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Multisite phosphoregulation of Cdc25 activity refines the mitotic entrance and exit switches

机译:Cdc25活性的多位磷酸化可改善有丝分裂的入口和出口开关

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摘要

Cyclin-dependent kinase 1 (Cdk1) kinase dephosphorylation and activation by Cdc25 phosphatase are essential for mitotic entry. Activated Cdk1 phosphorylates Cdc25 and other substrates, further activating Cdc25 to form a positive feedback loop that drives the abrupt G2/mitosis switch. Conversely, mitotic exit requires Cdk1 inactivation and reversal of Cdk1 substrate phosphorylation. This dephosphorylation is mediated, in part, by Clp1/Cdc14, a Cdk1-antagonizing phosphatase, which reverses Cdk1 phosphorylation of itself, Cdc25, and other Cdk1 substrates. Thus, Cdc25 phosphoregulation is essential for proper G2–M transition, and its contributions to cell cycle control have been modeled based on studies using Xenopus and human cell extracts. Because cell extract systems only approximate in vivo conditions where proteins interact within dynamic cellular environments, here, we use Schizosaccharomyces pombe to characterize, both experimentally and mathematically, the in vivo contributions of Cdk1-mediated phosphorylation of Cdc25 to the mitotic transition. Through comprehensive mapping of Cdk1 phosphosites on Cdc25 and characterization of phosphomutants, we show that Cdc25 hyperphosphorylation by Cdk1 governs Cdc25 catalytic activation, the precision of mitotic entry, and unvarying cell length but not Cdc25 localization or abundance. We propose a mathematical model that explains Cdc25 regulation by Cdk1 through a distributive and disordered phosphorylation mechanism that ultrasensitively activates Cdc25. We also show that Clp1/Cdc14 dephosphorylation of Cdk1 sites on Cdc25 controls the proper timing of cell division, a mechanism that is likely due to the double negative feedback loop between Clp1/Cdc14 and Cdc25 that controls the abruptness of the mitotic exit switch.
机译:细胞周期蛋白依赖性激酶1(Cdk1)激酶的去磷酸化和Cdc25磷酸酶的激活对于有丝分裂进入至关重要。激活的Cdk1使Cdc25和其他底物磷酸化,进一步激活Cdc25形成正反馈回路,从而驱动突然的G2 /有丝分裂开关。相反,有丝分裂退出需要Cdk1失活和Cdk1底物磷酸化的逆转。这种去磷酸化部分地由Clp1 / Cdc14(一种Cdk1拮抗的磷酸酶)介导,它逆转了Cdk1本身,Cdc25和其他Cdk1底物的磷酸化。因此,Cdc25磷酸化对于正确的G2–M过渡至关重要,并且它基于非洲爪蟾和人类细胞提取物的研究已模拟了其对细胞周期控制的贡献。因为细胞提取物系统仅接近蛋白质在动态细胞环境中相互作用的体内条件,所以在这里,我们使用粟酒裂殖酵母在实验和数学上表征了Cdk1介导的Cdc25磷酸化对有丝分裂过渡的体内作用。通过在Cdc25上对Cdk1磷酸位点进行全面定位和对磷突变体进行表征,我们发现Cdk1对Cdc25的过度磷酸化控制着Cdc25催化活化,有丝分裂进入的精度和不变的细胞长度,但不影响Cdc25的定位或丰度。我们提出了一个数学模型,该模型通过超敏感地激活Cdc25的分布和无序磷酸化机制解释了Cdk1对Cdc25的调控。我们还显示,Cdc25上Cdk1位点的Clp1 / Cdc14去磷酸化控制了细胞分裂的适当时机,这种机制很可能是由于Clp1 / Cdc14和Cdc25之间的双重负反馈回路控制了有丝分裂出口开关的突然发生。

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