[No authors listed]
Oxidative stress is known to be a primary risk factor for neuronal diseases. Glutaredoxin (GLRX)â1, a redoxâregulator of the thioredoxin superfamily, is known to exhibit an important role in cell survival via various cellular functions. However, the precise roles of GLRX1 in brain ischemia are still not fully understood. The present study investigated whether transduced PEPâ1âGLRX1 protein has protective effects against oxidative stress in cells and in an animal model. Transduced PEPâ1âGLRX1 protein increased HTâ22 cell viability under oxidative stress and this fusion protein significantly reduced intracellular reactive oxygen species and levels of DNA damage. In addition, PEPâ1âGLRX1 protein regulated RACâa serine/threonineâprotein kinase and mitogenâactivated protein kinase signaling, in addition to apoptotic signaling including B cell lymphoma (Bcl)â2, Bclâ2 associated X, apoptosis regulator, proâcaspaseâ9 and p53 expression levels. In an ischemic animal model, it was verified that PEPâ1âGLRX1 transduced into the Cornu Ammonis 1 region of the animal brain, where it markedly protected against ischemic injury. These results indicate that PEPâ1âGLRX1 attenuates neuronal cell death resulting from oxidative stress in vitro and in vivo. Therefore, PEPâ1âGLRX1 may exhibit a beneficial role in the treatment of neuronal disorders, including ischemic injury.
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