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Publications
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Antoni JS, Almandoz GO, Goldsmit J, et al. (2024) Long-term studies on West Antarctic Peninsula phytoplankton blooms suggest range shifts between temperate and polar species. Global Change Biology. 30: e17238 |
Rodriguez ID, Marina TI, Schloss IR, et al. (2022) Marine food webs are more complex but less stable in sub-Antarctic (Beagle Channel, Argentina) than in Antarctic (Potter Cove, Antarctic Peninsula) regions. Marine Environmental Research. 174: 105561 |
Braeckman U, Pasotti F, Hoffmann R, et al. (2021) Glacial melt disturbance shifts community metabolism of an Antarctic seafloor ecosystem from net autotrophy to heterotrophy. Communications Biology. 4: 148 |
Gutt J, Isla E, Xavier JC, et al. (2020) Antarctic ecosystems in transition - life between stresses and opportunities. Biological Reviews of the Cambridge Philosophical Society |
Almandoz GO, Cefarelli AO, Diodato S, et al. (2019) Harmful phytoplankton in the Beagle Channel (South America) as a potential threat to aquaculture activities. Marine Pollution Bulletin. 145: 105-117 |
Alurralde G, Fuentes VL, Maggioni T, et al. (2019) Role of suspension feeders in antarctic pelagic-benthic coupling: Trophic ecology and potential carbon sinks under climate change. Marine Environmental Research. 152: 104790 |
Kim H, Ducklow HW, Abele D, et al. (2018) Inter-decadal variability of phytoplankton biomass along the coastal West Antarctic Peninsula. Philosophical Transactions. Series a, Mathematical, Physical, and Engineering Sciences. 376 |
Sahade R, Lagger C, Torre L, et al. (2015) Climate change and glacier retreat drive shifts in an Antarctic benthic ecosystem. Science Advances. 1: e1500050 |
Moreau S, Mostajir B, Bélanger S, et al. (2015) Climate change enhances primary production in the western Antarctic Peninsula. Global Change Biology. 21: 2191-205 |
Momo F, Ferrero E, Eöry M, et al. (2006) The whole is more than the sum of its parts: Modeling community-level effects of UVR in marine ecosystems Photochemistry and Photobiology. 82: 903-908 |