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比较蛋白质基因组学揭示了关于有机卤呼吸菌株T的生态和进化见解。

Comparative proteogenomics reveals ecological and evolutionary insights into the organohalide-respiring strain T.

作者信息

Li Xiaocui, Li Xiuying, Jin Huijuan, Wang Jingjing, Yu Lian, Yan Jun, Yang Yi

机构信息

Key Laboratory of Pollution Ecology and Environmental Engineering, Institute of Applied Ecology, Chinese Academy of Sciences, Shenyang, Liaoning, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

Appl Environ Microbiol. 2025 Apr 23;91(4):e0171924. doi: 10.1128/aem.01719-24. Epub 2025 Mar 14.

Abstract

1,1,1-Trichloroethane (1,1,1-TCA) and chloroform (CF) are persistent groundwater contaminants because of their widespread industrial use as organic solvents and improper disposal in the past. Obligate organohalide-respiring bacteria (OHRB), such as (), play crucial roles in biotransforming and detoxifying natural or anthropogenic halogenated organics including 1,1,1-TCA and CF through reductive dechlorination. Despite their significance, only five strains have been associated with the reductive dechlorination of 1,1,1-TCA or CF. Therefore, cultivating and characterizing novel strains from various environments of different origins worldwide is crucial for understanding the ecology and evolution of and the associated reductive dehalogenase (RDase) genes. This study reports the enrichment and investigation of a novel population capable of reducing 1,1,1-TCA to 1,1-dichloroethane, CF to dichloromethane, 1,1,2-TCA to vinyl chloride/1,2-dichloroethane, and 1,2,4-trichlorobenzene to 1,2-dichlorobenzene. The capability for dechlorinating both aliphatic and aromatic compounds was observed for the first time in the sediment sourced from the Xi River situated in the North China Plain. Comparative genomic analysis of strains revealed genome contraction might have resulted in the loss of various gene family members, contributing to the syntrophy interactions (e.g., cobalamin, hydrogen, and acetate) of with other anaerobes (e.g., fermenters and acetogens). Proteogenomic and phylogenetic analysis confirmed the highly expressed 1,1,1-TCA/CF-dechlorinating RDase, designated as TcaA, shared 94.7-96.7% amino acid sequence similarities with RDases, such as ThmA, CfrA, and TmrA. This study expands knowledge on biogeography and evolution while providing insights into potential syntrophy interactions supporting organohalide respiration by . The findings have implications for developing the novel biotechnologies for the remediation of halogenated alkane-contaminated sites.IMPORTANCEOrganohalide-respiring bacteria (OHRB) are essential for breaking down harmful pollutants in the environment. This study investigates a newly discovered OHRB capable of degrading multiple contaminants, including persistent 1,1,1-trichloroethane and chloroform. By understanding its unique abilities and interactions with other microbes, we gain valuable insights into how these bacteria evolve and function, enabling the development of improved bioremediation strategies to clean up polluted sites.

摘要

1,1,1-三氯乙烷(1,1,1-TCA)和氯仿(CF)是持久性地下水污染物,因为它们过去作为有机溶剂被广泛用于工业且处置不当。专性有机卤化物呼吸细菌(OHRB),如(此处原文缺失具体菌株名称),在通过还原脱氯对包括1,1,1-TCA和CF在内的天然或人为来源的卤代有机物进行生物转化和解毒过程中发挥着关键作用。尽管它们很重要,但仅有五株(此处原文缺失具体菌株名称)菌株与1,1,1-TCA或CF的还原脱氯有关。因此,从全球不同来源的各种环境中培养和鉴定新型(此处原文缺失具体菌株名称)菌株对于理解(此处原文缺失具体菌株名称)及其相关还原脱卤酶(RDase)基因的生态学和进化至关重要。本研究报告了对一个新型(此处原文缺失具体菌株名称)菌群的富集和研究,该菌群能够将1,1,1-TCA还原为1,1-二氯乙烷,将CF还原为二氯甲烷,将1,1,2-TCA还原为氯乙烯/1,2-二氯乙烷,以及将1,2,4-三氯苯还原为1,2-二氯苯。在中国华北平原的西江沉积物中首次观察到同时具有脱氯脂肪族和芳香族化合物的能力。对(此处原文缺失具体菌株名称)菌株的比较基因组分析表明,基因组收缩可能导致了各种基因家族成员的丢失,这有助于(此处原文缺失具体菌株名称)与其他厌氧菌(如发酵菌和产乙酸菌)之间的互营相互作用(如钴胺素氢和乙酸)。蛋白质基因组学和系统发育分析证实,高度表达的1,1,1-TCA/CF脱氯RDase(命名为TcaA)与ThmA、CfrA和TmrA等RDase的氨基酸序列相似性为94.7%-96.7%。本研究扩展了对(此处原文缺失具体菌株名称)生物地理学和进化的认识,同时为支持(此处原文缺失具体菌株名称)进行有机卤化物呼吸的潜在互营相互作用提供了见解。这些发现对于开发修复卤代烷污染场地的新型生物技术具有重要意义。

重要性

有机卤化物呼吸细菌(OHRB)对于分解环境中的有害污染物至关重要。本研究调查了一种新发现的能够降解多种污染物(包括持久性的1,1,1-三氯乙烷和氯仿)的OHRB。通过了解其独特能力以及与其他微生物的相互作用,我们对这些细菌如何进化和发挥功能有了宝贵的认识,从而能够开发出改进的生物修复策略来清理污染场地。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a492/12016555/e8b96f07232e/aem.01719-24.f001.jpg

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