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极端嗜酸菌嗜热硫化氧化硫杆菌的适应性进化可能由水平基因转移和基因丢失驱动

Adaptive Evolution of Extreme Acidophile Sulfobacillus thermosulfidooxidans Potentially Driven by Horizontal Gene Transfer and Gene Loss.

作者信息

Zhang Xian, Liu Xueduan, Liang Yili, Guo Xue, Xiao Yunhua, Ma Liyuan, Miao Bo, Liu Hongwei, Peng Deliang, Huang Wenkun, Zhang Yuguang, Yin Huaqun

机构信息

School of Minerals Processing and Bioengineering, Central South University, Changsha, China.

Key Laboratory of Biometallurgy of Ministry of Education, Central South University, Changsha, China.

出版信息

Appl Environ Microbiol. 2017 Mar 17;83(7). doi: 10.1128/AEM.03098-16. Print 2017 Apr 1.

Abstract

Recent phylogenomic analysis has suggested that three strains isolated from different copper mine tailings around the world were taxonomically affiliated with Here, we present a detailed investigation of their genomic features, particularly with respect to metabolic potentials and stress tolerance mechanisms. Comprehensive analysis of the genomes identified a core set of essential genes with specialized biological functions in the survival of acidophiles in their habitats, despite differences in their metabolic pathways. The strains also showed evidence for stress management, thereby enabling them to efficiently respond to harsh environments. Further analysis of metabolic profiles provided novel insights into the presence of genomic streamlining, highlighting the importance of gene loss as a main mechanism that potentially contributes to cellular economization. Another important evolutionary force, especially in larger genomes, is gene acquisition via horizontal gene transfer (HGT), which might play a crucial role in the recruitment of novel functionalities. Also, a successful integration of genes acquired from archaeal donors appears to be an effective way of enhancing the adaptive capacity to cope with environmental changes. Taken together, the findings of this study significantly expand the spectrum of HGT and genome reduction in shaping the evolutionary history of strains. Horizontal gene transfer (HGT) and gene loss are recognized as major driving forces that contribute to the adaptive evolution of microbial genomes, although their relative importance remains elusive. The findings of this study suggest that highly frequent gene turnovers within microorganisms via HGT were necessary to incur additional novel functionalities to increase the capacity of acidophiles to adapt to changing environments. Evidence also reveals a fascinating phenomenon of potential cross-kingdom HGT. Furthermore, genome streamlining may be a critical force in driving the evolution of microbial genomes. Taken together, this study provides insights into the importance of both HGT and gene loss in the evolution and diversification of bacterial genomes.

摘要

最近的系统基因组分析表明,从世界各地不同铜矿尾矿中分离出的三株菌株在分类学上隶属于。在此,我们对它们的基因组特征进行了详细研究,特别是关于代谢潜力和应激耐受机制。对这些基因组的综合分析确定了一组核心必需基因,这些基因在嗜酸菌在其栖息地生存中具有特定的生物学功能,尽管它们的代谢途径存在差异。这些菌株还显示出应激管理的证据,从而使它们能够有效应对恶劣环境。对代谢谱的进一步分析为基因组精简的存在提供了新的见解,突出了基因丢失作为一种可能有助于细胞节约的主要机制的重要性。另一个重要的进化力量,尤其是在较大的基因组中,是通过水平基因转移(HGT)获得基因,这可能在招募新功能方面发挥关键作用。此外,成功整合从古菌供体获得的基因似乎是增强应对环境变化适应能力的有效途径。综上所述,本研究的结果显著扩展了HGT和基因组缩减在塑造菌株进化历史中的范围。水平基因转移(HGT)和基因丢失被认为是微生物基因组适应性进化的主要驱动力,尽管它们的相对重要性仍然难以捉摸。本研究的结果表明,微生物通过HGT进行的高度频繁的基因周转对于产生额外的新功能以增加嗜酸菌适应不断变化环境的能力是必要的。证据还揭示了潜在的跨界HGT这一引人入胜的现象。此外,基因组精简可能是推动微生物基因组进化的关键力量。综上所述,本研究提供了关于HGT和基因丢失在细菌基因组进化和多样化中的重要性的见解。

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