4.7 Article

The interaction of ZnO nanoparticles, Cr(VI), and microorganisms triggers a novel ROS scavenging strategy to inhibit microbial Cr(VI) reduction

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JOURNAL OF HAZARDOUS MATERIALS
卷 443, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.jhazmat.2022.130375

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ZnO nanoparticles; Cr(VI) reduction; Pannonibacterphragmitetus BB; ROS scavenging

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This study investigated the interaction of ZnO nanoparticles, Cr(VI), and Pannonibacter phragmitetus BB, and found that ZnO NPs inhibited Cr(VI) reduction but had no effect on bacterial viability. Cr(VI) induced BB to produce organic acids and release Zn2+ from ZnO NPs. The dissolved Zn2+ promoted Cr(VI) reduction, but hindered Cr(V)/Cr(IV) transformation.
Cr(VI) contaminated water usually contains other contaminants like engineered nanomaterials (ENMs). During the process of microbial treatment, the inevitable interaction of Cr(VI), ENMs, and microorganisms probably determines the efficiency of Cr(VI) biotransformation, however, the corresponding information remains elusive. This study investigated the interaction of ZnO nanoparticles (NPs), Cr(VI), and Pannonibacter phragmitetus BB (hereafter BB), which changed the process of microbial Cr(VI) reduction. ZnO NPs inhibited Cr(VI) reduction, but had no effect on bacterial viability. In particular, Cr(VI) induced BB to produce organic acids and to drive Zn2+ dissolution from ZnO NPs inside and outside of cells. The dissolved Zn2+ not only promoted Cr(VI) reduction to Cr(V)/Cr(IV) by strengthening sugar metabolism and inducing increase in NAD(P)H production, but also hin-dered Cr(V)/Cr(IV) transformation to Cr(III) through down-regulating Cr(VI) reductase genes. A novel bacterial driven ROS scavenging mechanism leading to the inhibition of Cr(VI) reduction was elucidated. Specifically, the accumulated Cr(VI) and Cr(V)/Cr(IV) formed a redox dynamic equilibrium, which triggered the dispropor-tionation of superoxide radicals mimicking superoxide dismutase through the flip-flop of Cr(VI) and Cr(V)/Cr(IV) in bacterial cells. This study provided a realistic insight into design the applicability of biological remediation technology for Cr(VI) contaminant and evaluating environmental risks of ENMs.

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