TusA influences Fe-S cluster assembly and iron homeostasis in E. coli by reducing the translation efficiency of Fur
All sulfur transfer pathways have generally a l-cysteine desulfurase as an initial sulfur-mobilizing enzyme in common, which serves as a sulfur donor for the biosynthesis of numerous sulfur-containing biomolecules in the cell. In , the housekeeping l-cysteine desulfurase IscS has several interaction...
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Veröffentlicht in: | Microbiology spectrum 2024-08, Vol.12 (8), p.e0055624 |
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Hauptverfasser: | , , , , , , , , |
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Sprache: | eng |
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Zusammenfassung: | All sulfur transfer pathways have generally a l-cysteine desulfurase as an initial sulfur-mobilizing enzyme in common, which serves as a sulfur donor for the biosynthesis of numerous sulfur-containing biomolecules in the cell. In
, the housekeeping l-cysteine desulfurase IscS has several interaction partners, which bind at different sites of the protein. So far, the interaction sites of IscU, Fdx, CyaY, and IscX involved in iron-sulfur (Fe-S) cluster assembly have been mapped, in addition to TusA, which is required for molybdenum cofactor biosynthesis and mnm
s
U34 tRNA modifications, and ThiI, which is involved in thiamine biosynthesis and s
U8 tRNA modifications. Previous studies predicted that the sulfur acceptor proteins bind to IscS one at a time.
TusA has, however, been suggested to be involved in Fe-S cluster assembly, as fewer Fe-S clusters were detected in a
mutant. The basis for this reduction in Fe-S cluster content is unknown. In this work, we investigated the role of TusA in iron-sulfur cluster assembly and iron homeostasis. We show that the absence of TusA reduces the translation of
, thereby leading to pleiotropic cellular effects, which we dissect in detail in this study.IMPORTANCEIron-sulfur clusters are evolutionarily ancient prosthetic groups. The ferric uptake regulator plays a major role in controlling the expression of iron homeostasis genes in bacteria. We show that a
mutant is impaired in the assembly of Fe-S clusters and accumulates iron. TusA, therefore, reduces
mRNA translation leading to pleiotropic cellular effects. |
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ISSN: | 2165-0497 2165-0497 |
DOI: | 10.1128/spectrum.00556-24 |