Works matching IS 13541013 AND DT 2020 AND VI 26 AND IP 2
Results: 65
Natural history collections document biological responses to climate change: A commentary on DeLeo et al. (2019), Effects of two centuries of global environmental variation on phenology and physiology of Arabidopsis thaliana.
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- Global Change Biology, 2020, v. 26, n. 2, p. 340, doi. 10.1111/gcb.14922
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Understanding plant communities of the future requires filling knowledge gaps.
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- Global Change Biology, 2020, v. 26, n. 2, p. 328, doi. 10.1111/gcb.14920
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Fire affects the taxonomic and functional composition of soil microbial communities, with cascading effects on grassland ecosystem functioning.
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- Global Change Biology, 2020, v. 26, n. 2, p. 431, doi. 10.1111/gcb.14852
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Trends in tuna carbon isotopes suggest global changes in pelagic phytoplankton communities.
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- Global Change Biology, 2020, v. 26, n. 2, p. 458, doi. 10.1111/gcb.14858
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Research priorities for natural ecosystems in a changing global climate.
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- Global Change Biology, 2020, v. 26, n. 2, p. 410, doi. 10.1111/gcb.14856
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Understanding ecosystems of the future will require more than realistic climate change experiments – A response to Korell et al.
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- Global Change Biology, 2020, v. 26, n. 2, p. e6, doi. 10.1111/gcb.14854
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Response to the Editor: Assessing the robustness of communities and ecosystems in global change research.
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- Global Change Biology, 2020, v. 26, n. 2, p. e4, doi. 10.1111/gcb.14853
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Refining the role of phenology in regulating gross ecosystem productivity across European peatlands.
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- Global Change Biology, 2020, v. 26, n. 2, p. 876, doi. 10.1111/gcb.14905
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Surprising lack of sensitivity of biochemical limitation of photosynthesis of nine tree species to open‐air experimental warming and reduced rainfall in a southern boreal forest.
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- Global Change Biology, 2020, v. 26, n. 2, p. 746, doi. 10.1111/gcb.14805
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Standardized drought indices in ecological research: Why one size does not fit all.
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- Global Change Biology, 2020, v. 26, n. 2, p. 322, doi. 10.1111/gcb.14809
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Extensive land cover change across Arctic–Boreal Northwestern North America from disturbance and climate forcing.
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- Global Change Biology, 2020, v. 26, n. 2, p. 807, doi. 10.1111/gcb.14804
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Towards comparable assessment of the soil nutrient status across scales—Review and development of nutrient metrics.
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- Global Change Biology, 2020, v. 26, n. 2, p. 392, doi. 10.1111/gcb.14802
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Response of foundation macrophytes to near‐natural simulated marine heatwaves.
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- Global Change Biology, 2020, v. 26, n. 2, p. 417, doi. 10.1111/gcb.14801
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Precipitation amount and event size interact to reduce ecosystem functioning during dry years in a mesic grassland.
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- Global Change Biology, 2020, v. 26, n. 2, p. 658, doi. 10.1111/gcb.14789
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Introduced plants as novel Anthropocene habitats for insects.
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- Global Change Biology, 2020, v. 26, n. 2, p. 971, doi. 10.1111/gcb.14915
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Potential feedback mediated by soil microbiome response to warming in a glacier forefield.
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- Global Change Biology, 2020, v. 26, n. 2, p. 697, doi. 10.1111/gcb.14936
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Microclimatic conditions anywhere at any time!
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- Global Change Biology, 2020, v. 26, n. 2, p. 337, doi. 10.1111/gcb.14942
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Maintaining historic disturbance regimes increases species' resilience to catastrophic hurricanes.
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- Global Change Biology, 2020, v. 26, n. 2, p. 798, doi. 10.1111/gcb.14932
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Where old meets new: An ecosystem study of methanogenesis in a reflooded agricultural peatland.
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- Global Change Biology, 2020, v. 26, n. 2, p. 772, doi. 10.1111/gcb.14916
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Characteristics of free air carbon dioxide enrichment of a northern temperate mature forest.
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- Global Change Biology, 2020, v. 26, n. 2, p. 1023, doi. 10.1111/gcb.14786
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Standardized metrics are key for assessing drought severity.
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- Global Change Biology, 2020, v. 26, n. 2, p. e1, doi. 10.1111/gcb.14899
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- Article
Imaging spectroscopy reveals the effects of topography and logging on the leaf chemistry of tropical forest canopy trees.
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- Global Change Biology, 2020, v. 26, n. 2, p. 989, doi. 10.1111/gcb.14903
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Towards the integration of animal‐borne instruments into global ocean observing systems.
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- Global Change Biology, 2020, v. 26, n. 2, p. 586, doi. 10.1111/gcb.14902
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How do we overcome abrupt degradation of marine ecosystems and meet the challenge of heat waves and climate extremes?
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- Global Change Biology, 2020, v. 26, n. 2, p. 343, doi. 10.1111/gcb.14901
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Finding middle ground: Extending conservation beyond wilderness areas.
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- Global Change Biology, 2020, v. 26, n. 2, p. 333, doi. 10.1111/gcb.14900
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Climate‐driven shift in coral morphological structure predicts decline of juvenile reef fishes.
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- Global Change Biology, 2020, v. 26, n. 2, p. 557, doi. 10.1111/gcb.14911
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Trophic niche segregation allows range‐extending coral reef fishes to co‐exist with temperate species under climate change.
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- Global Change Biology, 2020, v. 26, n. 2, p. 721, doi. 10.1111/gcb.14898
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Climate‐driven habitat change causes evolution in Threespine Stickleback.
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- Global Change Biology, 2020, v. 26, n. 2, p. 597, doi. 10.1111/gcb.14892
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A new approach to molecular biosurveillance of invasive species using DNA metabarcoding.
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- Global Change Biology, 2020, v. 26, n. 2, p. 1012, doi. 10.1111/gcb.14886
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- Article
Range margin populations show high climate adaptation lags in European trees.
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- Global Change Biology, 2020, v. 26, n. 2, p. 484, doi. 10.1111/gcb.14881
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- Article
Effects of two centuries of global environmental variation on phenology and physiology of Arabidopsis thaliana.
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- Global Change Biology, 2020, v. 26, n. 2, p. 523, doi. 10.1111/gcb.14880
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- Article
Defining CO<sub>2</sub> and O<sub>2</sub> syndromes of marine biomes in the Anthropocene.
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- Global Change Biology, 2020, v. 26, n. 2, p. 355, doi. 10.1111/gcb.14879
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Phenological changes in North Atlantic right whale habitat use in Massachusetts Bay.
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- Global Change Biology, 2020, v. 26, n. 2, p. 734, doi. 10.1111/gcb.14867
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Increased high‐latitude photosynthetic carbon gain offset by respiration carbon loss during an anomalous warm winter to spring transition.
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- Global Change Biology, 2020, v. 26, n. 2, p. 682, doi. 10.1111/gcb.14863
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Water‐use efficiency in a semi‐arid woodland with high rainfall variability.
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- Global Change Biology, 2020, v. 26, n. 2, p. 496, doi. 10.1111/gcb.14866
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Altered ignition catchments threaten a hyperdiverse fire‐dependent ecosystem.
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- Global Change Biology, 2020, v. 26, n. 2, p. 616, doi. 10.1111/gcb.14861
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Limitations of trait‐based approaches for stressor assessment: The case of freshwater invertebrates and climate drivers.
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- Global Change Biology, 2020, v. 26, n. 2, p. 364, doi. 10.1111/gcb.14846
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Predicting future climate at high spatial and temporal resolution.
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- Global Change Biology, 2020, v. 26, n. 2, p. 1003, doi. 10.1111/gcb.14876
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How afforestation affects the water cycle in drylands: A process‐based comparative analysis.
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- Global Change Biology, 2020, v. 26, n. 2, p. 944, doi. 10.1111/gcb.14875
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Hiding from the climate: Characterizing microrefugia for boreal forest understory species.
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- Global Change Biology, 2020, v. 26, n. 2, p. 471, doi. 10.1111/gcb.14874
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Accurate forest projections require long‐term wood decay experiments because plant trait effects change through time.
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- Global Change Biology, 2020, v. 26, n. 2, p. 864, doi. 10.1111/gcb.14873
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Clarifying Amazonia's burning crisis.
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- Global Change Biology, 2020, v. 26, n. 2, p. 319, doi. 10.1111/gcb.14872
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Intensification of dairy production can increase the GHG mitigation potential of the land use sector in East Africa.
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- Global Change Biology, 2020, v. 26, n. 2, p. 568, doi. 10.1111/gcb.14870
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Terrestrial N<sub>2</sub>O emissions and related functional genes under climate change: A global meta‐analysis.
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- Global Change Biology, 2020, v. 26, n. 2, p. 931, doi. 10.1111/gcb.14847
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Projecting terrestrial biodiversity intactness with GLOBIO 4.
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- Global Change Biology, 2020, v. 26, n. 2, p. 760, doi. 10.1111/gcb.14848
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The human footprint represents observable human pressures: Reply to Kennedy et al.
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- Global Change Biology, 2020, v. 26, n. 2, p. 330, doi. 10.1111/gcb.14849
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Seasonal variability of forest sensitivity to heat and drought stresses: A synthesis based on carbon fluxes from North American forest ecosystems.
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- Global Change Biology, 2020, v. 26, n. 2, p. 901, doi. 10.1111/gcb.14843
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Forest streams are important sources for nitrous oxide emissions.
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- Global Change Biology, 2020, v. 26, n. 2, p. 629, doi. 10.1111/gcb.14812
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We need more realistic climate change experiments for understanding ecosystems of the future.
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- Global Change Biology, 2020, v. 26, n. 2, p. 325, doi. 10.1111/gcb.14797
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Contrasting consequences of climate change for migratory geese: Predation, density dependence and carryover effects offset benefits of high‐arctic warming.
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- Global Change Biology, 2020, v. 26, n. 2, p. 642, doi. 10.1111/gcb.14773
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