Cenozoic climatic changes drive evolution and dispersal of coastal benthic foraminifera in the Southern Ocean | Scientific Reports – Nature.com

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Thomson, M. R. A. Geological and palaeoenvironmental history of the Scotia Sea region as a basis for biological interpretation. Deep Sea Res. II 51, 14671487 (2004).

Article ADS Google Scholar

Maldonado, A. et al. A model of oceanic development by ridge jumping: Opening of the Scotia Sea. Glob. Planet. Change 123, 152173 (2014).

Article ADS Google Scholar

Crame, J. A. Key stages in the evolution of the Antarctic marine fauna. J. Biogeogr. 45, 986994 (2018).

Article Google Scholar

Scher, H. D. & Martin, E. E. Timing and climatic consequences of the opening of the Drake Passage. Science 312, 428430 (2006).

CAS PubMed Article ADS Google Scholar

Eagles, G., Livermore, R. & Morris, P. Small basins in the Scotia Sea: the Eocene Drake passage gateway. Earth Planet. Sci. Lett. 242, 343353 (2006).

CAS Article ADS Google Scholar

De Conto, R. M. & Pollard, D. Rapid Cenozoic glaciation of Antarctica induced by declining atmospheric CO2. Nature 421, 245249 (2003).

Article ADS CAS Google Scholar

Anderson, J. B. et al. Progressive Cenozoic cooling and the demise of Antarcticas last refugium. Proc. Natl. Acad. Sci. USA. 108, 1135611360 (2011).

CAS PubMed PubMed Central Article ADS Google Scholar

Arntz, W. E. Magellan-Antarctic: ecosystems that drifted apart. Summary review. Sci. Mar. 3(Suppl. 1), 503511 (1999).

Article Google Scholar

Zachos, J., Pagani, M., Sloan, L., Thomas, E. & Billups, K. Trends, rhythms, and Aberrations in global climate 65 Ma to present. Science 292, 686693 (2001).

CAS PubMed Article ADS Google Scholar

Dalziel, I. W. D. et al. A potential barrier to deep Antarctic circumpolar flow until the Late Miocene?. Geology 41, 947950 (2013).

CAS Article ADS Google Scholar

Anderson, J. B. et al. Ross Sea paleo-ice sheet drainage and deglacial history during and since the LGM. Quat. Sci. Rev. 100, 3154 (2014).

Article ADS Google Scholar

Klages, J. P. et al. Limited grounding-line advance onto the West Antarctic continental shelf in the easternmost Amundsen Sea Embayment during the last glacial period. PLoS ONE 12, e0181593 (2017).

PubMed PubMed Central Article CAS Google Scholar

Thatje, S., Hillenbrand, C. D. & Larter, R. On the origin of Antarctic marine benthic community structure. Trends Ecol. Evol. 20, 534540 (2005).

PubMed Article Google Scholar

Fraser, C., Terauds, A., Smellie, J. L., Convey, P. & Chown, S. L. Geothermal activity helps life survive glacial cycles. Proc. Natl. Acad. Sci. USA. 111, 56345639 (2014).

CAS PubMed PubMed Central Article ADS Google Scholar

Lau, S. C. Y., Wilson, N. G., Silva, C. N. S. & Strugnell, J. M. Detecting glacial refugia in the Southern Ocean. Ecography 43, 16391656 (2020).

Article Google Scholar

Naish, T. et al. Obliquity-paced Pliocene West Antarctic ice sheet oscillations. Nature 458, 322328 (2009).

CAS PubMed Article ADS Google Scholar

Clarke, A., Crame, J. A., Stromberg, J.-O. & Barker, P. F. The Southern Ocean benthic fauna and climate change: A historical perspective [and discussion]. Phil. Trans. R. Soc. B 338, 299309 (1992).

Article ADS Google Scholar

Clarke, A. & Crame, J. A. Evolutionary dynamics at high latitudes: speciation and extinction in polar marine faunas. Phil. Trans. R. Soc. B 365, 36553666 (2010).

PubMed PubMed Central Article Google Scholar

Barnes, D. K. A. & Conlan, K. E. Disturbance, colonization and development of Antarctic benthic communities. Philos. Trans. R. Soc. B 362, 1138 (2007).

Article Google Scholar

Crame, J. A. An evolutionary perspective on marine faunal connections between southernmost South America and Antarctica. Sci. Mar. 63(Suppl 1), 114 (1999).

Article Google Scholar

Aronson, R. B. & Blake, D. B. Global climate change and the origin of modern benthic communities in Antarctica. Am. Zool. 41, 2739 (2001).

Google Scholar

Clarke, A., Aronson, R. B., Crame, A., Gili, J. M. & Blake, D. B. Evolution and diversity of the benthic fauna of the Southern Ocean continental shelf. Antarct. Sci. 16, 559568 (2004).

Article ADS Google Scholar

Aronson, R. B. et al. Climate change and trophic response of the Antarctic Bottom Fauna. PLoS ONE 4, e4385 (2009).

PubMed PubMed Central Article ADS CAS Google Scholar

Brandt, A. et al. First insights into the biodiversity and biogeography of the Southern Ocean deep sea. Nature 447, 307311 (2007).

CAS PubMed Article ADS Google Scholar

Orsi, A. H., Whitworth, T. W. & Nowlin, W. D. On the meridional extent and fronts of the Antarctic Circumpolar Current. Deep-Sea Res. I(42), 641673 (1995).

Article Google Scholar

Mikhalevich, V. I. The general aspects of the distribution of Antarctic foraminifera. Micropaleontology 50, 179194 (2004).

Google Scholar

Gooday, A. J., Rothe, N., Bowser, S. S. & Pawlowski, J. Benthic foraminifera. Biogeographic atlas of the Southern Ocean (ed. De Broyer, C. et al.) 7482 (SCAR Publications, 2014).

Heron-Allen, E. & Earland, A. Foraminifera. Part I. The ice-free area of the Falkland Islands and adjacent seas. Discov. Rep. 4, 291460 (1932).

Google Scholar

Earland, A. Foraminifera, Part II, South Georgia. Discov. Rep. 7, 27138 (1933).

Google Scholar

Herb, R. Distribution of recent benthonic foraminifer in the Drake Passage. AGU Antarct. Res. Ser. 17, 251300 (1971).

Google Scholar

Thompson, L. Distribution of living benthic foraminifera, Isla de los Estados, Tierra del Fuego, Argentina. J. Foraminiferal Res. 8, 241257 (1978).

Article ADS Google Scholar

Dejardin, R. et al. Live stained) benthic foraminiferal living depths, stable isotopes, and taxonomy offshore South Georgia, Southern Ocean: Implications for calcification depths. J. Micropalaeontol. 37, 2571 (2018).

Article ADS Google Scholar

Arellano, F., Quezada, L. & Olave, C. Familia Cassidulinidae (Protozoa: Foraminiferida) en canales y fiordos patagnicos chilenos. An. Inst. Patagon. 39, 4765 (2011).

Article CAS Google Scholar

Hald, M. & Korsun, S. Distribution of modern benthic foraminifera from fjords of Svalbard, European Artic. J. Foraminiferal Res. 27, 101122 (1997).

Article Google Scholar

Majewski, W., Bart, P. J. & McGlannan, A. J. Foraminiferal assemblages from ice-proximal paleo-settings in the Whales Deep Basin, eastern Ross Sea, Antarctica. Palaeogeogr. Palaeoclimatol. Palaeoecol. 493, 6481 (2018).

Article Google Scholar

Majewski, W., Prothro, L. O., Simkins, L. M., Demianiuk, E. J. & Anderson, J. B. Foraminiferal patterns in deglacial sediment in the western Ross Sea, Antarctica: Life near grounding lines. Paleoceanogr. Paleoclimatol. 35, 003716 (2020).

Article Google Scholar

Majewski, W. & Anderson, J. B. Holocene foraminiferal assemblages from Firth of Tay, Antarctic Peninsula: Paleoclimate implications. Mar. Micropaleontol. 73, 135147 (2009).

Article ADS Google Scholar

Kilfeather, A. A. et al. Ice-stream retreat and ice-shelf history in Marguerite Trough, Antarctic Peninsula: Sedimentological and foraminiferal signatures. Geol. Soc. Am. Bull. 123, 9971015 (2011).

CAS Article ADS Google Scholar

Hillenbrand, C. D. et al. West antarctic ice sheet retreat driven by Holocene warm water incursions. Nature 547, 4348 (2017).

CAS PubMed PubMed Central Article ADS Google Scholar

Leckie, R. M. & Webb, P. N. Late Paleogene and early Neogene foraminifers of deep sea drilling project site 270, Ross Sea, Antarctica. Initial Reports of the Deep Sea Drilling Project. Leg 90 (ed. Kennett, J. P. et al.) 10931118 (US Government Printing Office, 1986).

Coccioni, R. & Galeotti, S. Foraminiferal biostratigraphy and paleoecology of the CIROS-1 core from McMurdo Sound (Ross Sea, Antarctica). Terra Antartica 4, 103117 (1997).

Google Scholar

Webb, P.-N. & Strong, C. P. Recycled Pliocene foraminifera from the CRP-1 Quaternary succession. Terra Antartica 5, 473478 (1998).

Google Scholar

Patterson, M. O. & Ishman, S. E. Neogene benthic foraminiferal assemblages and paleoenvironmetal record for McMurdo Sound, Antarctica. Geosphere 8, 13311341 (2012).

Article Google Scholar

Gadzicki, A. & Webb, P. N. Foraminifera from the Pecten Conglomerate (Pliocene) of Cockburn Island, Antarctic Peninsula. Palaeontol. Pol. 55, 147174 (1996).

Google Scholar

Gadzicki, A. & Majewski, W. Foraminifera from the Eocene La Meseta Formation of Isla Marambio (Seymour Island), Antarctic Peninsula. Antarct. Sci. 24, 408416 (2012).

Article ADS Google Scholar

Carams, A. & Concheyro, A. Late cenozoic foraminifera from diamictites of Cape Lamb, Vega Island, Antarctic Peninsula. Ameghiniana 50, 114135 (2013).

Article Google Scholar

Majewski, W. & Gadzicki, A. Shallow water benthic foraminifera from the Polonez Cove Formation (lower Oligocene) of King George Island, West Antarctica. Mar. Micropaleontol. 111, 114 (2014).

Article ADS Google Scholar

Quilty, P. G. Reworked Paleocene and Eocene Foraminifera, Mac. Robertson Shelf, East Antarctica paleoenvironmental implications. J. Foraminiferal Res. 31, 369384 (2001).

Article Google Scholar

Quilty, P. G. Foraminifera from late Pliocene sediments of Heidemann Valley, Vestfold Hills, East Antarctica. J. Foraminiferal Res. 40, 193205 (2010).

Article Google Scholar

Majewski, W., Tatur, A., Witkowski, J. & Gadzicki, A. Rich shallow-water benthic ecosystem in Late Miocene East Antarctica (Fisher Bench Fm, Prince Charles Mountains). Mar. Micropaleontol. 133, 4049 (2017).

Article ADS Google Scholar

Pawlowski, J., Holzmann, M. & Tyszka, J. New supraordinal classification of Foraminifera: Molecules meet morphology. Mar. Micropaleontol. 100, 110 (2013).

Article ADS Google Scholar

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Cenozoic climatic changes drive evolution and dispersal of coastal benthic foraminifera in the Southern Ocean | Scientific Reports - Nature.com

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