Shi Kaixiang, Wang Qian, Wang Gejiao
State Key Laboratory of Agricultural Microbiology, College of Life Science and Technology, Huazhong Agricultural University, Wuhan, China.
Department of Microbiology and Immunology, Montana State University, Bozeman, MT, United States.
Front Microbiol. 2020 Sep 15;11:569282. doi: 10.3389/fmicb.2020.569282. eCollection 2020.
Arsenic (As) is a metalloid that occurs widely in the environment. The biological oxidation of arsenite [As(III)] to arsenate [As(V)] is considered a strategy to reduce arsenic toxicity and provide energy. In recent years, research interests in microbial As(III) oxidation have been growing, and related new achievements have been revealed. This review focuses on the highlighting of the novel regulatory mechanisms of bacterial As(III) oxidation, the physiological relevance of different arsenic sensing systems and functional relationship between microbial As(III) oxidation and those of chemotaxis, phosphate uptake, carbon metabolism and energy generation. The implication to environmental bioremediation applications of As(III)-oxidizing strains, the knowledge gaps and perspectives are also discussed.
砷(As)是一种广泛存在于环境中的类金属。亚砷酸盐[As(III)]生物氧化为砷酸盐[As(V)]被认为是一种降低砷毒性并提供能量的策略。近年来,对微生物As(III)氧化的研究兴趣不断增加,相关新成果不断涌现。本综述重点突出细菌As(III)氧化的新型调控机制、不同砷传感系统的生理相关性以及微生物As(III)氧化与趋化性、磷酸盐吸收、碳代谢和能量产生之间的功能关系。还讨论了As(III)氧化菌株在环境生物修复应用中的意义、知识空白和研究前景。