首页> 外文期刊>The ISME journal emultidisciplinary journal of microbial ecology >Modular community structure suggests metabolic plasticity during the transition to polar night in ice-covered Antarctic lakes
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Modular community structure suggests metabolic plasticity during the transition to polar night in ice-covered Antarctic lakes

机译:模块化的群落结构表明,在冰雪覆盖的南极湖泊过渡至极夜期间,代谢可塑性

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摘要

High-latitude environments, such as the Antarctic McMurdo Dry Valley lakes, are subject to seasonally segregated light-dark cycles, which have important consequences for microbial diversity and function on an annual basis. Owing largely to the logistical difficulties of sampling polar environments during the darkness of winter, little is known about planktonic microbial community responses to the cessation of photosynthetic primary production during the austral sunset, which lingers from approximately February to April. Here, we hypothesized that changes in bacterial, archaeal and eukaryotic community structure, particularly shifts in favor of chemolithotrophs and mixotrophs, would manifest during the transition to polar night. Our work represents the first concurrent molecular characterization, using 454 pyrosequencing of hypervariable regions of the small-subunit ribosomal RNA gene, of bacterial, archaeal and eukaryotic communities in permanently ice-covered lakes Fryxell and Bonney, before and during the polar night transition. We found vertically stratified populations that varied at the community and/or operational taxonomic unit-level between lakes and seasons. Network analysis based on operational taxonomic unit level interactions revealed nonrandomly structured microbial communities organized into modules (groups of taxa) containing key metabolic potential capacities, including photoheterotrophy, mixotrophy and chemolithotrophy, which are likely to be differentially favored during the transition to polar night.
机译:高纬度环境(例如南极麦克默多干谷湖)受到季节性隔离的明暗循环的影响,每年对微生物的多样性和功能产生重要影响。由于在冬季的黑暗中采样极地环境在后勤方面的困难,所以人们对浮游微生物群落对南方日落期间光合作用初级生产力停止的反应知之甚少,该现象大约在2月至4月徘徊。在这里,我们假设细菌,古细菌和真核生物群落结构的变化,尤其是向化学营养型和混合营养型的转变,将在向极夜过渡的过程中表现出来。我们的工作代表了首次并发分子表征,在极夜过渡之前和期间,使用永久冰覆盖的弗莱克塞尔湖和邦尼湖中细菌,古细菌和真核生物小亚基核糖体RNA基因高变区的454焦磷酸测序。我们发现垂直分层的种群在湖泊和季节之间在社区和/或业务分类单位层次上有所不同。基于操作性生物分类单位水平相互作用的网络分析显示,非随机结构的微生物群落组织成模块(分类单元),包含重要的潜在代谢能力,包括光异养,混养和化肥,在向极夜过渡期间可能受到不同的偏爱。

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