Glutaredoxin attenuates glutathione levels via deglutathionylation of Otub1 and subsequent destabilization of system x C

Glutathione (GSH) is a critical component of the cellular redox system that combats oxidative stress. The glutamate-cystine antiporter, system x , is a key player in GSH synthesis that allows for the uptake of cystine, the rate-limiting building block of GSH. It is unclear whether GSH or GSH-depende...

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Veröffentlicht in:Science advances 2023-09, Vol.9 (37), p.eadi5192
Hauptverfasser: Aboushousha, Reem, van der Velden, Jos, Hamilton, Nicholas, Peng, Zhihua, MacPherson, Maximilian, Erickson, Cuixia, White, Sheryl, Wouters, Emiel F M, Reynaert, Niki L, Seward, David J, Li, Jianing, Janssen-Heininger, Yvonne M W
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Sprache:eng
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Zusammenfassung:Glutathione (GSH) is a critical component of the cellular redox system that combats oxidative stress. The glutamate-cystine antiporter, system x , is a key player in GSH synthesis that allows for the uptake of cystine, the rate-limiting building block of GSH. It is unclear whether GSH or GSH-dependent protein oxidation [protein -glutathionylation (PSSG)] regulates the activity of system x . We demonstrate that an environment of enhanced PSSG promotes GSH increases via a system x -dependent mechanism. Absence of the deglutathionylase, glutaredoxin (GLRX), augmented SLC7A11 protein and led to significant increases of GSH content. -glutathionylation of C23 or C204 of the deubiquitinase OTUB1 promoted interaction with the E2-conjugating enzyme UBCH5A, leading to diminished ubiquitination and proteasomal degradation of SLC7A11 and augmentation of GSH, effects that were reversed by GLRX. These findings demonstrate an intricate link between GLRX and GSH via -glutathionylation of OTUB1 and system x and illuminate a previously unknown feed-forward regulatory mechanism whereby enhanced GSH protein oxidation augments cellular GSH.
ISSN:2375-2548
2375-2548
DOI:10.1126/sciadv.adi5192