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在一个分层海水湖发生缺氧全混合后,群落从光合硫化物氧化转变为化学硫化物氧化。

Community shift from phototrophic to chemotrophic sulfide oxidation following anoxic holomixis in a stratified seawater lake.

作者信息

Pjevac Petra, Korlević Marino, Berg Jasmine S, Bura-Nakić Elvira, Ciglenečki Irena, Amann Rudolf, Orlić Sandi

机构信息

Department of Molecular Ecology, Max Planck Institute for Marine Microbiology, Bremen, Germany

Center for Marine Research, Ruđer Bošković Institute, Rovinj, Croatia.

出版信息

Appl Environ Microbiol. 2015 Jan;81(1):298-308. doi: 10.1128/AEM.02435-14. Epub 2014 Oct 24.

Abstract

Most stratified sulfidic holomictic lakes become oxygenated after annual turnover. In contrast, Lake Rogoznica, on the eastern Adriatic coast, has been observed to undergo a period of water column anoxia after water layer mixing and establishment of holomictic conditions. Although Lake Rogoznica's chemistry and hydrography have been studied extensively, it is unclear how the microbial communities typically inhabiting the oxic epilimnion and a sulfidic hypolimnion respond to such a drastic shift in redox conditions. We investigated the impact of anoxic holomixis on microbial diversity and microbially mediated sulfur cycling in Lake Rogoznica with an array of culture-independent microbiological methods. Our data suggest a tight coupling between the lake's chemistry and occurring microorganisms. During stratification, anoxygenic phototrophic sulfur bacteria were dominant at the chemocline and in the hypolimnion. After an anoxic mixing event, the anoxygenic phototrophic sulfur bacteria entirely disappeared, and the homogeneous, anoxic water column was dominated by a bloom of gammaproteobacterial sulfur oxidizers related to the GSO/SUP05 clade. This study is the first report of a community shift from phototrophic to chemotrophic sulfide oxidizers as a response to anoxic holomictic conditions in a seasonally stratified seawater lake.

摘要

大多数分层的硫化物完全混合湖在每年的水体循环后会充氧。相比之下,亚得里亚海东岸的罗戈日尼察湖在水层混合和完全混合条件形成后,曾被观测到经历一段水柱缺氧期。尽管对罗戈日尼察湖的化学性质和水文特征已进行了广泛研究,但尚不清楚通常栖息于含氧的表水层和含硫化物的深水层的微生物群落如何应对这种氧化还原条件的剧烈变化。我们用一系列非培养微生物学方法研究了罗戈日尼察湖缺氧完全混合对微生物多样性和微生物介导的硫循环的影响。我们的数据表明该湖的化学性质与现存微生物之间存在紧密联系。在分层期间,厌氧光合硫细菌在化学跃层和深水层占主导地位。一次缺氧混合事件后,厌氧光合硫细菌完全消失,均质的缺氧水柱由与GSO/SUP05进化枝相关的γ-变形菌硫氧化菌大量繁殖主导。本研究首次报道了在季节性分层的海水湖中,作为对缺氧完全混合条件的响应,群落从光合硫化物氧化菌向化能硫化物氧化菌转变。

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