Polysulfide metabolizing enzymes influence SqrR-mediated sulfide-induced transcription by impacting intracellular polysulfide dynamics

Author:

Shimizu Takayuki1ORCID,Ida Tomoaki2ORCID,Antelo Giuliano T345ORCID,Ihara Yuta6,Fakhoury Joseph N3ORCID,Masuda Shinji6ORCID,Giedroc David P34ORCID,Akaike Takaaki2ORCID,Capdevila Daiana A345ORCID,Masuda Tatsuru1

Affiliation:

1. Graduate School of Arts and Sciences, The University of Tokyo , 3-8-1 Komaba, Meguro-ku, Tokyo 153-8902 , Japan

2. Department of 8 Environmental Medicine and Molecular Toxicology, Tohoku University Graduate School of Medicine , 2-1 Seiryo-machi, Aoba-ku, Sendai 980-8575 , Japan

3. Department of Chemistry, Indiana University , 800 E. Kirkwood Dr, Bloomington, IN 47405-7102 , USA

4. Department of Molecular and Cellular Biochemistry, Indiana University , 212 S. Hawthorne Dr, Bloomington, IN 47405 , USA

5. Fundación Instituto Leloir, Instituto de Investigaciones Bioquímicas de Buenos Aires (IIBBA-CONICET) , Av. Patricias Argentinas 435, Buenos Aires C1405BWE , Argentina

6. Department of Life Science and Technology, Tokyo Institute of Technology , 4259 Nagatsuta-cho, Midori-ku, Yokohama 226-8501 , Japan

Abstract

Abstract Sulfide plays essential roles in controlling various physiological activities in almost all organisms. Although recent evidence has demonstrated that sulfide is endogenously generated and metabolized into polysulfides inside the cells, the relationship between polysulfide metabolism and polysulfide-sensing mechanisms is not well understood. To better define this interplay between polysulfide metabolism and sensing in cells, we investigated the role of polysulfide-metabolizing enzymes such as sulfide:quinone oxidoreductase (SQR) on the temporal dynamics of cellular polysulfide speciation and on the transcriptional regulation by the persulfide-responsive transcription factor SqrR in Rhodobacter capsulatus. We show that disruption of the sqr gene resulted in the loss of SqrR repression by exogenous sulfide at longer culture times, which impacts the speciation of intracellular polysulfides of Δsqr vs. wild-type strains. Both the attenuated response of SqrR and the change in polysulfide dynamics of the Δsqr strain is fully reversed by the addition to cells of cystine-derived polysulfides, but not by glutathione disulfide (GSSG)-derived polysulfides. Furthermore, cysteine persulfide (CysSSH) yields a higher rate of oxidation of SqrR relative to glutathione persulfide (GSSH), which leads to DNA dissociation in vitro. The oxidation of SqrR was confirmed by a mass spectrometry-based kinetic profiling strategy that showed distinct polysulfide-crosslinked products obtained with CysSSH vs. GSSH. Taken together, these results establish a novel association between the metabolism of polysulfides and the mechanisms for polysulfide sensing inside the cells.

Funder

JSPS KAKENHI

The Sumitomo Foundation

Ohsumi Frontier Science Foundation

US National Institutes of Health

MinCyT Argentina

CONICET

American Society of Biochemistry and Molecular Biology

Publisher

Oxford University Press (OUP)

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