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Preventing oxidative stress: a new role for XBP1.

机译:防止氧化应激:XBP1的新角色。

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Antioxidant molecules reduce oxidative stress and protect cells from reactive oxygen species (ROS)-mediated cellular damage and probably the development of cancer. We have investigated the contribution of X-box-binding protein (XBP1), a major endoplasmic reticulum stress-linked transcriptional factor, to cellular resistance to oxidative stress. After exposure to hydrogen peroxide (H(2)O(2)) or a strong ROS inducer parthenolide, loss of mitochondrial membrane potential (MMP) and subsequent cell death occurred more extensively in XBP1-deficient cells than wild-type mouse embryonic fibroblast cells, whereas two other anticancer agents induced death similarly in both cells. In XBP1-deficient cells, H(2)O(2) exposure induced more extensive ROS generation and prolonged p38 phosphorylation, and expression of several antioxidant molecules including catalase was lower. Knockdown of XBP1 decreased catalase expression, enhanced ROS generation and MMP loss after H(2)O(2) exposure, but extrinsic catalase supply rescued them. Overexpression of XBP1 recovered catalase expression in XBP1-deficient cells and diminished ROS generation after H(2)O(2) exposure. Mutation analysis of the catalase promoter region suggests a pivotal role of CCAAT boxes, NF-Y-binding sites, for the XBP1-mediated enhancing effect. Taken together, these results indicate a protective role of XBP1 against oxidative stress, and its positive regulation of catalase expression may at least in part account for this function.
机译:抗氧化剂分子可减少氧化应激,并保护细胞免受活性氧(ROS)介导的细胞损伤,甚至可能导致癌症的发展。我们已经研究了X-box结合蛋白(XBP1),一种主要的内质网应激连锁转录因子,对细胞对氧化应激的抗性。暴露于过氧化氢(H(2)O(2))或强的ROS诱导的单性苯二酚后,与野生型小鼠胚胎成纤维细胞相比,XBP1缺陷型细胞中线粒体膜电位(MMP)的丧失和随后的细胞死亡发生的范围更大,而另外两种抗癌药在两种细胞中也同样诱导死亡。在XBP1缺陷细胞中,H(2)O(2)暴露诱导更广泛的ROS生成并延长p38磷酸化,几种抗氧化剂分子(包括过氧化氢酶)的表达较低。击倒的XBP1减少过氧化氢酶的表达,增加ROS生成和H(2)O(2)暴露后MMP的损失,但外在的过氧化氢酶供应挽救了它们。 XBP1的过表达恢复XBP1缺陷细胞中的过氧化氢酶表达,并减少H(2)O(2)暴露后的ROS生成。过氧化氢酶启动子区域的突变分析表明,CCAAT框,NF-Y结合位点对于XBP1介导的增强作用具有关键作用。综上所述,这些结果表明XBP1对氧化应激具有保护作用,并且其过氧化氢酶表达的正调控可能至少部分解释了这一功能。

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