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KRIT1 Regulates the Homeostasis of Intracellular Reactive Oxygen Species

机译:KRIT1调节细胞内活性氧物种的体内稳态

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摘要

KRIT1 is a gene responsible for Cerebral Cavernous Malformations (CCM), a major cerebrovascular disease characterized by abnormally enlarged and leaky capillaries that predispose to seizures, focal neurological deficits, and fatal intracerebral hemorrhage. Comprehensive analysis of the KRIT1 gene in CCM patients has suggested that KRIT1 functions need to be severely impaired for pathogenesis. However, the molecular and cellular functions of KRIT1 as well as CCM pathogenesis mechanisms are still research challenges. We found that KRIT1 plays an important role in molecular mechanisms involved in the maintenance of the intracellular Reactive Oxygen Species (ROS) homeostasis to prevent oxidative cellular damage. In particular, we demonstrate that KRIT1 loss/down-regulation is associated with a significant increase in intracellular ROS levels. Conversely, ROS levels in KRIT1−/− cells are significantly and dose-dependently reduced after restoration of KRIT1 expression. Moreover, we show that the modulation of intracellular ROS levels by KRIT1 loss/restoration is strictly correlated with the modulation of the expression of the antioxidant protein SOD2 as well as of the transcriptional factor FoxO1, a master regulator of cell responses to oxidative stress and a modulator of SOD2 levels. Furthermore, we show that the KRIT1-dependent maintenance of low ROS levels facilitates the downregulation of cyclin D1 expression required for cell transition from proliferative growth to quiescence. Finally, we demonstrate that the enhanced ROS levels in KRIT1−/− cells are associated with an increased cell susceptibility to oxidative DNA damage and a marked induction of the DNA damage sensor and repair gene Gadd45α, as well as with a decline of mitochondrial energy metabolism. Taken together, our results point to a new model where KRIT1 limits the accumulation of intracellular oxidants and prevents oxidative stress-mediated cellular dysfunction and DNA damage by enhancing the cell capacity to scavenge intracellular ROS through an antioxidant pathway involving FoxO1 and SOD2, thus providing novel and useful insights into the understanding of KRIT1 molecular and cellular functions.
机译:KRIT1是导致脑海绵状畸形(CCM)的基因,CCM是一种主要的脑血管疾病,其特征在于毛细血管异常增大和渗漏,易诱发癫痫发作,局灶性神经功能缺损和致命性脑出血。对CCM患者中KRIT1基因的综合分析表明,发病机理需要严重损害KRIT1的功能。然而,KRIT1的分子和细胞功能以及CCM发病机理仍是研究的挑战。我们发现,KRIT1在维持细胞内活性氧(ROS)稳态以防止氧化细胞损伤的分子机制中起着重要作用。特别是,我们证明KRIT1丢失/下调与细胞内ROS水平的显着增加有关。相反,恢复KRIT1表达后,KRIT1 -/-细胞中的ROS水平显着且剂量依赖性地降低。此外,我们表明,KRIT1丢失/恢复对细胞内ROS水平的调节与抗氧化蛋白SOD2以及转录因子FoxO1的表达的调节密切相关,后者是细胞对氧化应激和氧化应激反应的主要调节因子。 SOD2水平的调节剂。此外,我们表明低ROS水平的KRIT1依赖性维持促进细胞周期从增殖生长过渡到静止所需的细胞周期蛋白D1表达的下调。最后,我们证明KRIT1 -/-细胞中的ROS水平升高与细胞对氧化性DNA损伤的敏感性增加以及DNA损伤传感器和修复基因Gadd45α的显着诱导有关,以及线粒体能量代谢下降。综上所述,我们的结果指向了一种新的模型,其中KRIT1通过增强细胞通过涉及FoxO1和SOD2的抗氧化剂途径清除细胞内ROS的能力来限制细胞内氧化剂的积累并防止氧化应激介导的细胞功能障碍和DNA损伤。以及对理解KRIT1分子和细胞功能的有用见解。

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