Plant Ecology, 10.1007/s11258-018-0828-0, 219, 6, (705-717), (2018).
  • Safeguarding reforestation efforts against changes in climate and disturbance regimes, Forest Ecology and Management, 10.1016/j.foreco.2018.05.025, 424, (458-467), (2018).
  • Spring-fen habitat islands in a warming climate: Partitioning the effects of mesoclimate air and water temperature on aquatic and terrestrial biota, Science of The Total Environment, 10.1016/j.scitotenv.2018.03.319, 634, (355-365), (2018).
  • Using repeat electrical resistivity surveys to assess heterogeneity in soil moisture dynamics under contrasting vegetation types, Journal of Hydrology, 10.1016/j.jhydrol.2018.02.062, 559, (684-697), (2018).
  • Soil respiration and extracellular enzyme production respond differently across seasons to elevated temperatures, Plant and Soil, 10.1007/s11104-018-3591-z, 425, 1-2, (351-361), (2018).
  • Contrasting climate niches among co‐occurring subdominant forbs of the sagebrush steppe, Diversity and Distributions, 10.1111/ddi.12764, 24, 9, (1291-1307), (2018).
  • Response of herbaceous wetland plant species to changing precipitation regimes, Ecohydrology, 10.1002/eco.2030, 11, 8, (2018).
  • Plasticity of photosynthetic heat tolerance in plants adapted to thermally contrasting biomes, Plant, Cell & Environment, 10.1111/pce.13133, 41, 6, (1251-1262), (2018).
  • Interactions between global change components drive plant species richness patterns within communities in mountain grasslands independently of topography, Journal of Vegetation Science, 10.1111/jvs.12683, 29, 6, (1029-1039), (2018).
  • Climate‐driven diversity change in annual grasslands: Drought plus deluge does not equal normal, Global Change Biology, 10.1111/gcb.14018, 24, 4, (1782-1792), (2018).
  • Understanding the mechanisms of soil water repellency from nanoscale to ecosystem scale: a review, Journal of Soils and Sediments, 10.1007/s11368-018-2195-9, (2018).
  • Testing an optimality-based model of rooting zone water storage capacity in temperate forests, Hydrology and Earth System Sciences, 10.5194/hess-22-4097-2018, 22, 7, (4097-4124), (2018).
  • Adaptability of global olive cultivars to water availability under future Mediterranean climate, Mitigation and Adaptation Strategies for Global Change, 10.1007/s11027-018-9820-1, (2018).
  • Effects of Nitrogen Addition on the Drought Susceptibility of the Leymus chinensis Meadow Ecosystem Vary with Drought Duration, Frontiers in Plant Science, 10.3389/fpls.2018.00254, 9, (2018).
  • Growth and biomass partitioning of nine provenances of Quillaja saponaria seedlings to water stress , Southern Forests: a Journal of Forest Science, 10.2989/20702620.2018.1512789, (1-7), (2018).
  • What about the detoxification mechanisms underlying ozone sensitivity in Liriodendron tulipifera?, Environmental Science and Pollution Research, 10.1007/s11356-017-8818-7, 25, 9, (8148-8160), (2017).
  • Sensitivity and resilience of ecosystems to climate variability in the semi-arid to hyper-arid areas of Northern China: a case study in the Heihe River Basin, Ecological Research, 10.1007/s11284-017-1543-3, 33, 1, (161-174), (2017).
  • Ecosystem functioning is enveloped by hydrometeorological variability, Nature Ecology & Evolution, 10.1038/s41559-017-0277-5, 1, 9, (1263-1270), (2017).
  • Heat and hypoxia give a global invader, Gambusia holbrooki, the edge over a threatened endemic fish on Australian floodplains, Biological Invasions, 10.1007/s10530-017-1457-6, 19, 8, (2477-2489), (2017).
  • Climate Change and Carbon Sequestration in Forest Ecosystems, Handbook of Climate Change Mitigation and Adaptation, 10.1007/978-3-319-14409-2, (555-594), (2017).
  • From inland to the coast: Spatial and environmental signatures on the genetic diversity in the colonization of the South Atlantic Coastal Plain, Perspectives in Plant Ecology, Evolution and Systematics, 10.1016/j.ppees.2017.06.006, 28, (47-57), (2017).
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