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深海高盐缺氧盆地的微生物生态学。

Microbial ecology of deep-sea hypersaline anoxic basins.

机构信息

King Abdullah University of Science and Technology (KAUST), Red Sea Research Center (RSRC), Thuwal 23955-6900, Saudi Arabia.

出版信息

FEMS Microbiol Ecol. 2018 Jul 1;94(7). doi: 10.1093/femsec/fiy085.

Abstract

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.

摘要

深海超盐缺氧盆地(DHABs)是一种独特的水体,存在于海底裂缝中,由于古代埋藏的蒸发岩的溶解,形成了密集的缺氧卤水,与上覆的含氧深海水柱通过化变层/密度跃变层隔开。DHABs 已经在墨西哥湾、地中海、黑海和红海等地被描述过。它们的特点是由于缺乏混合作用,卤水与上层水柱的历史分离时间较长,而且盐度、缺氧以及相对较高的静水压力和温度等极端条件也很明显。由于这些综合选择因素,独特的微生物群落在这些多极端生态系统中蓬勃发展。不同分类群在卤水-海水过渡带的拓扑定位,加上代谢相互作用和生态位适应,决定了 DHABs 的代谢功能和生物地球化学。特别是,固有的代谢策略伴随着遗传适应,为人们了解原核生物群落如何适应盐饱和条件提供了线索。在这里,我们综述了 DHABs 中有关原核生物多样性、基因组学、代谢和生态学的现有知识。

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