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Mechanisms underlying astrocytic connexin-43 autophagy degradation during cerebral ischemia injury and the effect on neuroinflammation and cell apoptosis

机译:脑缺血损伤期间的星形细胞连接蛋白-33自噬降解的机制及对神经炎性和细胞凋亡的影响

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Connexin-43 (Cx43) is the most abundant gap junction protein in the nervous system. It enables cell communication and has important physiological roles including ion transport and substrate exchange, all of which have been implicated in cerebral ischemia injury. Our previous in vitro and in vivo studies have demonstrated that Cx43 is internalized and degraded during ischemia stress. However, the significance of ischemia-induced degradation of Cx43 remains unclear. Herein, we demonstrated that Cx43 degradation during ischemia injury is mediated by selective autophagy; additionally, we identified two related autophagy receptors—OPTN and NDP52. Cx43 degradation during ischemia requires its phosphorylation and ubiquitination, which are mediated by PKC, Src kinases, and ubiquitin kinase PINK1. Using point mutagenesis, we identified three phosphorylation sites underlying Cx43 autophagy degradation under ischemic stress. Cx43 degradation inhibition promoted the transition of astrocytes from a pro-inflammatory to an anti-inflammatory status, based on the levels of IL-10 and TNF in ischemia. Knockdown or accelerated degradation of Cx43 protected astrocytes from apoptosis under ischemic stress. These findings elucidate the underlying mechanism of astrocytic Cx43 autophagic degradation during ischemia. The study has identified potentially novel therapeutic strategies against ischemic stroke and evidence of crosstalk between autophagic degradation of Cx43, astrocytic apoptosis, and neuroinflammation.
机译:Connexin-43(CX43)是神经系统中最丰富的间隙结蛋白。它能够实现细胞通信并且具有重要的生理作用,包括离子运输和基材交换,所有这些都涉及脑缺血损伤。我们以前的体外和体内研究表明CX43在缺血应激期间内化和降解。然而,缺血诱导的CX43降解的意义仍不清楚。在此,我们证明,通过选择性自噬介导缺血损伤期间的CX43降解;此外,我们确定了两个相关的自噬受体-Optn和NDP52。 CX43在缺血过程中降解需要其磷酸化和泛素化,其由PKC,SRC激酶和遍突蛋白激酶Pink1介导。使用点诱变,我们确定了缺血压力下CX43自噬降解的三个磷酸化位点。 CX43降解抑制促进星形胶质细胞从促炎症到抗炎状态的转变,基于IL-10和TNF在缺血中的水平。 CX43受缺血压力下凋亡的CX43保护的星形胶质细胞的敲低或加速降解。这些发现阐明了在缺血期间星形胶质性CX43自噬降解的潜在机制。该研究确定了对缺血性卒中的潜在新的治疗策略和CX43,星形胶质细胞凋亡和神经炎性的自噬降解之间的串扰。

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