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The acetylation of cyclin-dependent kinase 5 at lysine 33 regulates kinase activity and neurite length in hippocampal neurons

机译:赖氨酸33在赖氨酸依赖性激酶5的乙酰化调节海马神经元中的激酶活性和神经突长度

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Cyclin-dependent kinase 5 (CDK5) plays a pivotal role in neural development and neurodegeneration. CDK5 activity can be regulated by posttranslational modifications, including phosphorylation and S-nitrosylation. In this study, we demonstrate a novel mechanism by which the acetylation of CDK5 at K33 (Ac-CDK5) results in the loss of ATP binding and impaired kinase activity. We identify GCN5 and SIRT1 as critical factor controlling Ac-CDK5 levels. Ac-CDK5 achieved its lowest levels in rat fetal brains but was dramatically increased during postnatal periods. Intriguingly, nuclear Ac-CDK5 levels negatively correlated with neurite length in embryonic hippocampal neurons. Either treatment with the SIRT1 activator SRT1720 or overexpression of SIRT1 leads to increases in neurite length, whereas SIRT1 inhibitor EX527 or ectopic expression of acetyl-mimetic (K33Q) CDK5 induced the opposite effect. Furthermore, the expression of nuclear-targeted CDK5 K33Q abolished the SRT1720-induced neurite outgrowth, showing that SIRT1 positively regulates neurite outgrowth via deacetylation of nuclear CDK5. The CDK5 activity-dependent increase of neurite length was mediated by enhanced transcriptional regulation of BDNF via unknown mechanism(s). Our findings identify a novel mechanism by which acetylation-mediated regulation of nuclear CDK5 activity plays a critical role in determining neurite length in embryonic neurons.
机译:细胞周期蛋白依赖性激酶5(CDK5)在神经发育和神经变性中起着枢轴作用。 CDK5活性可通过后翻译修饰来调节,包括磷酸化和S-亚硝基化。在这项研究中,我们证明了一种新的机制,通过该机制,CDK5在K33(AC-CDK5)下导致ATP结合和激酶活性受损的损失。我们将GCN5和SIRT1识别为控制AC-CDK5级别的关键因素。 AC-CDK5在大鼠胎儿大脑中实现了其最低水平,但在后期的后期急剧增加。有趣的,核AC-CDK5水平与胚胎海马神经元中的神经突长度呈负相关。用Sirt1活化剂SRT1720或SIRT1的过表达治疗导致神经突长度的增加,而SIRT1抑制剂EX527或乙酰模拟物(K33Q)CDK5的异位表达诱导相反的效果。此外,核靶向CDK5 K33Q的表达废除了SRT1720诱导的神经突生长,表明SIRT1通过核化CDK5的脱乙酰化持续调节神经突过多。通过未知机制增强BDNF的转录调节,通过提高BDNF的CDK5活性依赖性增加神经突长度。我们的研究结果确定了一种新的机制,乙酰化介导的核CDK5活性调节在确定胚胎神经元中的神经突长度方面发挥着关键作用。

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