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Cell Cycle in the Fucus Zygote Parallels a Somatic Cell Cycle but Displays a Unique Translational Regulation of Cyclin-Dependent Kinases

机译:岩藻合子中的细胞周期与体细胞周期平行,但显示出细胞周期蛋白依赖性激酶的独特翻译调控。

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摘要

In eukaryotic cells, the basic machinery of cell cycle control is highly conserved. In particular, many cellular events during cell cycle progression are controlled by cyclin-dependent kinases (CDKs). The cell cycle in animal early embryos, however, differs substantially from that of somatic cells or yeasts. For example, cell cycle checkpoints that ensure that the sequence of cell cycle events is correct have been described in somatic cells and yeasts but are largely absent in embryonic cells. Furthermore, the regulation of CDKs is substantially different in the embryonic and somatic cells. In this study, we address the nature of the first cell cycle in the brown alga Fucus, which is evolutionarily distant from the model systems classically used for cell cycle studies in embryos. This cycle consists of well-defined G1, S, G2, and M phases. The purine derivative olomoucine inhibited CDKs activity in vivo and in vitro and induced different cell cycle arrests, including at the G1/S transition, suggesting that, as in somatic cells, CDKs tightly control cell cycle progression. The cell cycle of Fucus zygotes presented the other main features of a somatic cell cycle, such as a functional spindle assembly checkpoint that targets CDKs and the regulation of the early synthesis of two PSTAIRE CDKs, p32 and p34, and the associated histone H1 kinase activity as well as the regulation of CDKs by tyrosine phosphorylation. Surprisingly, the synthesis after fertilization of p32 and p34 was translationally regulated, a regulation not described previously for CDKs. Finally, our results suggest that the activation of mitotic CDKs relies on an autocatalytic amplification mechanism.
机译:在真核细胞中,细胞周期控制的基本机制是高度保守的。特别是,细胞周期进程中的许多细胞事件均受细胞周期蛋白依赖性激酶(CDK)的控制。但是,动物早期胚胎中的细胞周期与体细胞或酵母的细胞周期有很大不同。例如,已经在体细胞和酵母中描述了确保细胞周期事件的序列正确的细胞周期检查点,但是在胚胎细胞中基本上不存在。此外,CDK的调节在胚胎和体细胞中也大不相同。在这项研究中,我们解决了褐藻岩藻中第一个细胞周期的本质,它与经典用于胚胎细胞周期研究的模型系统在进化上相距甚远。该循环由定义明确的G1,S,G2和M相组成。嘌呤衍生物olomoucine在体内和体外抑制CDKs活性,并诱导不同的细胞周期停滞,包括在G1 / S过渡期,这表明,与体细胞一样,CDKs严格控制细胞周期进程。镰刀菌合子的细胞周期显示了体细胞周期的其他主要特征,例如靶向CDK的功能性纺锤体装配检查点以及对两种PSTAIRE CDK p32和p34的早期合成的调控以及相关的组蛋白H1激酶活性以及酪氨酸磷酸化对CDK的调节。出人意料的是,受精后p32和p34的合成受到翻译调控,该调控先前未针对CDK描述。最后,我们的结果表明,有丝分裂CDK的激活依赖于自催化扩增机制。

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