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复制缺陷细胞中的“减数分裂后期”是由泛素连接酶 Cdc34 介导的纺锤体失调引起的。

"Reductional anaphase" in replication-defective cells is caused by ubiquitin-conjugating enzyme Cdc34-mediated deregulation of the spindle.

机构信息

Institute of Molecular and Cell Biology, A*STAR (Agency for Science, Technology and Research), Singapore.

出版信息

Cell Cycle. 2012 Aug 1;11(15):2896-910. doi: 10.4161/cc.21303.

Abstract

Equal partitioning of the duplicated chromosomes into two daughter cells during cell division is a coordinated process and is initiated only after completion of DNA synthesis. However, this strict order of execution breaks down in CDC6-deficient cells. Cdc6, an evolutionarily conserved protein, is required for the assembly of pre-replicative complexes (pre-RCs) and is essential for the initiation of DNA replication. Yeast cells lacking Cdc6 function, though unable to initiate DNA replication, proceed to undergo "reductional anaphase" by partitioning the unreplicated chromosomes and lose viability rapidly. This extreme form of genomic instability in cdc6 cells is thought to be due to inactivation of a pre-RC based, Cdc6-dependent checkpoint mechanism that, during normal cell cycle, inhibits premature onset of mitosis until pre-RC is assembled. Here, we show that chromosome segregation in cdc6 mutant is caused not by precocious initiation of mitosis in the absence of a checkpoint, but by the deregulation of spindle dynamics induced via a regulatory network involving the ubiquitin-conjugating enzyme Cdc34, microtubule-associated proteins (MAPs) and the anaphase-promoting complex (APC) activator Cdh1. This regulatory circuit governs spindle behavior in the early part of the division cycle and precipitates catastrophic chromosome segregation in the absence of DNA replication.

摘要

在细胞分裂过程中,将重复的染色体平均分配到两个子细胞中是一个协调的过程,只有在 DNA 合成完成后才会启动。然而,在 CDC6 缺陷细胞中,这种严格的执行顺序被打破了。CDC6 是一种进化上保守的蛋白质,是组装前复制复合物(pre-RC)所必需的,也是启动 DNA 复制所必需的。缺乏 Cdc6 功能的酵母细胞虽然无法启动 DNA 复制,但仍会通过分配未复制的染色体进行“减数分裂后期”,并迅速失去活力。人们认为,cdc6 细胞中这种极端形式的基因组不稳定性是由于基于 pre-RC 的、CDC6 依赖性检查点机制的失活,该机制在正常细胞周期中,会抑制有丝分裂过早开始,直到 pre-RC 组装完成。在这里,我们表明,cdc6 突变体中的染色体分离不是由于没有检查点的情况下有丝分裂的过早启动,而是由于涉及泛素连接酶 Cdc34、微管相关蛋白 (MAP) 和后期促进复合物 (APC) 激活因子 Cdh1 的调控网络诱导的纺锤体动力学失调所致。这个调控回路控制着有丝分裂周期早期的纺锤体行为,并在没有 DNA 复制的情况下导致灾难性的染色体分离。

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