Structural and mechanistic analysis of the arsenate respiratory reductase provides insight into environmental arsenic transformations.

Glasser, Nathaniel R; Oyala, Paul H; Osborne, Thomas H; Santini, Joanne M; Newman, Dianne K · Proc Natl Acad Sci U S A · 2018

basic_science · Level V

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Abstract

Arsenate respiration by bacteria was discovered over two decades ago and is catalyzed by diverse organisms using the well-conserved Arr enzyme complex. Until now, the mechanisms underpinning this metabolism have been relatively opaque. Here, we report the structure of an Arr complex (solved by X-ray crystallography to 1.6-Å resolution), which was enabled by an improved Arr expression method in the genetically tractable arsenate respirer <i>Shewanella</i> sp. ANA-3. We also obtained structures bound with the substrate arsenate (1.8 Å), the product arsenite (1.8 Å), and the natural inhibitor phosphate (1.7 Å). The structures reveal a conserved active-site motif that distinguishes Arr [(R/K)GRY] from the closely related arsenite respiratory oxidase (Arx) complex (XGRGWG). Arr activity assays using methyl viologen as the electron donor and arsenate as the electron acceptor display two-site ping-pong kinetics. A Mo(V) species was detected with EPR spectroscopy, which is typical for proteins with a pyranopterin guanine dinucleotide cofactor. Arr is an extraordinarily fast enzyme that approaches the diffusion limit (<i>K</i><sub>m</sub> = 44.6 ± 1.6 μM, <i>k</i><sub>cat</sub> = 9,810 ± 220 seconds<sup>-1</sup>), and phosphate is a competitive inhibitor of arsenate reduction (<i>K</i><sub>i</sub> = 325 ± 12 μM). These observations, combined with knowledge of typical sedimentary arsenate and phosphate concentrations and known rates of arsenate desorption from minerals in the presence of phosphate, suggest that (<i>i</i>) arsenate desorption limits microbiologically induced arsenate reductive mobilization and (<i>ii</i>) phosphate enhances arsenic mobility by stimulating arsenate desorption rather than by inhibiting it at the enzymatic level.

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