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Anaerobic oxidation of methane in hypersaline cold seep sediments

机译:高盐冷渗沉积物中甲烷的厌氧氧化

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摘要

Life in hypersaline environments is typically limited by bioenergetic constraints. Microbial activity at the thermodynamic edge, such as the anaerobic oxidation of methane (AOM) coupled to sulphate reduction (SR), is thus unlikely to thrive in these environments. In this study, carbon and sulphur cycling was investigated in the extremely hypersaline cold seep sediments of Mercator mud volcano. AOM activity was partially inhibited but still present at salinity levels of 292 g L~(-1) (c. eightfold sea water concentration) with rates of 2.3 nmol cm~(-3) day~(-1) and was even detectable under saturated conditions. Methane and evaporite-derived sulphate comigrated in the ascending geofluids, which, in combination with a partial activity inhibition, resulted in AOM activity being spread over unusually wide depth intervals. Up to 79% of total cells in the AOM zone were identified by fluorescence in situ hybridization (FISH) as anaerobic methanotrophs of the ANME-1. Most ANME-1 cells formed monospecific chains without any attached partner. At all sites, AOM activity co-occurred with SR activity and sometimes significantly exceeded it. Possible causes of these unexpected results are discussed. This study demonstrates that in spite of a very low energy yield of AOM, microorganisms carrying this reaction can thrive in salinity up to halite saturation.
机译:高盐环境下的生活通常受到生物能限制。因此,在热力学边缘的微生物活性,例如与厌氧硫酸盐还原(SR)耦合的甲烷厌氧氧化(AOM),在这些环境中不太可能蓬勃发展。在这项研究中,研究了墨卡托泥火山的超高盐冷渗沉积物中的碳和硫循环。 AOM活性被部分抑制,但仍以292 g L〜(-1)(约8倍海水浓度)的盐度水平存在,速率为2.3 nmol cm〜(-3)day〜(-1),甚至在饱和条件。甲烷和蒸发物衍生的硫酸盐存在于上升的地流体中,结合部分活性抑制作用,导致AOM活性分布在异常宽的深度范围内。通过荧光原位杂交(FISH)将AOM区中多达79%的总细胞鉴定为ANME-1的厌氧甲烷菌。大多数ANME-1细胞形成单特异性链而没有任何附着伴侣。在所有地点,AOM活动都与SR活动同时发生,有时甚至大大超过了它。讨论了这些意外结果的可能原因。这项研究表明,尽管AOM的能量产率非常低,但进行此反应的微生物仍可以在盐度中壮成长,直至达到盐岩饱和。

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