首页> 美国卫生研究院文献>Frontiers in Physiology >Research Topic: From structural to molecular systems biology: experimental and computational approaches to unravel mechanisms of kinase activity regulation in cancer and neurodegeneration: Double-negative feedback between S-phase cyclin-CDK and CKI generates abruptness in the G1/S switch
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Research Topic: From structural to molecular systems biology: experimental and computational approaches to unravel mechanisms of kinase activity regulation in cancer and neurodegeneration: Double-negative feedback between S-phase cyclin-CDK and CKI generates abruptness in the G1/S switch

机译:研究主题:从结构生物学到分子系统生物学:揭示癌症和神经变性中激酶活性调节机制的实验和计算方法:S期细胞周期蛋白CDK和CKI之间的双负反馈在G1 / S开关中产生突变

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摘要

The G1/S transition is a crucial decision point in the cell cycle. At G1/S, there is an abrupt switch from a state of high cyclin-dependent kinases (CDK) inhibitor (CKI) levels and low S-phase CDK activity to a state of high S-phase CDK activity and degraded CKI. In budding yeast, this transition is triggered by phosphorylation of the Cdk1 inhibitor Sic1 at multiple sites by G1-phase CDK (Cln1,2-Cdk1) and S-phase CDK (Clb5,6-Cdk1) complexes. Using mathematical modeling we demonstrate that the mechanistic basis for the abruptness of the G1/S transition is the highly specific phosphorylation of Sic1 by S-phase CDK complex. This switch is generated by a double-negative feedback loop in which S-CDK1 phosphorylates Sic1, thus targeting it for destruction, and thereby liberating further S-CDK1 from the inhibitory Sic1-S-CDK1 complex. Our model predicts that the abruptness of the switch depends upon a strong binding affinity within the Sic1-S-CDK inhibitory complex. In vitro phosphorylation analysis using purified yeast proteins revealed that free Clb5-Cdk1 can create positive feedback by phosphorylating Sic1 that is bound in the inhibitory complex, and that Sic1 inhibits Clb5-Cdk1 with a sub-nanomolar inhibition constant. Our model also predicts that if the G1-phase CDK complex is too efficient at targeting Sic1 for destruction, then G1/S becomes a smooth and readily reversible transition. We propose that the optimal role for the G1-phase CDK in the switch would not be to act as a kinase activity directly responsible for abrupt degradation of CKI, but rather to act as a priming signal that initiates a positive feedback loop driven by emerging free S-phase CDK.
机译:G1 / S过渡是细胞周期中的关键决策点。在G1 / S处,从高细胞周期蛋白依赖性激酶(CDK)抑制剂(CKI)水平和低S期CDK活性状态突然转变为高S期CDK活性和CKI降解状态。在出芽的酵母中,这种转变是由G1期CDK(Cln1,2-Cdk1)和S期CDK(Clb5,6-Cdk1)复合物在多个位点上的Cdk1抑制剂Sic1磷酸化触发的。使用数学模型,我们证明了G1 / S过渡突然发生的机理基础是S相CDK复合物对Sic1的高度特异性磷酸化。该开关由双负反馈回路生成,在该回路中,S-CDK1磷酸化Sic1,从而将其靶向进行破坏,从而从抑制性Sic1-S-CDK1复合物中释放出其他S-CDK1。我们的模型预测,开关的突变取决于Sic1-S-CDK抑制复合物中的强大结合亲和力。使用纯化的酵母蛋白进行的体外磷酸化分析表明,游离的Clb5-Cdk1可通过磷酸化结合在抑制复合物中的Sic1产生正反馈,并且Sic1以亚纳摩尔抑制常数抑制Clb5-Cdk1。我们的模型还预测,如果G1期CDK复合物在靶向Sic1时过于有效,则G1 / S会变成平滑且易于逆转的过渡。我们建议,G1期CDK在转换中的最佳作用不是充当直接导致CKI突然降解的激酶活性,而是充当引发信号的信号,该信号由游离的游离酸驱动而启动正反馈回路S相CDK。

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