Location, location, location: survival of Antarctic biota requires the best real estate
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[1] R. McKay,et al. Climatic and tectonic drivers of late Oligocene Antarctic ice volume , 2022, Nature Geoscience.
[2] John B. Anderson,et al. Early to middle Miocene ice sheet dynamics in the westernmost Ross Sea (Antarctica): Regional correlations , 2022, Global and Planetary Change.
[3] P. Convey,et al. An ancient, Antarctic-specific species complex: large divergences between multiple Antarctic lineages of the tardigrade genus Mesobiotus. , 2022, Molecular phylogenetics and evolution.
[4] N. Fierer,et al. Response of Antarctic soil fauna to climate‐driven changes since the Last Glacial Maximum , 2021, Global change biology.
[5] A. Terauds,et al. Antarctic biodiversity predictions through substrate qualities and environmental DNA , 2021, bioRxiv.
[6] M. Stevens,et al. Species diversity in Friesea (Neanuridae) reveals similar biogeographic patterns among Antarctic Collembola , 2021 .
[7] R. Whitmore,et al. Ocean‐Driven and Topography‐Controlled Nonlinear Glacier Retreat During the Holocene: Southwestern Ross Sea, Antarctica , 2021, Geophysical Research Letters.
[8] Stein Tronstad,et al. Quantarctica, an integrated mapping environment for Antarctica, the Southern Ocean, and sub-Antarctic islands , 2021, Environ. Model. Softw..
[9] D. Sugden,et al. Antarctic blue-ice moraines: Analogue for Northern Hemisphere ice sheets? , 2020 .
[10] K. Norton,et al. Regional-scale abrupt Mid-Holocene ice sheet thinning in the western Ross Sea, Antarctica , 2020 .
[11] Aron D. Katz. Inferring Evolutionary Timescales without Independent Timing Information: An Assessment of “Universal” Insect Rates to Calibrate a Collembola (Hexapoda) Molecular Clock , 2020, Genes.
[12] P. Convey,et al. Genetic diversity of soil invertebrates corroborates timing estimates for past collapses of the West Antarctic Ice Sheet , 2020, Proceedings of the National Academy of Sciences.
[13] J. Lindow. A 14.5 million-year record of East Antarctic Ice Sheet fluctuations , 2020 .
[14] C. Muhlfeld,et al. Specialized meltwater biodiversity persists despite widespread deglaciation , 2020, Proceedings of the National Academy of Sciences.
[15] G. Bromley,et al. A 14.5-million-year record of East Antarctic Ice Sheet fluctuations from the central Transantarctic Mountains, constrained with cosmogenic 3He, 10Be, 21Ne, and 26Al , 2020, The Cryosphere.
[16] P. Convey,et al. Refuges of Antarctic diversity , 2020 .
[17] Won Sang Lee,et al. Deep glacial troughs and stabilizing ridges unveiled beneath the margins of the Antarctic ice sheet , 2019, Nature Geoscience.
[18] A. Hein,et al. New Last Glacial Maximum ice thickness constraints for the Weddell Sea Embayment, Antarctica , 2019, The Cryosphere.
[19] P. Convey,et al. Genome‐wide SNP data reveal improved evidence for Antarctic glacial refugia and dispersal of terrestrial invertebrates , 2019, Molecular ecology.
[20] S. Chown,et al. The ecological biogeography of indigenous and introduced Antarctic springtails , 2019, Journal of Biogeography.
[21] B. Goehring,et al. Late-glacial grounding line retreat in the northern Ross Sea, Antarctica , 2019, Geology.
[22] R. McKay,et al. Ice loss from the East Antarctic Ice Sheet during late Pleistocene interglacials , 2018, Nature.
[23] H. Griffiths,et al. Low genetic variation between South American and Antarctic populations of the bank-forming moss Chorisodontium aciphyllum (Dicranaceae) , 2018, Polar Biology.
[24] J. Stone,et al. Rapid early‐Holocene deglaciation in the Ross Sea, Antarctica , 2017 .
[25] M. Westoby,et al. The million-year evolution of the glacial trimline in the southernmost Ellsworth Mountains, Antarctica , 2017 .
[26] Ben Raymond,et al. Climate change drives expansion of Antarctic ice-free habitat , 2017, Nature.
[27] P. Convey,et al. Population genetics of three sympatric springtail species (Hexapoda: Collembola) from the South Shetland Islands: evidence for a common biogeographic pattern , 2017 .
[28] M. Westoby,et al. Mid-Holocene pulse of thinning in the Weddell Sea sector of the West Antarctic ice sheet , 2016, Nature Communications.
[29] A. Terauds,et al. Antarctic biogeography revisited: updating the Antarctic Conservation Biogeographic Regions , 2016 .
[30] R. DeConto,et al. Antarctic Ice Sheet variability across the Eocene-Oligocene boundary climate transition , 2011, Science.
[31] P. W. Kubik,et al. Rapid Holocene thinning of an East Antarctic outlet glacier driven by marine ice sheet instability , 2015, Nature Communications.
[32] A. Abe‐Ouchi,et al. Exposure age and ice-sheet model constraints on Pliocene East Antarctic ice sheet dynamics , 2015, Nature Communications.
[33] R. Wilkins,et al. Microsatellite analyses of the Antarctic endemic lichen Buellia frigida Darb. (Physciaceae) suggest limited dispersal and the presence of glacial refugia in the Ross Sea region , 2015, Polar Biology.
[34] John B. Anderson,et al. A community-based geological reconstruction of Antarctic Ice Sheet deglaciation since the Last Glacial Maximum , 2014 .
[35] P. Convey,et al. Geothermal activity helps life survive glacial cycles , 2014, Proceedings of the National Academy of Sciences.
[36] D. Fink,et al. Late Quaternary glacial history constrains glacio‐isostatic rebound in Enderby Land, East Antarctica , 2014 .
[37] Robert B. Dunbar,et al. Dynamic behaviour of the East Antarctic ice sheet during Pliocene warmth , 2013 .
[38] S. Cary,et al. At Limits of Life: Multidisciplinary Insights Reveal Environmental Constraints on Biotic Diversity in Continental Antarctica , 2012, PloS one.
[39] P. Barrett,et al. Antarctic topography at the Eocene–Oligocene boundary , 2012 .
[40] P. Convey,et al. Glacial geomorphology and cosmogenic 10Be and 26Al exposure ages in the northern Dufek Massif, Weddell Sea embayment, Antarctica , 2012, Antarctic Science.
[41] Anne M. Le Brocq,et al. A deglacial model for Antarctica: geological constraints and glaciological modelling as a basis for a new model of Antarctic glacial isostatic adjustment , 2012 .
[42] D. Hodgson,et al. Rapid deglaciation of Marguerite Bay, western Antarctic Peninsula in the Early Holocene , 2011 .
[43] R. DeConto,et al. Retreat of the East Antarctic ice sheet during the last glacial termination , 2011 .
[44] D. Fink,et al. Cosmogenic nuclide evidence for enhanced sensitivity of an East Antarctic ice stream to change during the last deglaciation , 2011 .
[45] G. Balco. Contributions and unrealized potential contributions of cosmogenic-nuclide exposure dating to glacier chronology, 1990–2010 , 2011 .
[46] S. Hills,et al. Molecular support for Pleistocene persistence of the continental Antarctic moss Bryum argenteum , 2010, Antarctic Science.
[47] S. Hågvar. Primary Succession of Springtails (Collembola) in a Norwegian Glacier Foreland , 2010 .
[48] B. Holland,et al. Biogeography of circum-Antarctic springtails. , 2010, Molecular phylogenetics and evolution.
[49] Annick Wilmotte,et al. The limnology and biology of the Dufek Massif, Transantarctic Mountains 82° South , 2010 .
[50] G. Delisle,et al. Glaciation history of Queen Maud Land (Antarctica) reconstructed from in-situ produced cosmogenic 10Be, 26Al and 21Ne , 2010 .
[51] P. Convey,et al. Exploring biological constraints on the glacial history of Antarctica , 2009 .
[52] Peter J. Bradbury,et al. The Last Glacial Maximum , 2009, Science.
[53] David Pollard,et al. Modelling West Antarctic ice sheet growth and collapse through the past five million years , 2009, Nature.
[54] S. Reed,et al. The earliest stages of ecosystem succession in high-elevation (5000 metres above sea level), recently deglaciated soils , 2008, Proceedings of the Royal Society B: Biological Sciences.
[55] A. Ashworth,et al. Exceptionally preserved lacustrine ostracods from the Middle Miocene of Antarctica: implications for high-latitude palaeoenvironment at 77° south , 2008, Proceedings of the Royal Society B: Biological Sciences.
[56] A. P. Wolfe,et al. Mid-Miocene cooling and the extinction of tundra in continental Antarctica , 2008, Proceedings of the National Academy of Sciences.
[57] Peter Convey,et al. Antarctic terrestrial life – challenging the history of the frozen continent? , 2008, Biological reviews of the Cambridge Philosophical Society.
[58] Peter Convey,et al. Antarctic Biodiversity , 2007, Science.
[59] P. Convey,et al. ORIGINAL ARTICLE: Diversity and biogeography of the Antarctic flora , 2007 .
[60] P. Convey,et al. Geothermal bryophyte habitats in the South Sandwich Islands, maritime Antarctic , 2006 .
[61] I. Hogg,et al. Proceedings of the SMBE Tri-National Young Investigators' Workshop 2005. Southern hemisphere springtails: could any have survived glaciation of Antarctica? , 2006, Molecular biology and evolution.
[62] M. Hambrey,et al. Pleistocene deglaciation chronology of the Amery Oasis and Radok Lake, northern Prince Charles Mountains, Antarctica , 2006 .
[63] D. Sugden,et al. Cenozoic landscape evolution of the Convoy Range to Mackay Glacier area, Transantarctic Mountains: Onshore to offshore synthesis , 2004 .
[64] A. Ashworth,et al. Palaeontology: A fly in the biogeographic ointment , 2003, Nature.
[65] Alan Ashworth,et al. Fossil weevils (Coleoptera: Curculionidae) from latitude 85‡S Antarctica , 2003 .
[66] A. Ashworth,et al. The first freshwater molluscs from Antarctica , 2003 .
[67] P. Moore. Biogeography: Springboards for springtails , 2002, Nature.
[68] G. Wilson,et al. The Mount Feather Diamicton of the Sirius Group: an accumulation of indicators of Neogene Antarctic glacial and climatic history , 2002 .
[69] R. Kaufmann. INVERTEBRATE SUCCESSION ON AN ALPINE GLACIER FORELAND , 2001 .
[70] H. Miura,et al. Holocene lake sediments and sea-level change at Mt. Riiser-Larsen , 1998 .
[71] H. Miura,et al. Radiocarbon and thermoluminescence ages in the Mt. Riiser-Larsen area, Enderby Land, East Antarctica , 1998 .
[72] K. Lambeck,et al. The melting history of the late Pleistocene Antarctic ice sheet , 1988, Nature.
[73] J. Gressitt. Entomology of Antarctica , 1967 .
[74] L. Brundin. ON THE REAL NATURE OF TRANSANTARCTIC RELATIONSHIPS , , 1965 .
[75] J. Gressitt,et al. Far Southern Animals and Plants , 1965, Nature.