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Sodium fluoride induces apoptosis through reactive oxygen species-mediated endoplasmic reticulum stress pathway in Sertoli cells 被引量:10

Sodium fluoride induces apoptosis through reactive oxygen species-mediated endoplasmic reticulum stress pathway in Sertoli cells
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摘要 Excessive fluoride exposure is known to contribute to reproductive system dysfunction,ultimately leading to pathological damage and apoptosis in cells. Although both oxidative and endoplasmic reticulum(ER) stresses have been implicated in fluorosis, the signaling pathways and their roles in sodium fluoride(Na F)-induced apoptosis of Sertoli cells have been sparsely described. In this study, oxidative damage, ER stress, and apoptosis were analyzed after Sertoli cells were treated with varying doses of Na F for 24 hr. Moreover, the antioxidant N-acetylcysteine(NAC) and pro-apoptotic transcription factor CHOP knockdown were used to clarify the precise interplay between reactive oxygen species(ROS), ER stress and their roles in NaF-induced apoptosis in Sertoli cells. The present study indicated that NaF significantly decreased cell viability and induced apoptosis in Sertoli cells. In addition, NaF exposure facilitated the accumulation of ROS and increased nuclear translocation of nuclear factor erythroid 2-related factor 2(Nrf2) in Sertoli cells. Treatment with NAC caused remarkable recovery from these NaF-induced responses. Meanwhile, excessive NaF triggered ER stress as evidenced by up-regulated glucose-regulated protein 78 k Da(GRP78), PKR-like ER kinase(PERK), phosphorylation of eukaryotic translation initiation factor 2α(p-eI F2α) and CCAAT/enhancer-binding protein-homologous protein(CHOP), without affecting total eukaryotic translation initiation factor 2α(e IF2α). NAC effectively blocked the activation of ER stress, suggesting that Na F-induced ROS is an early event that triggers ER stress. Taken together, the results demonstrate that the ROS-mediated ER stress pathway is the crucial mechanistic event involved in NaF-induced apoptosis of Sertoli cells. Excessive fluoride exposure is known to contribute to reproductive system dysfunction,ultimately leading to pathological damage and apoptosis in cells. Although both oxidative and endoplasmic reticulum(ER) stresses have been implicated in fluorosis, the signaling pathways and their roles in sodium fluoride(Na F)-induced apoptosis of Sertoli cells have been sparsely described. In this study, oxidative damage, ER stress, and apoptosis were analyzed after Sertoli cells were treated with varying doses of Na F for 24 hr. Moreover, the antioxidant N-acetylcysteine(NAC) and pro-apoptotic transcription factor CHOP knockdown were used to clarify the precise interplay between reactive oxygen species(ROS), ER stress and their roles in NaF-induced apoptosis in Sertoli cells. The present study indicated that NaF significantly decreased cell viability and induced apoptosis in Sertoli cells. In addition, NaF exposure facilitated the accumulation of ROS and increased nuclear translocation of nuclear factor erythroid 2-related factor 2(Nrf2) in Sertoli cells. Treatment with NAC caused remarkable recovery from these NaF-induced responses. Meanwhile, excessive NaF triggered ER stress as evidenced by up-regulated glucose-regulated protein 78 k Da(GRP78), PKR-like ER kinase(PERK), phosphorylation of eukaryotic translation initiation factor 2α(p-eI F2α) and CCAAT/enhancer-binding protein-homologous protein(CHOP), without affecting total eukaryotic translation initiation factor 2α(e IF2α). NAC effectively blocked the activation of ER stress, suggesting that Na F-induced ROS is an early event that triggers ER stress. Taken together, the results demonstrate that the ROS-mediated ER stress pathway is the crucial mechanistic event involved in NaF-induced apoptosis of Sertoli cells.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2015年第4期81-89,共9页 环境科学学报(英文版)
基金 supported by the Key Science and Technology Research Project of Henan province of China (No: 13A330735)
关键词 睾丸支持细胞 内质网应激 细胞凋亡 诱导凋亡 氟化钠 活性氧 介导 N-乙酰半胱氨酸 Sodium fluoride Apoptosis Reactive oxygen species Endoplasmic reticulum stress Sertoli cell
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