McMurdo LTER Publications

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2020
Piergallini, B. & W Lyons, B. Analysis of acid-leachable barium, copper, iron, lead, & zinc concentrations in Taylor Valley, Antarctic stream sediments. School of Earth Sciences B.S., (2020).
Kalra, I. et al. Chlamydomonas sp. UWO 241 exhibits high cyclic electron flow and rewired metabolism under high salinity. Plant Physiology (2020). doi:10.1104/pp.19.01280
Obryk, M. K., Doran, P. T., Fountain, A. G., Myers, M. & McKay, C. P. Climate from the McMurdo Dry Valleys, Antarctica, 1986 – 2017: Surface air temperature trends and redefined summer season. Journal of Geophysical Research: Atmospheres (2020). doi:10.1029/2019JD032180
Howkins, A. et al. A digital archive of human activity in the McMurdo Dry Valleys, Antarctica. Earth System Science Data 12, (2020).
Dillon, M. L. et al. Energetic and environmental constraints on the community structure of benthic microbial mats in Lake Fryxell, Antarctica. FEMS Microbiology Ecology 96, (2020).
O'Rourke, A. et al. Astrobiology: Current, Evolving, and Emerging Perspectives (Caister Academic Press, 2020). doi:10.21775/9781912530304.01
Acosta, D. R., Doran, P. T. & Myers, M. GIS tool to predict photosynthetically active radiation in a Dry Valley. Antarctic Science (2020). doi:10.1017/S0954102020000218
Cross, J. M. & Fountain, A. G. Glacial meltwater modeling to simulate lake water budget (1996-2013) in Taylor Valley, Antarctica. Department of Geography M.S., (2020).
van den Hoogen, J. et al. A global database of soil nematode abundance and functional group composition. Scientific Data 7, (2020).
Li, W. et al. Methane production in the oxygenated water column of a perennially ice‐covered Antarctic lake. Limnology and Oceanography 65, (2020).
Echeverría, S., Hausner, M. B., Bambach, N., Vicuña, S. & Suárez, F. Modeling present and future ice covers in two Antarctic lakes. Journal of Glaciology 66, (2020).
Trout‐Haney, J. V., Heindel, R. C. & Virginia, R. A. Picocyanobacterial cells in near‐surface air above terrestrial and freshwater substrates in Greenland and Antarctica. Environmental Microbiology Reports (2020). doi:10.1111/1758-2229.12832
Salvatore, M. R. et al. Remote characterization of photosynthetic communities in the Fryxell basin of Taylor Valley, Antarctica. Antarctic Science (2020). doi:10.1017/S0954102020000176
Antonello, A. & Howkins, A. The rise of technocratic environmentalism: the United States, Antarctica, and the globalisation of the environmental impact statement. Journal of Historical Geography (2020). doi:10.1016/j.jhg.2020.03.004
Bergstrom, A. J., Gooseff, M. N., Myers, M., Doran, P. T. & Cross, J. M. The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica. The Cryosphere 14, 769-788 (2020).
Hirst, C. et al. Silicon isotopes reveal a non-glacial source of silicon to Crescent Stream, McMurdo Dry Valleys, Antarctica. Frontiers in Earth Science 8, (2020).
Lawrence, J., Doran, P. T., Winslow, L. A. & Priscu, J. C. Subglacial brine flow and wind-induced internal waves in Lake Bonney, Antarctica. Antarctic Science (2020). doi:10.1017/S0954102020000036
Schutte, C. A. et al. Vertical stratification and stability of biogeochemical processes in the deep saline waters of Lake Vanda, Antarctica. Limnology and Oceanography 65, (2020).
2019
Cook, G. et al. The Antarctic psychrophiles Chlamydomonas spp. UWO241 and ICE-MDV exhibit differential restructuring of photosystem I in response to iron. Photosynthesis Research 9, (2019).
Lee, C. K. et al. Biotic interactions are an unexpected yet critical control on the complexity of an abiotically driven polar ecosystem. Communications Biology 2, (2019).
E. Shaw, A. & Wall, D. H. Biotic interactions in experimental Antarctic soil microcosms vary with abiotic stress. Soil Systems 3, (2019).
Matula, E. E. Characterizing photobioregenerative technology for simulataneous thermal control and air revitalization of spacecraft and surface habitats. Department of Aerospace Engineering Sciences Ph.D., (2019).
Yue, L., Kong, W., Ji, M., Liu, J. & Morgan-Kiss, R. M. Community response of microbial primary producers to salinity is primarily driven by nutrients in lakes. Science of the Total Environment 696, 134001 (2019).
Hawes, I., Sumner, D. Y. & Jungblut, A. D. The Structure and Function of Aquatic Microbial Communities (Hurst, C. J.) 91 - 120 (Springer International Publishing, 2019). doi:10.1007/978-3-030-16775-2_4
Santibáñez, P. et al. Differential incorporation of bacteria, organic matter, and inorganic ions into lake ice during ice formation. Journal of Geophysical Research: Biogeosciences 124, 585 - 600 (2019).

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