ArticlePloS one2026
N-acetylcysteine attenuates oxidative-stress-associated apoptosis and collagen deposition after rat hindlimb ischemia-reperfusion injury.
Article in PloS one, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Proper use of fingers and limbs is crucial for people to carry out normal activities of daily living. Therefore, when fingers or limbs are severed accidentally, replantation is attempted whenever possible. However, even when replantation is successful and fingers or limbs are preserved, functional limitations often arise due to contractures in reattached fingers or limbs, although mechanisms underlying contractures or countermeasures to ameliorate them are not well understood. Here, using a rat femoral artery ischemia-reperfusion (I/R) model, we show that oxidative stress caused by accumulation of oxidative DNA damage occurs in gastrocnemius and soleus muscles after I/R induces muscle cell apoptosis. Moreover, we demonstrate that administration of the antioxidant N-acetyl cysteine (NAC) significantly suppresses oxidative stress accumulation and apoptosis induction in both muscles. We observed that collagen fibers accumulate in the gastrocnemius and soleus muscles after I/R in our model, and that collagen fiber accumulation was significantly suppressed by NAC administration. We demonstrate that adding hydrogen peroxide (H2O2), a reactive oxygen species (ROS), to an in vitro C2C12 myoblast culture system significantly increased expression of the apoptosis-inducing factors Bcl-2-associated X protein (BAX) and Caspase 3, while co-treatment with NAC significantly counteracted this increase and increased expression of the anti-apoptotic factor B-cell lymphoma 2 (Bcl2). Also using the C2C12 myoblast culture system, we show that H2O2 significantly increased expression of Cellular Communication Network Factor 2 (CCN2), which induces fibrosis, while co-addition of NAC with H2O2 significantly suppressed CCN2 induction. Our findings shed light on mechanisms underlying I/R injury in limbs and suggest countermeasures.
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