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March 14, 2026Frontiers in Microbiology0 citationsOpen Access

Hydrogen sulfide acts as a sulfur source for iron sulfur cluster biosynthesis in cysteine desulfurase-deficient Escherichia coli under anaerobic conditions

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HLHui LiJWJun WangXLXiaorui Li

Key Points

  • This study aims to elucidate how hydrogen sulfide acts as a sulfur donor for iron-sulfur cluster biosynthesis in E. coli lacking cysteine desulfurase.
  • Proteomic analysis identified proteins upregulated upon H₂S exposure in Δ iscS mutant.
  • Metabolomic analysis assessed changes in energy metabolites like NAD+, succinate, and leucine.
  • Construction of mutants lacking components of the ISC assembly system to evaluate H₂S effects.
  • Nineteen Fe-S proteins were upregulated in Δ iscS mutant upon H₂S exposure.
  • Increased levels of NAD+, succinate, and leucine were observed, supporting energy metabolism.
  • H₂S exposure rescued cell proliferation and enhanced Fe-S enzyme activity in Δ iscS mutant.

Abstract

The cysteine desulfurase (IscS) is a core component of the ISC iron–sulfur (Fe-S) cluster assembly system in Escherichia coli . Deficiency of IscS leads to serious growth defects in E. coli , along with reduced activity of Fe-S cluster-dependent enzymes. We previously demonstrated that the growth defect of IscS-deficient E. coli (Δ iscS ) is completely restored by H₂S exposure, but the underlying molecular mechanism was not fully understood. Here, based on proteomic analysis, we identified 19 up-regulated Fe-S proteins in the Δ iscS mutant upon H₂S exposure, 13 of which are involved with energy metabolism. Correspondingly, H₂S exposure also enhanced the activity of Fe-S enzymes in the mutant. Metabolomic analysis revealed a remarkable increase in the levels of the energy metabolites NAD + , succinate, and leucine. These results implied that H 2 S could restore cell proliferation and Fe-S cluster biosynthesis by compensating for the functional loss of IscS. We also constructed a series of mutants, each lacking a single component of the ISC assembly system. A key observation was that the Δ iscU mutant, deficient in the Fe-S cluster scaffold protein IscU, failed to have its growth defect rescued by H₂S exposure. These findings indicated that H 2 S promotes Fe-S cluster biosynthesis on IscU, ruling out direct assembly on apoproteins. Moreover, Na₂S supplementation during recombinant expression of aconitase B in the Δ iscS mutant significantly increased its Fe-S cluster abundance and enzymatic activity. We also demonstrated that, unlike the Δ iscS mutant, deletion of sufS , which encodes the cysteine desulfurase of the SUF Fe-S cluster biogenesis system, did not significantly impair bacterial growth, and the resulting mutant’s proliferation was not affected by H₂S exposure. Our study elucidates the mechanism by which H₂S exposure rescues the proliferation impairment of the ΔiscS mutant. Specifically, we demonstrate that H₂S functions as a sulfur donor for Fe-S cluster assembly, thereby compensating for the biosynthetic deficit.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69b4ada918185d8a39801624https://doi.org/10.3389/fmicb.2026.1759970
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