System xc− and Thioredoxin Reductase 1 Cooperatively Rescue Glutathione Deficiency

Pankaj Kumar Mandal(Helmholtz Zentrum München), Alexander Seiler(Center for Environmental Health), Tamara Perisic(Center for Environmental Health), P. Kölle(Ludwig-Maximilians-Universität München), Ana Banjac Canak(Klinik und Poliklinik für Orthopädie, Physikalische Medizin und Rehabilitation), Heidi Förster(Helmholtz Zentrum München), Norbert Weiss(Center for Environmental Health), Elisabeth Kremmer(Helmholtz Zentrum München), Michael W. Lieberman(Houston Methodist), Shiro Bannai(Yamagata University), Peter Kuhlencordt(Ludwig-Maximilians-Universität München), Hideyo Sato(Yamagata University), Georg W. Bornkamm(Center for Environmental Health), Marcus Conrad(Center for Environmental Health)
Journal of Biological Chemistry
May 13, 2010
Cited by 280Open Access
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Abstract

GSH is the major antioxidant and detoxifier of xenobiotics in mammalian cells. A strong decrease of intracellular GSH has been frequently linked to pathological conditions like ischemia/reperfusion injury and degenerative diseases including diabetes, atherosclerosis, and neurodegeneration. Although GSH is essential for survival, the deleterious effects of GSH deficiency can often be compensated by thiol-containing antioxidants. Using three genetically defined cellular systems, we show here that forced expression of xCT, the substrate-specific subunit of the cystine/glutamate antiporter, in gamma-glutamylcysteine synthetase knock-out cells rescues GSH deficiency by increasing cellular cystine uptake, leading to augmented intracellular and surprisingly high extracellular cysteine levels. Moreover, we provide evidence that under GSH deprivation, the cytosolic thioredoxin/thioredoxin reductase system plays an essential role for the cells to deal with the excess amount of intracellular cystine. Our studies provide first evidence that GSH deficiency can be rescued by an intrinsic genetic mechanism to be considered when designing therapeutic rationales targeting specific redox enzymes to combat diseases linked to GSH deprivation.


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