Oceanographic structure drives the assembly processes of microbial eukaryotic communities.

ISME J

1] Takuvik Joint International Laboratory, Centre National de la Recherche Scientifique (France, CNRS UMI 3376), and Département de Biologie, Université Laval, Québec, QC, Canada [2] Québec Océan, Université Laval, Québec, QC, Canada [3] Institut de Biologie Intégrative et des Systèmes (IBIS), Université Laval, Québec, QC, Canada [4] Centre d'Études Nordiques (CEN), Université Laval, Québec, QC, Canada.

Published: March 2015

Arctic Ocean microbial eukaryote phytoplankton form subsurface chlorophyll maximum (SCM), where much of the annual summer production occurs. This SCM is particularly persistent in the Western Arctic Ocean, which is strongly salinity stratified. The recent loss of multiyear sea ice and increased particulate-rich river discharge in the Arctic Ocean results in a greater volume of fresher water that may displace nutrient-rich saltier waters to deeper depths and decrease light penetration in areas affected by river discharge. Here, we surveyed microbial eukaryotic assemblages in the surface waters, and within and below the SCM. In most samples, we detected the pronounced SCM that usually occurs at the interface of the upper mixed layer and Pacific Summer Water (PSW). Poorly developed SCM was seen under two conditions, one above PSW and associated with a downwelling eddy, and the second in a region influenced by the Mackenzie River plume. Four phylogenetically distinct communities were identified: surface, pronounced SCM, weak SCM and a deeper community just below the SCM. Distance-decay relationships and phylogenetic structure suggested distinct ecological processes operating within these communities. In the pronounced SCM, picophytoplanktons were prevalent and community assembly was attributed to water mass history. In contrast, environmental filtering impacted the composition of the weak SCM communities, where heterotrophic Picozoa were more numerous. These results imply that displacement of Pacific waters to greater depth and increased terrigenous input may act as a control on SCM development and result in lower net summer primary production with a more heterotroph dominated eukaryotic microbial community.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817713PMC
http://dx.doi.org/10.1038/ismej.2014.197DOI Listing

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