Arsenic-resistance mechanisms in bacterium Leclercia adecarboxylata strain As3-1: Biochemical and genomic analyses

Microbial arsenic transformation is important in As biogeochemical cycles in the environment. In this study, a new As-resistant bacterial strain Leclercia adecarboxylata As3-1 was isolated and its associated mechanisms in As resistance and detoxification were evaluated based on genome sequencing and...

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Veröffentlicht in:The Science of the total environment 2019-11, Vol.690, p.1178-1189
Hauptverfasser: Han, Yong-He, Yin, Dai-Xia, Jia, Meng-Ru, Wang, Shan-Shan, Chen, Yanshan, Rathinasabapathi, Bala, Chen, Deng-Long, Ma, Lena Q.
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Sprache:eng
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Zusammenfassung:Microbial arsenic transformation is important in As biogeochemical cycles in the environment. In this study, a new As-resistant bacterial strain Leclercia adecarboxylata As3-1 was isolated and its associated mechanisms in As resistance and detoxification were evaluated based on genome sequencing and gene annotations. After subjecting strain As3-1 to medium containing arsenate (AsV), AsV reduction occurred and an AsV-enhanced bacterial growth was observed. Strain As3-1 lacked arsenite (AsIII) oxidation ability and displayed lower AsIII resistance than AsV, probably due to its higher AsIII accumulation. Polymerase chain reaction and phylogenetic analysis showed that strain As3-1 harbored a typical AsV reductase gene (arsC) on the plasmids. Genome sequencing and gene annotations identified four operons phoUpstBACS, arsHRBC, arsCRDABC and ttrRSBCA, with 8 additional genes outside the operons that might have involved in As resistance and detoxification in strain As3-1. These included 5 arsC genes explaining why strain As3-1 tolerated high AsV concentrations. Besides ArsC, TtrB, TtrC and TtrA proteins could also be involved in AsV reduction and consequent energy acquisition for bacterial growth. Our data provided a new example of diverse As-regulating systems and AsV-enhanced growth without ArrA in bacteria. The information helps to understand the role of As in selecting microbial systems that can transform and utilize As. [Display omitted] •As-resistance mechanisms in L. adecarboxylata As3-1 were reported first time.•Arsenate-enhanced growth was found in strain As3-1.•Draft genome sequencing and gene annotations were performed.•Four operons associated with As resistance and detoxification were identified.
ISSN:0048-9697
1879-1026
DOI:10.1016/j.scitotenv.2019.07.098