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CDK5 phosphorylates DRP1 and drives mitochondrial defects in NMDA-induced neuronal death

机译:CDK5使DRP1磷酸化并驱动NMDA诱导的神经元死亡中的线粒体缺陷

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摘要

Defects in mitochondrial fission and cyclin dependent kinase 5 (CDK5) activation are early events that precede neuronal loss following NMDA-induced neuronal death. Here, we report that the cytoplasmic CDK5 tightly regulates mitochondrial morphology defects associated with NMDA-induced neuronal injury via regulation of the mitochondrial fission protein, dynamin-related protein 1 (DRP1). We show that DRP1 is a direct target of CDK5. CDK5-mediated phosphorylation of DRP1 at a conserved Serine residue, S585, is elevated at the mitochondria and is associated with increased mitochondrial fission. Ectopic expression of a cytoplasmic CDK5 or mutant DRP1-S585D results in increased mitochondrial fragmentation in primary neurons. Conversely, expression of a dominant negative form of cytoplasmic CDK5 or mutant DRP1-S585A results in elongated mitochondria. In addition, pharmacological inhibition of CDK5 by Roscovitine inhibits DRP1 phosphorylation and mitochondrial fission associated with NMDA-induced neuronal loss. Importantly, conditional deletion of CDK5 significantly attenuates DRP1 phosphorylation at S585 and rescues mitochondrial fission defects in neurons exposed to NMDA. Our studies delineate an important mechanism by which CDK5 regulates mitochondrial morphology defects associated with neuronal injury.
机译:线粒体分裂和细胞周期蛋白依赖性激酶5(CDK5)激活的缺陷是在NMDA诱导的神经元死亡后神经元丧失之前的早期事件。在这里,我们报告说,细胞质CDK5通过调节线粒体裂变蛋白,动力蛋白相关蛋白1(DRP1)紧密调节与NMDA诱导的神经元损伤相关的线粒体形态缺陷。我们表明DRP1是CDK5的直接目标。保守的丝氨酸残基S585的CDK5介导的DRP1磷酸化在线粒体升高,并与线粒体裂变增加有关。细胞质CDK5或突变体DRP1-S585D的异位表达导致初级神经元中线粒体片段化增加。相反,细胞质CDK5或突变体DRP1-S585A显性阴性形式的表达导致线粒体延长。此外,Roscovitine对CDK5的药理抑制作用还抑制了与NMDA诱导的神经元丢失相关的DRP1磷酸化和线粒体裂变。重要的是,条件性删除CDK5可以显着减弱S585处DRP1的磷酸化,并挽救暴露于NMDA的神经元中的线粒体裂变缺陷。我们的研究描述了CDK5调节与神经元损伤相关的线粒体形态缺陷的重要机制。

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