4.8 Article

Cysteinyl-tRNA synthetase governs cysteine polysulfidation and mitochondrial bioenergetics

Journal

NATURE COMMUNICATIONS
Volume 8, Issue -, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-017-01311-y

Keywords

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Funding

  1. National Institute for Health Research through NIHR Southampton Biomedical Research Centre
  2. Ministry of Education, Sciences, Sports, and Technology (MEXT), Japan [26111008, 26111001, 15K21759, 25253020, 16K15208, 25220103, 15H04692, 15H03115, 26116005, 15K14959]
  3. JST PRESTO [10104025, 13417243]
  4. Hungarian National Science Foundation [K 109843]
  5. National Institutes of Health [R21AG055022-01, HL106598]
  6. National Science Foundation [CHE-1148641]
  7. Grants-in-Aid for Scientific Research [15K08456, 15K14959, 16K15208, 17K19508, 17K15464, 17K07187, 16H04674, 26111001, 17F17116, 17K15408, 17K08619, 17K17583, 15K20876, 26116005, 16K13089, 26110003, 17K19205, 15K20857, 17K19620, 26111008, 25253020, 15K20855, 15H03115, 15K21759, 15H04692, 16KT0013] Funding Source: KAKEN

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Cysteine hydropersulfide (CysSSH) occurs in abundant quantities in various organisms, yet little is known about its biosynthesis and physiological functions. Extensive persulfide formation is apparent in cysteine-containing proteins in Escherichia coli and mammalian cells and is believed to result from post-translational processes involving hydrogen sulfide-related chemistry. Here we demonstrate effective CysSSH synthesis from the substrate L-cysteine, a reaction catalyzed by prokaryotic and mammalian cysteinyl-tRNA synthetases (CARSs). Targeted disruption of the genes encoding mitochondrial CARSs in mice and human cells shows that CARSs have a crucial role in endogenous CysSSH production and suggests that these enzymes serve as the principal cysteine persulfide synthases in vivo. CARSs also catalyze co-translational cysteine polysulfidation and are involved in the regulation of mitochondrial biogenesis and bioenergetics. Investigating CARS-dependent persulfide production may thus clarify aberrant redox signaling in physiological and pathophysiological conditions, and suggest therapeutic targets based on oxidative stress and mitochondrial dysfunction.

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