Supersulfide biology and translational medicine for disease control

Author:

Barayeu Uladzimir1,Sawa Tomohiro2,Nishida Motohiro3,Wei Fan‐Yan4,Motohashi Hozumi5,Akaike Takaaki1ORCID

Affiliation:

1. Department of Environmental Medicine and Molecular Toxicology Tohoku University Graduate School of Medicine Sendai Japan

2. Department of Microbiology, Graduate School of Medical Sciences Kumamoto University Kumamoto Japan

3. Department of Physiology, Graduate School of Pharmaceutical Sciences Kyushu University Fukuoka Japan

4. Department of Modomics Biology and Medicine, Institute of Development, Aging and Cancer (IDAC) Tohoku University Sendai Japan

5. Department of Gene Expression Regulation, Institute of Development, Aging and Cancer Tohoku University Sendai Japan

Abstract

AbstractFor decades, the major focus of redox biology has been oxygen, the most abundant element on Earth. Molecular oxygen functions as the final electron acceptor in the mitochondrial respiratory chain, contributing to energy production in aerobic organisms. In addition, oxygen‐derived reactive oxygen species including hydrogen peroxide and nitrogen free radicals, such as superoxide, hydroxyl radical and nitric oxide radical, undergo a complicated sequence of electron transfer reactions with other biomolecules, which lead to their modified physiological functions and diverse biological and pathophysiological consequences (e.g. oxidative stress). What is now evident is that oxygen accounts for only a small number of redox reactions in organisms and knowledge of biological redox reactions is still quite limited. This article reviews a new aspects of redox biology which is governed by redox‐active sulfur‐containing molecules—supersulfides. We define the term ‘supersulfides’ as sulfur species with catenated sulfur atoms. Supersulfides were determined to be abundant in all organisms, but their redox biological properties have remained largely unexplored. In fact, the unique chemical properties of supersulfides permit them to be readily ionized or radicalized, thereby allowing supersulfides to actively participate in redox reactions and antioxidant responses in cells. Accumulating evidence has demonstrated that supersulfides are indispensable for fundamental biological processes such as energy production, nucleic acid metabolism, protein translation and others. Moreover, manipulation of supersulfide levels was beneficial for pathogenesis of various diseases. Thus, supersulfide biology has opened a new era of disease control that includes potential applications to clinical diagnosis, prevention and therapeutics of diseases.

Funder

Ministry of Education, Culture, Sports, Science and Technology

Japan Science and Technology Agency

Japan Society for the Promotion of Science

Japan Agency for Medical Research and Development

Publisher

Wiley

Subject

Pharmacology

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