Department of Microbiology and Immunology, Montana State University, Bozeman, MT 59717, USA.
Department of Land Resources and Environmental Sciences, Montana State University, Bozeman, MT 59717, USA.
Environ Microbiol. 2019 Aug;21(8):2659-2676. doi: 10.1111/1462-2920.14577. Epub 2019 Apr 16.
In environments where arsenic and microbes coexist, microbes are the principal drivers of arsenic speciation, which directly affects bioavailability, toxicity and bioaccumulation. Speciation reactions influence arsenic behaviour in environmental systems, directly affecting human and agricultural exposures. Arsenite oxidation decreases arsenic toxicity and mobility in the environment, and therefore understanding its regulation and overall influence on cellular metabolism is of significant interest. The arsenite oxidase (AioBA) is regulated by a three-component signal transduction system AioXSR, which is in turn regulated by the phosphate stress response, with PhoR acting as the master regulator. Using RNA-sequencing, we characterized the global effects of arsenite on gene expression in Agrobacterium tumefaciens 5A. To further elucidate regulatory controls, mutant strains for histidine kinases PhoR and AioS were employed, and illustrate that in addition to arsenic metabolism, a host of other functional responses are regulated in parallel. Impacted functions include arsenic and phosphate metabolism, carbohydrate metabolism, solute transport systems and iron metabolism, in addition to others. These findings contribute significantly to the current understanding of the metabolic impact and genetic circuitry involved during arsenite exposure in bacteria. This informs how arsenic contamination will impact microbial activities involving several biogeochemical cycles in nature.
在砷和微生物共存的环境中,微生物是砷形态形成的主要驱动因素,这直接影响生物利用度、毒性和生物累积。形态反应影响环境系统中的砷行为,直接影响人类和农业暴露。亚砷酸盐的氧化降低了环境中砷的毒性和迁移性,因此了解其调节作用及其对细胞代谢的整体影响具有重要意义。亚砷酸盐氧化酶(AioBA)受三组分信号转导系统 AioXSR 调节,而该系统又受磷酸盐应激反应调节,PhoR 作为主调控因子。通过 RNA 测序,我们描述了 Agrobacterium tumefaciens 5A 中砷对基因表达的全局影响。为了进一步阐明调控控制,我们使用了组氨酸激酶 PhoR 和 AioS 的突变株,并表明除了砷代谢外,许多其他功能反应也同时受到调节。受影响的功能包括砷和磷酸盐代谢、碳水化合物代谢、溶质转运系统和铁代谢,以及其他功能。这些发现为当前理解细菌中亚砷酸盐暴露过程中的代谢影响和遗传电路提供了重要依据。这说明了砷污染将如何影响涉及自然界中几个生物地球化学循环的微生物活动。