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Microbial ecology of deep-sea hypersaline anoxic basins
Author(s) -
Giuseppe Merlino,
Alan Barozzi,
Grégoire Michoud,
David Kamanda Ngugi,
Daniele Daffonchio
Publication year - 2018
Publication title -
fems microbiology ecology
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 1.377
H-Index - 155
eISSN - 1574-6941
pISSN - 0168-6496
DOI - 10.1093/femsec/fiy085
Subject(s) - anoxic waters , water column , biology , chemocline , ecology , oceanography , seawater , biogeochemistry , mediterranean sea , hydrostatic pressure , ecosystem , halophile , microbial ecology , evaporite , paleontology , mediterranean climate , geology , structural basin , physics , bacteria , thermodynamics
Deep hypersaline anoxic basins (DHABs) are unique water bodies occurring within fractures at the bottom of the sea, where the dissolution of anciently buried evaporites created dense anoxic brines that are separated by a chemocline/pycnocline from the overlying oxygenated deep-seawater column. DHABs have been described in the Gulf of Mexico, the Mediterranean Sea, the Black Sea and the Red Sea. They are characterized by prolonged historical separation of the brines from the upper water column due to lack of mixing and by extreme conditions of salinity, anoxia, and relatively high hydrostatic pressure and temperatures. Due to these combined selection factors, unique microbial assemblages thrive in these polyextreme ecosystems. The topological localization of the different taxa in the brine-seawater transition zone coupled with the metabolic interactions and niche adaptations determine the metabolic functioning and biogeochemistry of DHABs. In particular, inherent metabolic strategies accompanied by genetic adaptations have provided insights on how prokaryotic communities can adapt to salt-saturated conditions. Here, we review the current knowledge of the diversity, genomics, metabolisms and ecology of prokaryotes in DHABs.

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