Effect of O2 Exposure on Perchlorate Reduction by Dechlorosoma Sp. KJ
Overview
Toxicology
Authors
Affiliations
Anaerobic bioreactors have been developed to remove perchlorate from water, but backwashing and operational interruptions can expose biofilms to oxygen. While it is well known that oxygen is a preferential electron acceptor to perchlorate for perchlorate-respiring bacteria, little is known about the effect of oxygen exposure or redox potentials on perchlorate reduction. Four different dissolved oxygen scavengers were tested for their ability to quickly restore anaerobic conditions and allow perchlorate reduction by a facultative, perchlorate respiring bacterium Dechlorosoma sp. KJ. Of the four different oxygen scavengers tested (Oxyrase trade mark, L-cysteine, Na2S and FeS), only Oxyrase trade mark was able to rapidly (<30 min) scavenge dissolved oxygen and allow cell growth. There was no cell growth after addition of Na2S and FeS, and l-cysteine produced a long lag in cell growth. To investigate the effect of dissolved oxygen on perchlorate reduction, anaerobically grown cultures Dechlorosoma sp. KJ, were exposed to dissolved oxygen for various periods ranging from 1 to 32 h. Perchlorate reduction and redox potential were then measured for cells returned to an anaerobic environment containing an oxygen scavenger. It was determined that cells exposed to dissolved oxygen for more than 12h were incapable of reducing perchlorate. Cells exposed to dissolved oxygen for less than 12h quickly reduced the redox potential to negative values (-127 mV to -337 mV) and were able to reduce perchlorate or chlorite. Our results suggest that aeration during backwashing of biofilm reactors, or exposure of perchlorate-degrading cell suspensions to dissolve oxygen for less than 12h, will not be detrimental to the ability of perchlorate-degrading bacteria to use perchlorate as an electron acceptor.
He W, Shi M, Yang P, Huang T, Yuan Q, Yi S Toxins (Basel). 2020; 12(6).
PMID: 32492959 PMC: 7354494. DOI: 10.3390/toxins12060363.
Sinsimer D, Esseghir A, Tang M, Laouar A BMJ Open Gastroenterol. 2015; 1(1):e000009.
PMID: 26462264 PMC: 4533325. DOI: 10.1136/bmjgast-2014-000009.
Hellberg Lindqvist M, Johansson N, Nilsson T, Rova M Appl Environ Microbiol. 2012; 78(12):4380-5.
PMID: 22492460 PMC: 3370537. DOI: 10.1128/AEM.07303-11.
Anaerobic oxidation of arsenite linked to chlorate reduction.
Sun W, Sierra-Alvarez R, Milner L, Field J Appl Environ Microbiol. 2010; 76(20):6804-11.
PMID: 20729322 PMC: 2953025. DOI: 10.1128/AEM.00734-10.
Anaerobic gene expression in Staphylococcus aureus.
Fuchs S, Pane-Farre J, Kohler C, Hecker M, Engelmann S J Bacteriol. 2007; 189(11):4275-89.
PMID: 17384184 PMC: 1913399. DOI: 10.1128/JB.00081-07.