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1.
Nature ; 479(7373): 359-64, 2011 Nov 02.
Article in English | MEDLINE | ID: mdl-22048313

ABSTRACT

Despite decades of research, the roles of climate and humans in driving the dramatic extinctions of large-bodied mammals during the Late Quaternary period remain contentious. Here we use ancient DNA, species distribution models and the human fossil record to elucidate how climate and humans shaped the demographic history of woolly rhinoceros, woolly mammoth, wild horse, reindeer, bison and musk ox. We show that climate has been a major driver of population change over the past 50,000 years. However, each species responds differently to the effects of climatic shifts, habitat redistribution and human encroachment. Although climate change alone can explain the extinction of some species, such as Eurasian musk ox and woolly rhinoceros, a combination of climatic and anthropogenic effects appears to be responsible for the extinction of others, including Eurasian steppe bison and wild horse. We find no genetic signature or any distinctive range dynamics distinguishing extinct from surviving species, emphasizing the challenges associated with predicting future responses of extant mammals to climate and human-mediated habitat change.


Subject(s)
Biota , Climate Change/history , Extinction, Biological , Human Activities/history , Mammals/physiology , Animals , Bayes Theorem , Bison , DNA, Mitochondrial/analysis , DNA, Mitochondrial/genetics , Europe , Fossils , Genetic Variation , Geography , History, Ancient , Horses , Humans , Mammals/genetics , Mammoths , Molecular Sequence Data , Population Dynamics , Reindeer , Siberia , Species Specificity , Time Factors
2.
PLoS One ; 13(3): e0194014, 2018.
Article in English | MEDLINE | ID: mdl-29565980

ABSTRACT

Arctic ecosystems are characterized by a broad range of plant functional types that are highly heterogeneous at small (~1-2 m) spatial scales. Climatic changes can impact vegetation distribution directly, and also indirectly via impacts on disturbance regimes. Consequent changes in vegetation structure and function have implications for surface energy dynamics that may alter permafrost thermal dynamics, and are therefore of interest in the context of permafrost related climate feedbacks. In this study we examine small-scale heterogeneity in soil thermal properties and ecosystem carbon and water fluxes associated with varying understory vegetation in open-canopy larch forests in northeastern Siberia. We found that lichen mats comprise 16% of understory vegetation cover on average in open canopy larch forests, and lichen abundance was inversely related to canopy cover. Relative to adjacent areas dominated by shrubs and moss, lichen mats had 2-3 times deeper permafrost thaw depths and surface soils warmer by 1-2°C in summer and less than 1°C in autumn. Despite deeper thaw depths, ecosystem respiration did not differ across vegetation types, indicating that autotrophic respiration likely dominates areas with shrubs and moss. Summertime net ecosystem exchange of CO2 was negative (i.e. net uptake) in areas with high shrub cover, while positive (i.e. net loss) in lichen mats and areas with less shrub cover. Our results highlight relationships between vegetation and soil thermal dynamics in permafrost ecosystems, and underscore the necessity of considering both vegetation and permafrost dynamics in shaping carbon cycling in permafrost ecosystems.


Subject(s)
Carbon Cycle/physiology , Carbon Dioxide/chemistry , Carbon/chemistry , Permafrost/chemistry , Arctic Regions , Autotrophic Processes/physiology , Ecosystem , Forests , Plants/chemistry , Siberia , Soil/chemistry
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