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Function and regulation of the neuronal Cdk5 /p35 kinase in the control of protein translation.

机译:神经元Cdk5 / p35激酶在蛋白质翻译控制中的功能和调节。

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摘要

Cdk5 in conjunction with its neuronal activator p35 plays a pivotal role in neuronal differentiation and neuronal migration during the brain development. In this thesis work we found that p35, a neuron-specific activator of Cdk5, associates with Ribosomal S6 kinase 1 (S6K1). In addition, Cdk5 phosphorylates S6K1 at Ser411 in vitro and in vivo. S6K1, a key regulator of mRNA translation, plays an important role in cell cycle progression through the G1 phase of proliferating cells and in the synaptic plasticity of terminally differentiated neurons. Activation of S6K1 involves the phosphorylation of its multiple Ser/Thr residues, including the proline-directed sites (Ser-411, Ser-418, Thr-421, and Ser-424) in the autoinhibitory domain near the C terminus. Phosphorylation at Thr-389 is a crucial event in S6K1 activation. Here, we report that S6K1 phosphorylation at Ser-411 is required for the rapamycin-sensitive phosphorylation of Thr-389 and the subsequent activation of S6K1. Mutation of Ser-411 to Ala ablated insulin-induced Thr-389 phosphorylation and S6K1 activation, whereas mutation mimicking Ser-411 phosphorylation did not show any effect. Furthermore, phosphomimetic mutation of Thr-389 overcame the inhibitory effect of the mutation S411A. Thus, Ser-411 phosphorylation regulates S6K1 activation via the control of Thr-389 phosphorylation. In nervous system neurons, Cdk5-p35 kinase associates with S6K1 via the direct interaction between p35 and S6K1 and catalyzes S6K1 phosphorylation specifically at Ser-411. Inhibition of the Cdk5 activity or suppression of Cdk5 expression blocked S6K1 phosphorylation at Ser-411 and Thr-389, resulting in S6K1 inactivation. Similar results were obtained by treating asynchronous populations of proliferating cells with the CDK inhibitor compound roscovitine. Altogether, our findings suggest a novel mechanism by which the CDK-mediated phosphorylation regulates the activation of S6K1.;Microtubules are one of the main cytoskeletal elements in eukaryotic cells, intimately regulating cell shape and mobility. The assembly of tubulin subunits into microtubules is promoted by microtubule-associated proteins (MAPs). Here we show that p35 binds directly to microtubules. Microtubule polymers but not the alpha/beta-tubulin heterodimer block p35 interaction with Cdk5 and therefore inhibit Cdk5-p35 activity. p25, a neurotoxin-induced truncated form of p35, does not have the tubulin and microtubule-binding activities, and thus Cdk5-p25 is inert to the inhibitory effect of microtubules. In cultured cortical neurons, a significant proportion of p35 localizes to microtubules. However, Cdk5 phosphorylation of p35 leads to dissociate from microtubules in an intermolecular kinase mechanism. Together, these findings suggest that p35 is a microtubule-associated protein that modulates microtubule dynamics. Also, microtubules play an important role in the control of Cdk5 activation.
机译:Cdk5及其神经元活化剂p35在大脑发育过程中在神经元分化和神经元迁移中起关键作用。在本论文中,我们发现p35是Cdk5的神经元特异性激活剂,与核糖体S6激酶1(S6K1)相关。另外,Cdk5在体外和体内都在Ser411处磷酸化S6K1。 S6K1是mRNA翻译的关键调节剂,在通过增殖细胞G1期的细胞周期进程中以及在最终分化的神经元的突触可塑性中起重要作用。 S6K1的激活涉及其多个Ser / Thr残基的磷酸化,包括C末端附近自抑制域中脯氨酸定向的位点(Ser-411,Ser-418,Thr-421和Ser-424)。 Thr-389处的磷酸化是S6K1激活中的关键事件。在这里,我们报告说,Ser-411的S6K1磷酸化是雷帕霉素敏感的Thr-389磷酸化和随后的S6K1激活所必需的。 Ser-411突变为Ala消除了胰岛素诱导的Thr-389磷酸化和S6K1活化,而模仿Ser-411磷酸化的突变未显示任何作用。此外,Thr-389的磷酸模拟突变克服了突变S411A的抑制作用。因此,Ser-411磷酸化通过控制Thr-389磷酸化来调节S6K1活化。在神经系统神经元中,Cdk5-p35激酶通过p35和S6K1之间的直接相互作用与S6K1缔合,并特别在Ser-411催化S6K1磷酸化。 Cdk5活性的抑制或Cdk5表达的抑制可阻止S6K1在Ser-411和Thr-389的磷酸化,从而导致S6K1失活。通过用CDK抑制剂化合物roscovitine处理增殖细胞的异步群体获得了相似的结果。总而言之,我们的发现提示了CDK介导的磷酸化调节S6K1活化的新机制。微管是真核细胞中主要的细胞骨架成分之一,直接调节细胞的形状和迁移。微管相关蛋白(MAP)促进了微管蛋白亚基向微管的组装。在这里,我们显示p35直接与微管结合。微管聚合物但不阻止α/β-微管蛋白异二聚体阻止p35与Cdk5相互作用,因此抑制Cdk5-p35活性。 p25是神经毒素诱导的p35的截短形式,不具有微管蛋白和微管结合活性,因此Cdk5-p25对微管的抑制作用呈惰性。在培养的皮质神经元中,很大比例的p35定位于微管。但是,p35的Cdk5磷酸化会导致分子间激酶机制中微管的解离。总之,这些发现表明,p35是微管相关蛋白,可调节微管动力学。同样,微管在控制Cdk5激活中起重要作用。

著录项

  • 作者

    Hou, Zhibo.;

  • 作者单位

    Hong Kong University of Science and Technology (Hong Kong).;

  • 授予单位 Hong Kong University of Science and Technology (Hong Kong).;
  • 学科 Chemistry Biochemistry.;Biology Neuroscience.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 117 p.
  • 总页数 117
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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