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Adaptations to Submarine Hydrothermal Environments Exemplified by the Genome of Nautilia profundicola

机译:以Proutilicola鹦鹉螺基因组为例的海底热液环境适应

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摘要

Submarine hydrothermal vents are model systems for the Archaean Earth environment, and some sites maintain conditions that may have favored the formation and evolution of cellular life. Vents are typified by rapid fluctuations in temperature and redox potential that impose a strong selective pressure on resident microbial communities. Nautilia profundicola strain Am-H is a moderately thermophilic, deeply-branching Epsilonproteobacterium found free-living at hydrothermal vents and is a member of the microbial mass on the dorsal surface of vent polychaete, Alvinella pompejana. Analysis of the 1.7-Mbp genome of N. profundicola uncovered adaptations to the vent environment—some unique and some shared with other Epsilonproteobacterial genomes. The major findings included: (1) a diverse suite of hydrogenases coupled to a relatively simple electron transport chain, (2) numerous stress response systems, (3) a novel predicted nitrate assimilation pathway with hydroxylamine as a key intermediate, and (4) a gene (rgy) encoding the hallmark protein for hyperthermophilic growth, reverse gyrase. Additional experiments indicated that expression of rgy in strain Am-H was induced over 100-fold with a 20°C increase above the optimal growth temperature of this bacterium and that closely related rgy genes are present and expressed in bacterial communities residing in geographically distinct thermophilic environments. N. profundicola, therefore, is a model Epsilonproteobacterium that contains all the genes necessary for life in the extreme conditions widely believed to reflect those in the Archaean biosphere—anaerobic, sulfur, H2- and CO2-rich, with fluctuating redox potentials and temperatures. In addition, reverse gyrase appears to be an important and common adaptation for mesophiles and moderate thermophiles that inhabit ecological niches characterized by rapid and frequent temperature fluctuations and, as such, can no longer be considered a unique feature of hyperthermophiles.
机译:水下热液喷口是古生地球环境的模型系统,某些站点保持的条件可能有利于细胞生命的形成和演化。通风口的典型特征是温度和氧化还原电势的快速波动,这会对居民微生物群落施加强大的选择压力。 fund鱼鹦鹉螺菌株Am-H是嗜热的,深分支的Epsilon变形杆菌,在热液喷口处自由生活,是喷口多毛Al(Alvinella pompejana)背表面微生物群的成员。对profundicola 1.7-Mbp基因组的分析揭示了其对通风环境的适应性—一些独特,一些与其他Epsilon变形细菌基因组共享。主要发现包括:(1)与相对简单的电子传输链相连的各种氢化酶,(2)众多的应激反应系统,(3)以羟胺为关键中间体的新型预计硝酸盐同化途径,以及(4)编码用于超嗜热生长的标志性蛋白质的逆转录酶(rgy)。另外的实验表明,在该细菌的最佳生长温度之上增加20°C时,Am-H菌株中Rgy的表达被诱导了100倍以上,并且存在紧密相关的rgy基因并在不同地理嗜热菌的细菌群落中表达。环境。因此,profundicola猪笼草是一种Epsilon变形杆菌,它包含在极端条件下生命所必需的所有基因,这些基因被广泛认为反映了古细菌生物圈中的那些基因-厌氧,富硫,H2和CO2丰富,氧化还原电位和温度也有波动。另外,逆转促旋酶似乎是嗜温和中度嗜热菌的重要且普遍的适应性,嗜温菌和中度嗜热菌栖息于以快速且频繁的温度波动为特征的生态位,因此不再被视为嗜热菌的独特特征。

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