Plant traits poorly predict winner and loser shrub species in a warming tundra biome
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Anne D. Bjorkman | Nadejda A. Soudzilovskaia | G. Schaepman‐Strub | J. Prevéy | R. Hollister | I. Myers-Smith | E. Lévesque | B. Cerabolini | A. Buras | B. Forbes | M. Kleyer | P. Grogan | M. Luoto | P. Macek | S. Normand | A. Eskelinen | I. Aubin | K. Christie | H. Thomas | J. Alatalo | D. Blok | L. Hermanutz | A. Anadon‐Rosell | E. Frei | M. Iturrate-Garcia | E. Kaarlejärvi | L. Lamarque | A. Trant | S. Venn | J. May | J. Cornelissen | Konsta Happonen | A. Virkkala | M. te Beest | S. Sheremetiev | J. Lembrechts | L. Siegwart Collier | A. Blach‐Overgaard | Mariana García Criado | J. Hudson | Katlyn R Betway-May | Anne Blach‐Overgaard | M. Iturrate-García | Anna‐Maria Virkkala
[1] Jonathan J. Henn,et al. Plant traits alone are good predictors of ecosystem properties when used carefully , 2023, Nature Ecology & Evolution.
[2] T. Vihma,et al. The Arctic has warmed nearly four times faster than the globe since 1979 , 2022, Communications Earth & Environment.
[3] M. Dubey,et al. Annual Mean Arctic Amplification 1970–2020: Observed and Simulated by CMIP6 Climate Models , 2022, Geophysical Research Letters.
[4] Anne C. S. McIntosh,et al. Above‐ and belowground drivers of intraspecific trait variability across subcontinental gradients for five ubiquitous forest plants in North America , 2022, Journal of Ecology.
[5] S. Beissinger,et al. Why Are Species’ Traits Weak Predictors of Range Shifts? , 2021, Annual Review of Ecology, Evolution, and Systematics.
[6] Antoine Guisan,et al. Think globally, measure locally: The MIREN standardized protocol for monitoring plant species distributions along elevation gradients , 2021, Ecology and evolution.
[7] S. Oberbauer,et al. Species‐specific trends and variability in plant functional traits across a latitudinal gradient in northern Alaska , 2021, Journal of Vegetation Science.
[8] J. Peñuelas,et al. Different sets of traits explain abundance and distribution patterns of European plants at different spatial scales , 2021, Journal of Vegetation Science.
[9] P. Thornton,et al. Integrating Arctic Plant Functional Types in a Land Surface Model Using Above‐ and Belowground Field Observations , 2021, Journal of Advances in Modeling Earth Systems.
[10] B. Fréchette,et al. Ancient plant DNA reveals High Arctic greening during the Last Interglacial , 2021, Proceedings of the National Academy of Sciences.
[11] A. Nicotra,et al. Germination at Extreme Temperatures: Implications for Alpine Shrub Encroachment , 2021, Plants.
[12] E. Post,et al. Herbivory and warming interact in opposing patterns of covariation between arctic shrub species at large and local scales , 2021, Proceedings of the National Academy of Sciences.
[13] C. Tovar,et al. Globally important plant functional traits for coping with climate change , 2021, Frontiers of Biogeography.
[14] A. Eskelinen,et al. Mammalian herbivory shapes intraspecific trait responses to warmer climate and nutrient enrichment , 2020, Global change biology.
[15] M. Luoto,et al. Decreasing snow cover alters functional composition and diversity of Arctic tundra , 2020, Proceedings of the National Academy of Sciences.
[16] J. Lenoir,et al. Testing macroecological abundance patterns: The relationship between local abundance and range size, range position and climatic suitability among European vascular plants , 2020, Journal of Biogeography.
[17] S. Simpson,et al. Climate Change Drives Poleward Increases and Equatorward Declines in Marine Species , 2020, Current Biology.
[18] Anne D. Bjorkman,et al. Global plant trait relationships extend to the climatic extremes of the tundra biome , 2020, Nature Communications.
[19] Anne D. Bjorkman,et al. Woody plant encroachment intensifies under climate change across tundra and savanna biomes , 2020, Global Ecology and Biogeography.
[20] J. Eitel,et al. A mechanism of expansion: Arctic deciduous shrubs capitalize on warming-induced nutrient availability , 2020, Oecologia.
[21] P. Grogan,et al. Recent Growth and Expansion of Birch Shrubs Across a Low Arctic Landscape in Continental Canada: Are These Responses More a Consequence of the Severely Declining Caribou Herd than of Climate Warming? , 2020, Ecosystems.
[22] Denis Bastianelli,et al. TRY plant trait database - enhanced coverage and open access. , 2019, Global change biology.
[23] R. Christensen. Advanced Linear Modeling: Statistical Learning and Dependent Data , 2019 .
[24] Casper J. Albers,et al. AMR - An R Package for Working with Antimicrobial Resistance Data , 2019, bioRxiv.
[25] Anne C. S. McIntosh,et al. Geographic scale and disturbance influence intraspecific trait variability in leaves and roots of North American understorey plants , 2019, Functional Ecology.
[26] Anne D. Bjorkman,et al. Status and trends in Arctic vegetation: Evidence from experimental warming and long-term monitoring , 2019, Ambio.
[27] N. Zimmermann,et al. Uncertainty in ensembles of global biodiversity scenarios , 2019, Nature Communications.
[28] Anne D. Bjorkman,et al. Eighteen years of ecological monitoring reveals multiple lines of evidence for tundra vegetation change , 2019, Ecological Monographs.
[29] T Matthew Robson,et al. ΔTraitSDMs: species distribution models that account for local adaptation and phenotypic plasticity. , 2019, The New phytologist.
[30] Anne D. Bjorkman,et al. Complexity revealed in the greening of the Arctic , 2019, Nature Climate Change.
[31] Anne D. Bjorkman,et al. Plant traits inform predictions of tundra responses to global change. , 2018, The New phytologist.
[32] Anne D. Bjorkman,et al. Traditional plant functional groups explain variation in economic but not size‐related traits across the tundra biome , 2018, Global ecology and biogeography : a journal of macroecology.
[33] B. Enquist,et al. Intraspecific Trait Variation and Phenotypic Plasticity Mediate Alpine Plant Species Response to Climate Change , 2018, Front. Plant Sci..
[34] T. Vowles,et al. Implications of evergreen shrub expansion in the Arctic , 2018, Journal of Ecology.
[35] Steven F. Oberbauer,et al. Tundra Trait Team: A database of plant traits spanning the tundra biome , 2018, Global Ecology and Biogeography.
[36] Anne D. Bjorkman,et al. Plant functional trait change across a warming tundra biome , 2018, Nature.
[37] Anne D. Bjorkman,et al. Global trait–environment relationships of plant communities , 2018, Nature Ecology & Evolution.
[38] Martin A. Nuñez,et al. Microclimate variability in alpine ecosystems as stepping stones for non‐native plant establishment above their current elevational limit , 2018 .
[39] Richard Inger,et al. A brief introduction to mixed effects modelling and multi-model inference in ecology , 2018, PeerJ.
[40] R. Virtanen,et al. Long‐term vegetation changes of treeless heath communities in northern Fennoscandia: Links to climate change trends and reindeer grazing , 2018 .
[41] G. Bonan,et al. Climate, ecosystems, and planetary futures: The challenge to predict life in Earth system models , 2018, Science.
[42] M. Gałka,et al. Response of plant communities to climate change during the late Holocene: Palaeoecological insights from peatlands in the Alaskan Arctic , 2018 .
[43] Benjamin Smith,et al. Vegetation demographics in Earth System Models: A review of progress and priorities , 2018, Global change biology.
[44] H. H. Birks,et al. Stay or go – how topographic complexity influences alpine plant population and community responses to climate change , 2017 .
[45] S. Beissinger,et al. Species’ traits as predictors of range shifts under contemporary climate change: A review and meta‐analysis , 2017, Global change biology.
[46] Danny A. P. Hooftman,et al. Drivers of plant species’ potential to spread: the importance of demography versus seed dispersal , 2017 .
[47] A. Eskelinen,et al. Herbivores rescue diversity in warming tundra by modulating trait-dependent species losses and gains , 2017, Nature Communications.
[48] R. Virtanen,et al. Open tundra persist, but arctic features decline—Vegetation changes in the warming Fennoscandian tundra , 2017, Global change biology.
[49] Paul-Christian Bürkner,et al. brms: An R Package for Bayesian Multilevel Models Using Stan , 2017 .
[50] Andrew J. Martin,et al. Shrub growth and expansion in the Arctic tundra: an assessment of controlling factors using an evidence-based approach , 2017 .
[51] U. Molau,et al. Community and species-specific responses of plant traits to 23 years of experimental warming across subarctic tundra plant communities , 2017, Scientific Reports.
[52] Isabelle Mougenot,et al. Towards a thesaurus of plant characteristics: an ecological contribution , 2017 .
[53] Antoine Guisan,et al. What we use is not what we know: environmental predictors in plant distribution models , 2016 .
[54] W. Morris,et al. Advancing environmentally explicit structured population models of plants , 2016 .
[55] Anthony R. Taylor,et al. Traits to stay, traits to move: a review of functional traits to assess sensitivity and adaptive capacity of temperate and boreal trees to climate change , 2016 .
[56] Bill Shipley,et al. Reinforcing loose foundation stones in trait-based plant ecology , 2016, Oecologia.
[57] S. Wright,et al. The global spectrum of plant form and function , 2015, Nature.
[58] Christopher Baraloto,et al. A global meta-analysis of the relative extent of intraspecific trait variation in plant communities. , 2015, Ecology letters.
[59] Jonathan M. Levine,et al. Novel competitors shape species’ responses to climate change , 2015, Nature.
[60] Miguel B. Araújo,et al. Species' intrinsic traits inform their range limitations and vulnerability under environmental change , 2015 .
[61] B. Graae,et al. Linking small-scale topography with microclimate, plant species diversity and intra-specific trait variation in an alpine landscape , 2015 .
[62] Robert D Hollister,et al. Warming experiments elucidate the drivers of observed directional changes in tundra vegetation , 2015, Ecology and evolution.
[63] Niklaus E. Zimmermann,et al. Demography as the basis for understanding and predicting range dynamics , 2014 .
[64] Isabel W. Ashton,et al. Shrub Expansion Over the Past 62 Years in Rocky Mountain Alpine Tundra: Possible Causes and Consequences , 2014 .
[65] J. Kattge,et al. Plant functional types in Earth system models: past experiences and future directions for application of dynamic vegetation models in high-latitude ecosystems. , 2014, Annals of botany.
[66] B. Potts,et al. Genetic divergence in forest trees: understanding the consequences of climate change , 2014 .
[67] M. Pärtel,et al. Predicting species' maximum dispersal distances from simple plant traits. , 2014, Ecology.
[68] Nadejda A. Soudzilovskaia,et al. Functional traits predict relationship between plant abundance dynamic and long-term climate warming , 2013, Proceedings of the National Academy of Sciences.
[69] Niklaus E. Zimmermann,et al. A greener Greenland? Climatic potential and long-term constraints on future expansions of trees and shrubs , 2013, Philosophical Transactions of the Royal Society B: Biological Sciences.
[70] O. Tackenberg,et al. Are Plant Species Able to Keep Pace with the Rapidly Changing Climate? , 2013, PloS one.
[71] John C. Nash,et al. Strategies for fitting nonlinear ecological models in R, AD Model Builder, and BUGS , 2013 .
[72] J. Lenoir,et al. Dispersal ability links to cross‐scale species diversity patterns across the Eurasian Arctic tundra , 2012 .
[73] William K. Morris,et al. The role of functional traits in species distributions revealed through a hierarchical model , 2012 .
[74] W. D. Kissling,et al. The role of biotic interactions in shaping distributions and realised assemblages of species: implications for species distribution modelling , 2012, Biological reviews of the Cambridge Philosophical Society.
[75] Steven F. Oberbauer,et al. Plot-scale evidence of tundra vegetation change and links to recent summer warming. , 2012 .
[76] Brendan A. Wintle,et al. Plant extinction risk under climate change: are forecast range shifts alone a good indicator of species vulnerability to global warming? , 2012 .
[77] Dennis C Harrison. Form and function , 2012, Canadian Medical Association Journal.
[78] Pascale Ropars,et al. Shrub expansion at the forest–tundra ecotone: spatial heterogeneity linked to local topography , 2012 .
[79] S. Goetz,et al. Shrub expansion in tundra ecosystems: dynamics, impacts and research priorities , 2011, Environmental Research Letters.
[80] D. Nogues‐Bravo,et al. Applications of species distribution modeling to paleobiology , 2011 .
[81] Dorothy Cooley,et al. Expansion of Canopy-Forming Willows Over the Twentieth Century on Herschel Island, Yukon Territory, Canada , 2011, AMBIO.
[82] R. Ohlemüller,et al. Rapid Range Shifts of Species Associated with High Levels of Climate Warming , 2011, Science.
[83] H. Cochard,et al. Uniform Selection as a Primary Force Reducing Population Genetic Differentiation of Cavitation Resistance across a Species Range , 2011, PloS one.
[84] J. Tewksbury,et al. Do species' traits predict recent shifts at expanding range edges? , 2011, Ecology letters.
[85] D. Cairns,et al. Patterns and processes of global shrub expansion , 2011 .
[86] S. Schreiber,et al. Why intraspecific trait variation matters in community ecology. , 2011, Trends in ecology & evolution.
[87] G. Henry,et al. Taller and larger: shifts in Arctic tundra leaf traits after 16 years of experimental warming , 2011 .
[88] Antoine Guisan,et al. Species distribution models reveal apparent competitive and facilitative effects of a dominant species on the distribution of tundra plants , 2010 .
[89] D. Ackerly,et al. A link between plant traits and abundance: evidence from coastal California woody plants , 2010 .
[90] B. Forbes,et al. Russian Arctic warming and ‘greening’ are closely tracked by tundra shrub willows , 2010 .
[91] Sandy P. Harrison,et al. Ecophysiological and bioclimatic foundations for a global plant functional classification , 2010 .
[92] Shawn W. Laffan,et al. Global patterns in plant height , 2009 .
[93] J. Elith,et al. Species Distribution Models: Ecological Explanation and Prediction Across Space and Time , 2009 .
[94] H. H. Birks. The Late-Quaternary history of arctic and alpine plants , 2008 .
[95] Orr Spiegel,et al. Mechanisms of long-distance seed dispersal. , 2008, Trends in ecology & evolution.
[96] K. Hülber,et al. Changes in plant species richness over the last century in the eastern Swiss Alps: elevational gradient, bedrock effects and migration rates , 2008, Plant Ecology.
[97] F. Hu,et al. Frequent Fires in Ancient Shrub Tundra: Implications of Paleorecords for Arctic Environmental Change , 2008, PloS one.
[98] M. Hermy,et al. Life‐history traits are correlated with geographical distribution patterns of western European forest herb species , 2007 .
[99] C. Dormann. Promising the future? Global change projections of species distributions , 2007 .
[100] Pierre Taberlet,et al. Frequent Long-Distance Plant Colonization in the Changing Arctic , 2007, Science.
[101] C. Violle,et al. Let the concept of trait be functional , 2007 .
[102] M. Sturm,et al. The evidence for shrub expansion in Northern Alaska and the Pan‐Arctic , 2006 .
[103] D. Roy,et al. The distributions of a wide range of taxonomic groups are expanding polewards , 2006 .
[104] L. Gough. Neighbor effects on germination, survival, and growth in two arctic tundra plant communities , 2006 .
[105] Steven F. Oberbauer,et al. Plant community responses to experimental warming across the tundra biome , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[106] M. Cadotte,et al. Life‐history correlates of plant invasiveness at regional and continental scales , 2005 .
[107] W. Thuiller,et al. Predicting species distribution: offering more than simple habitat models. , 2005, Ecology letters.
[108] Robert D. Hollister,et al. PLANT RESPONSE TO TEMPERATURE IN NORTHERN ALASKA: IMPLICATIONS FOR PREDICTING VEGETATION CHANGE , 2005 .
[109] Donald A. Walker,et al. The Circumpolar Arctic vegetation map , 2005 .
[110] M. Westoby,et al. Seedling survival and seed size: a synthesis of the literature , 2004 .
[111] Sean C. Thomas,et al. The worldwide leaf economics spectrum , 2004, Nature.
[112] T. Dawson,et al. Predicting the impacts of climate change on the distribution of species: are bioclimate envelope models useful? , 2003 .
[113] Johan Ehrlén,et al. Habitat configuration, species traits and plant distributions , 2002 .
[114] S. Lavorel,et al. Predicting changes in community composition and ecosystem functioning from plant traits: revisiting the Holy Grail , 2002 .
[115] M. Sturm,et al. Climate change: Increasing shrub abundance in the Arctic , 2001, Nature.
[116] Jon Holmgren,et al. Snow-Shrub Interactions in Arctic Tundra: A Hypothesis with Climatic Implications , 2001 .
[117] K. Gaston,et al. Pattern and Process in Macroecology , 2000 .
[118] C. Parmesan,et al. Poleward shifts in geographical ranges of butterfly species associated with regional warming , 1999, Nature.
[119] Mark Westoby,et al. A leaf-height-seed (LHS) plant ecology strategy scheme , 1998, Plant and Soil.
[120] G. Henry,et al. Tundra plants and climate change: the International Tundra Experiment (ITEX) , 1997 .
[121] F. Stuart Chapin,et al. Plant functional types as predictors of transient responses of arctic vegetation to global change , 1996 .
[122] Paul A. Keddy,et al. A comparative approach to predicting competitive ability from plant traits , 1988, Nature.
[123] D. Doak,et al. Incorporating intraspecific variation into species distribution models improves distribution predictions, but cannot predict species traits for a wide‐spread plant species , 2019, Ecography.
[124] S. Wipf,et al. Methods for measuring arctic and alpine shrub growth: A review , 2015 .
[125] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[126] A. Muraveva,et al. A SYNTHESIS OF THE LITERATURE , 2012 .
[127] B. Blaine. a review and meta-analysis , 2006 .
[128] Barbara L. Gartner,et al. Plant stems : physiology and functional morphology , 1995 .
[129] B. Wilson,et al. Shrub Stems: Form and Function , 1995 .
[130] Robert C. Wolpert,et al. A Review of the , 1985 .