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Regulation of mitochondrial bioenergetic function by hydrogen sulfide. Part I . Biochemical and physiological mechanisms
Csaba Szabó, Céline Ransy, Katalin Módis, Mireille Andriamihaja, Baptiste Murghes, Ciro Coletta, Gábor Oláh, Kazunori Yanagi, Frédéric Bouillaud
British Journal of Pharmacology · 2013 · ▲ 447 citations
Abstract
Until recently, hydrogen sulfide (H2 S) was exclusively viewed a toxic gas and an environmental hazard, with its toxicity primarily attributed to the inhibition of mitochondrial Complex IV, resulting in a shutdown of mitochondrial electron transport and cellular ATP generation. Work over the last decade established multiple biological regulatory roles of H2 S, as an endogenous gaseous transmitter. H2 S is produced by cystathionine γ-lyase (CSE), cystathionine β-synthase (CBS) and 3-mercaptopyruvate sulfurtransferase (3-MST). In striking contrast to its inhibitory effect on Complex IV, recent studies showed that at lower concentrations, H2 S serves as a stimulator of electron transport in mammalian cells, by acting as a mitochondrial electron donor. Endogenous H2 S, produced by mitochondrially localized 3-MST, supports basal, physiological cellular bioenergetic functions; the activity of this metabolic support declines with physiological aging. In specialized conditions (calcium overload in vascular smooth muscle, colon cancer cells), CSE and CBS can also associate with the mitochondria; H2 S produced by these enzymes, serves as an endogenous stimulator of cellular bioenergetics. The current article overviews the biochemical mechanisms underlying the stimulatory and inhibitory effects of H2 S on mitochondrial function and cellular bioenergetics and discusses the implication of these processes for normal cellular physiology. The relevance of H2 S biology is also discussed in the context of colonic epithelial cell physiology: colonocytes are exposed to high levels of sulfide produced by enteric bacteria, and serve as a metabolic barrier to limit their entry into the mammalian host, while, at the same time, utilizing it as a metabolic 'fuel'.
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- 10.1111/bph.12369
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- 2026-09-12 MST
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APA
Szabó, C., Ransy, C., Módis, K., Andriamihaja, M., Murghes, B., Coletta, C., Oláh, G., Yanagi, K., & Bouillaud, F. (2013). Regulation of mitochondrial bioenergetic function by hydrogen sulfide. Part I . Biochemical and physiological mechanisms. <em>British Journal of Pharmacology</em>. https://doi.org/10.1111/bph.12369
Vancouver
Szabó C, Ransy C, Módis K, Andriamihaja M, Murghes B, Coletta C, et al. Regulation of mitochondrial bioenergetic function by hydrogen sulfide. Part I . Biochemical and physiological mechanisms. British Journal of Pharmacology. 2013. doi:10.1111/bph.12369.
BibTeX
@article{csaba2013Regula,
title = {Regulation of mitochondrial bioenergetic function by hydrogen sulfide. Part I . Biochemical and physiological mechanisms},
author = {Csaba Szabó and Céline Ransy and Katalin Módis and Mireille Andriamihaja and Baptiste Murghes and Ciro Coletta and Gábor Oláh and Kazunori Yanagi and Frédéric Bouillaud},
journal = {British Journal of Pharmacology},
year = {2013},
doi = {10.1111/bph.12369},
}
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