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首页> 外文期刊>BMC Genomics >Molecular evolution of the hyperthermophilic archaea of the Pyrococcus genus: analysis of adaptation to different environmental conditions
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Molecular evolution of the hyperthermophilic archaea of the Pyrococcus genus: analysis of adaptation to different environmental conditions

机译:火球菌属的超嗜热古菌的分子进化:对不同环境条件的适应性分析

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Background Prokaryotic microorganisms are able to survive and proliferate in severe environmental conditions. The increasing number of complete sequences of prokaryotic genomes has provided the basis for studying the molecular mechanisms of their adaptation at the genomic level. We apply here a computer-based approach to compare the genomes and proteomes from P. furiosus, P. horikoshii, and P. abyssi to identify features of their molecular evolution related to adaptation strategy to diverse environmental conditions. Results Phylogenetic analysis of rRNA genes from 26 Pyrococcus strains suggested that the divergence of P. furiosus, P. horikoshii and P. abyssi might have occurred from ancestral deep-sea organisms. It was demonstrated that the function of genes that have been subject to positive Darwinian selection is closely related to abiotic and biotic conditions to which archaea managed to become adapted. Divergence of the P. furiosus archaea might have been due to loss of some genes involved in cell motility or signal transduction, and/or to evolution under positive selection of the genes for translation machinery. In the course of P. horikoshii divergence, positive selection was found to operate mainly on the transcription machinery; divergence of P. abyssi was related with positive selection for the genes mainly involved in inorganic ion transport. Analysis of radical amino acid replacement rate in evolving P. furiosus, P. horikoshii and P. abyssi showed that the fixation rate was higher for radical substitutions relative to the volume of amino acid side-chain. Conclusions The current results give due credit to the important role of hydrostatic pressure as a cause of variability in the P. furiosus, P. horikoshii and P. abyssi genomes evolving in different habitats. Nevertheless, adaptation to pressure does not appear to be the sole factor ensuring adaptation to environment. For example, at the stage of the divergence of P. horikoshii and P. abyssi, an essential evolutionary role may be assigned to changes in the trophic chain, namely, acquisition of a consumer status at a high (P. horikoshii) or low level (P. abyssi).
机译:背景技术原核微生物能够在恶劣的环境条件下生存和繁殖。越来越多的原核生物基因组完整序列为在基因组水平研究其适应的分子机制提供了基础。我们在这里应用一种基于计算机的方法,比较来自P. furiosus,P。horikoshii和P. abyssi的基因组和蛋白质组,以识别其分子进化特征,以适应各种环境条件。结果对26种热球菌菌株rRNA基因的系统进化分析表明,祖先深海生物可能引起了P. furiosus,P。horikoshii和P. abyssi的分化。事实证明,经历了达尔文正选择的基因的功能与古细菌设法适应的非生物和生物条件密切相关。激烈假单胞菌的发散可能是由于一些参与细胞运动性或信号转导的基因的丢失,和/或由于正向选择用于翻译机制的基因而导致的进化。在P. horikoshii分歧的过程中,发现正选择主要在转录机制上起作用;深海假单胞菌的发散与主要参与无机离子转运的基因的阳性选择有关。分析进化中的P. furiosus,P。horikoshii和P. abyssi中的自由基氨基酸替代率,结果表明,相对于氨基酸侧链的体积,自由基替代的固定率更高。结论目前的结果应归因于静水压力作为引起不同生境进化的P. furiosus,P。horikoshii和P. abyssi基因组变异的重要作用。然而,适应压力似乎并不是确保适应环境的唯一因素。例如,在P. horikoshii和P. abyssi分离的阶段,可以将基本的进化角色分配给营养链中的变化,即获得高水平(P. horikoshii)或低水平的消费者身份(P.abyssi)。

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