裂变酵母rad4/cut5对DNA复制与有丝分裂的耦合作用。

Y Saka, P Fantes, M Yanagida
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引用次数: 26

摘要

裂变酵母的cut5+(与rad4+相同)基因在S期是必需的。它的温度敏感(ts)突变导致有丝分裂,而S期被抑制:有丝分裂对S期完成的依赖性被消除。然而,如果突变细胞中的DNA受损,细胞分裂就会停止。因此,用于DNA损伤的检查点控制系统是有效的,而用于DNA合成抑制的检查点控制系统在cu5突变体中不存在。cu5 +基因的转录不受cdc10+的直接控制,cdc10+编码细胞周期开始的转录因子。转录物水平在细胞周期中不会改变。蛋白质产物有四个不同的结构域,并在细胞核中富集。它的水平在细胞周期中不会改变。n结构域对cut5蛋白的功能至关重要:它对其cut5突变的互补至关重要,其过表达可阻断细胞分裂。此外,它类似于原癌蛋白Ect2的n端重复结构域,后者在c结构域含有小G蛋白的调控因子样序列。我们讨论了一个假设,即cut5蛋白是完成DNA合成的检查点控制系统的重要组成部分。有丝分裂的抑制直到S期完成是由cut5蛋白介导的,它可以感知染色体复制的状态,并与cdc25和cdc2等M期调节因子负相互作用。
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Coupling of DNA replication and mitosis by fission yeast rad4/cut5.

The fission yeast cut5+ (identical to rad4+) gene is essential for S phase. Its temperature-sensitive (ts) mutation causes mitosis while S phase is inhibited: dependence of mitosis upon the completion of S phase is abolished. If DNA is damaged in mutant cells, however, cell division is arrested. Thus the checkpoint control system for DNA damage is functional, while that for DNA synthesis inhibition is not in the cut5 mutants. Transcription of the cut5+ gene is not under the direct control of cdc10+, which encodes a transcription factor for the START of cell cycle. The transcript level does not change during the cell cycle. The protein product has four distinct domains and is enriched in the nucleus. Its level does not alter during the cell cycle. The N-domain is important for cut5 protein function: it is essential for complementation of ts cut5 mutations and its overexpression blocks cell division. Furthermore, it resembles the N-terminal repeat domain of proto-oncoprotein Ect2, which, in the C-domain, contains a regulator-like sequence for small G proteins. We discuss a hypothesis that the cut5 protein is an essential component of the checkpoint control system for the completion of DNA synthesis. The restraint of mitosis until the completion of S phase is mediated by the cut5 protein, which can sense the state of chromosome duplication and negatively interacts with M phase regulators such as cdc25 and cdc2.

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Studies of DNA methylation in animals. Characterization of the execution phase of apoptosis in vitro using extracts from condemned-phase cells. Analysis of the temporal program of replication initiation in yeast chromosomes. On the structure of replication and transcription factories. Stepwise assembly of initiation complexes at budding yeast replication origins during the cell cycle.
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