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Insights into the Metabolism and Evolution of the Genus Acidiphilium, a Typical Acidophile in Acid Mine Drainage

机译:酸矿排水中典型的嗜酸性酸IPHILIUM属的新陈代谢和演变的见解

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Here, we report three new Acidiphilium genomes, reclassified existing Acidiphilium species, and performed the first comparative genomic analysis on Acidiphilium in an attempt to address the metabolic potential, ecological functions, and evolutionary history of the genus Acidiphilium . In the genomes of Acidiphilium , we found an abundant repertoire of horizontally transferred genes (HTGs) contributing to environmental adaption and metabolic expansion, including genes conferring photosynthesis ( puf, puh ), CO 2 assimilation ( rbc ), capacity for methane metabolism ( mmo, mdh , frm ), nitrogen source utilization ( nar, cyn, hmp ), sulfur compound utilization ( sox, psr, sqr ), and multiple metal and osmotic stress resistance capacities ( czc, cop, ect ). Additionally, the predicted donors of horizontal gene transfer were present in a cooccurrence network of Acidiphilium . Genome-scale positive selection analysis revealed that 15 genes contained adaptive mutations, most of which were multifunctional and played critical roles in the survival of extreme conditions. We proposed that Acidiphilium originated in mild conditions and adapted to extreme environments such as acidic mineral sites after the acquisition of many essential functions. IMPORTANCE Extremophiles, organisms that thrive in extreme environments, are key models for research on biological adaption. They can provide hints for the origin and evolution of life, as well as improve the understanding of biogeochemical cycling of elements. Extremely acidophilic bacteria such as Acidiphilium are widespread in acid mine drainage (AMD) systems, but the metabolic potential, ecological functions, and evolutionary history of this genus are still ambiguous. Here, we sequenced the genomes of three new Acidiphilium strains and performed comparative genomic analysis on this extremely acidophilic bacterial genus. We found in the genomes of Acidiphilium an abundant repertoire of horizontally transferred genes (HTGs) contributing to environmental adaption and metabolic ability expansion, as indicated by phylogenetic reconstruction and gene context comparison. This study has advanced our understanding of microbial evolution and biogeochemical cycling in extreme niches.
机译:在这里,我们报告了三种新的酸纤维基因组,重新分类了现有的酸性物质,并对酸纤维的代谢潜力,生态功能和进化史进行了酸纤维化的第一个比较基因组分析。在酸纤维素的基因组中,我们发现了一种水平转移基因(HTG)的丰富曲目,有助于环境适应和代谢膨胀,包括赋予光合作用的基因(PUF,PUH),CO 2同化(RBC),甲烷代谢能力(MMO, MDH,FRM),氮源利用率(NAR,CYN,HMP),硫复合使用(SOX,PSR,SQR)和多种金属和渗透胁迫阻力容量(CZC,COP,ECT)。另外,存在水平基因转移的预测供体存在于酸纤维素的Cooccurrence网络中。基因组规模阳性选择分析显示,15个基因含有适应性突变,大部分是多功能的,在极端条件的存活中具有多功能的并且发挥着关键作用。我们提出酸纤维化源于温和的条件,并适应极端环境,例如在获取许多基本功能后的酸性矿物部位。重要的Exprophiles,在极端环境中茁壮成长的生物,是生物适应研究的关键模型。他们可以为生命的起源和演变提供暗示,以及改善对元素的生物地球化学循环的理解。酸碘酸等极其嗜酸性细菌在酸性矿渗流(AMD)系统中是普遍的,但该属的代谢潜力,生态功能和进化史仍然存在暧昧。在这里,我们测序了三种新的酸纤维菌株的基因组,并对这种极嗜酸性细菌属进行了比较基因组分析。我们在酸纤维素的基因组中发现了一种水平转移基因(HTGS)的丰富曲目,有助于环境适应和代谢能力膨胀,如系统发育重建和基因上下文比较所示。本研究提出了对极端利基的微生物演化和生物地球化学循环的理解。

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