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周期素依赖性激酶 7(CDK7)介导的 CDK9 激活环磷酸化促进了 Tat 与 P-TEFb 的组装以及前病毒 HIV 的重新激活。

Cyclin-dependent kinase 7 (CDK7)-mediated phosphorylation of the CDK9 activation loop promotes P-TEFb assembly with Tat and proviral HIV reactivation.

机构信息

From the Department of Molecular Biology and Microbiology and.

the Center for Proteomics and Bioinformatics and Department of Nutrition, Case Western Reserve University School of Medicine, Cleveland, Ohio 44106.

出版信息

J Biol Chem. 2018 Jun 29;293(26):10009-10025. doi: 10.1074/jbc.RA117.001347. Epub 2018 May 9.

Abstract

The HIV trans-activator Tat recruits the host transcription elongation factor P-TEFb to stimulate proviral transcription. Phosphorylation of Thr-186 on the activation loop (T-loop) of cyclin-dependent kinase 9 (CDK9) is essential for its kinase activity and assembly of CDK9 and cyclin T1 (CycT1) to form functional P-TEFb. Phosphorylation of a second highly conserved T-loop site, Ser-175, alters the competitive binding of Tat and the host recruitment factor bromodomain containing 4 (BRD4) to P-TEFb. Here, we investigated the intracellular mechanisms that regulate these key phosphorylation events required for HIV transcription. Molecular dynamics simulations revealed that the CDK9/CycT1 interface is stabilized by intramolecular hydrogen bonding of pThr-186 by an arginine triad and Glu-96 of CycT1. Arginine triad substitutions that disrupted CDK9/CycT1 assembly accumulated Thr-186-dephosphorylated CDK9 associated with the cytoplasmic Hsp90/Cdc37 chaperone. The Hsp90/Cdc37/CDK9 complex was also present in resting T cells, which lack CycT1. Hsp90 inhibition in primary T cells blocked P-TEFb assembly, disrupted Thr-186 phosphorylation, and suppressed proviral reactivation. The selective CDK7 inhibitor THZ1 blocked CDK9 phosphorylation at Ser-175, and kinase assays confirmed that CDK7 activity is principally responsible for Ser-175 phosphorylation. Mutation of Ser-175 to Lys had no effect on CDK9 kinase activity or P-TEFb assembly but strongly suppressed both HIV expression and BRD4 binding. We conclude that the transfer of CDK9 from the Hsp90/Cdc37 complex induced by Thr-186 phosphorylation is a key step in P-TEFb biogenesis. Furthermore, we demonstrate that CDK7-mediated Ser-175 phosphorylation is a downstream nuclear event essential for facilitating CDK9 T-loop interactions with Tat.

摘要

HIV 反式激活蛋白 Tat 招募宿主转录延伸因子 P-TEFb 来刺激前病毒转录。环依赖性激酶 9(CDK9)激活环上 Thr-186 的磷酸化对于其激酶活性以及 CDK9 和 cyclin T1(CycT1)的组装形成功能性 P-TEFb 至关重要。第二个高度保守的激活环位点 Ser-175 的磷酸化改变了 Tat 和宿主募集因子溴结构域包含 4(BRD4)与 P-TEFb 的竞争结合。在这里,我们研究了调节 HIV 转录所需的这些关键磷酸化事件的细胞内机制。分子动力学模拟表明,CDK9/CycT1 界面通过由精氨酸三联体和 CycT1 的 Glu-96 形成的分子内氢键稳定。破坏 CDK9/CycT1 组装的精氨酸三联体取代物积累了 Thr-186 去磷酸化的 CDK9,与细胞质 Hsp90/Cdc37 伴侣结合。Hsp90/Cdc37/CDK9 复合物也存在于缺乏 CycT1 的静止 T 细胞中。在原代 T 细胞中抑制 Hsp90 阻断了 P-TEFb 的组装,破坏了 Thr-186 的磷酸化,并抑制了前病毒的重新激活。选择性 CDK7 抑制剂 THZ1 阻断了 CDK9 在 Ser-175 处的磷酸化,激酶测定证实 CDK7 活性主要负责 Ser-175 的磷酸化。Ser-175 突变为 Lys 对 CDK9 激酶活性或 P-TEFb 组装没有影响,但强烈抑制了 HIV 的表达和 BRD4 的结合。我们得出结论,Thr-186 磷酸化诱导的 CDK9 从 Hsp90/Cdc37 复合物的转移是 P-TEFb 生物发生的关键步骤。此外,我们证明 CDK7 介导的 Ser-175 磷酸化是促进 CDK9 T 环与 Tat 相互作用的下游核事件,对于 HIV 表达至关重要。

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