出芽酵母蛋白Chl1p是DNA损伤后延缓G1/S期进程所必需的。

IF 2.8 4区 生物学 Q3 CELL BIOLOGY Cell Division Pub Date : 2021-09-08 DOI:10.1186/s13008-021-00072-x
Muhseena N Katheeja, Shankar Prasad Das, Suparna Laha
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引用次数: 2

摘要

背景:出芽酵母蛋白Chl1p是姐妹染色单体内聚、转录沉默、rDNA重组、衰老所需的核蛋白,在染色质重塑中起着重要作用。已知这种解旋酶在s期保持基因组完整性和纺锤体长度。在这里,我们展示了Chl1p在DNA损伤后细胞周期G1/S期的额外作用。结果:与野生型细胞相比,G1突变体在暴露于DNA损伤时更敏感,并且显示出更快的芽出动力学。此外,在chl1细胞中观察到更多的DNA损伤。rad24chl1细胞的活力协同下降。Chl1p对G1期出芽动力学的调控与Rad9p/Chk1p一致,并与Rad24p/Rad53p表现出协同作用。Rad9chl1和chk1chl1的出芽表现与单突变体chl1、rad9和chk1相似。而rad24chl1和rad53chl1的出芽速度比单突变体rad24、rad53和chl1快。在MMS诱导损伤的情况下,与Rad24p的协同作用表明Chl1p作为G1/S检查点的作用与损伤检查点途径平行。野生型和chl1细胞中DNA含量通过G1/S期的更快移动以及Rad53p磷酸化谱的差异证实了chl1突变细胞中的检查点缺陷。此外,我们还证实了检查点缺陷与Rad24p的损伤检查点途径并行。结论:Chl1p在存在损伤的情况下表现出Rad53p独立的芽出和Rad53p依赖的检查点活性。这证实了当细胞暴露于有害物质时,它需要在两种不同的途径中维持G1/S阻滞。在诺可达唑处理的chl1细胞中,当给予相同的损伤时,芽出动力学和DNA分离与野生型相似,这表明chl1在G2/M期没有任何作用。本文的新颖之处在于揭示了Chl1p在检查点和修复过程中对G1/S转变的调节作用。因此,Chl1p通过影响G1复制检查点通路来调节G1/S期,并在损伤剂扰乱DNA时显示出与Rad24p对Rad53p激活的加性效应。除了检查点激活外,它还作为修复基因调节出芽动力学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The budding yeast protein Chl1p is required for delaying progression through G1/S phase after DNA damage.

Background: The budding yeast protein Chl1p is a nuclear protein required for sister-chromatid cohesion, transcriptional silencing, rDNA recombination, ageing and plays an instrumental role in chromatin remodeling. This helicase is known to preserve genome integrity and spindle length in S-phase. Here we show additional roles of Chl1p at G1/S phase of the cell cycle following DNA damage.

Results: G1 arrested cells when exposed to DNA damage are more sensitive and show bud emergence with faster kinetics in chl1 mutants compared to wild-type cells. Also, more damage to DNA is observed in chl1 cells. The viability falls synergistically in rad24chl1 cells. The regulation of Chl1p on budding kinetics in G1 phase falls in line with Rad9p/Chk1p and shows a synergistic effect with Rad24p/Rad53p. rad9chl1 and chk1chl1 shows similar bud emergence as the single mutants chl1, rad9 and chk1. Whereas rad24chl1 and rad53chl1 shows faster bud emergence compared to the single mutants rad24, rad53 and chl1. In presence of MMS induced damage, synergistic with Rad24p indicates Chl1p's role as a checkpoint at G1/S acting parallel to damage checkpoint pathway. The faster movement of DNA content through G1/S phase and difference in phosphorylation profile of Rad53p in wild type and chl1 cells confirms the checkpoint defect in chl1 mutant cells. Further, we have also confirmed that the checkpoint defect functions in parallel to the damage checkpoint pathway of Rad24p.

Conclusion: Chl1p shows Rad53p independent bud emergence and Rad53p dependent checkpoint activity in presence of damage. This confirms its requirement in two different pathways to maintain the G1/S arrest when cells are exposed to damaging agents. The bud emergence kinetics and DNA segregation were similar to wild type when given the same damage in nocodazole treated chl1 cells which establishes the absence of any role of Chl1p at the G2/M phase. The novelty of this paper lies in revealing the versatile role of Chl1p in checkpoints as well as repair towards regulating G1/S transition. Chl1p thus regulates the G1/S phase by affecting the G1 replication checkpoint pathway and shows an additive effect with Rad24p for Rad53p activation when damaging agents perturb the DNA. Apart from checkpoint activation, it also regulates the budding kinetics as a repair gene.

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来源期刊
Cell Division
Cell Division CELL BIOLOGY-
CiteScore
3.70
自引率
0.00%
发文量
5
审稿时长
>12 weeks
期刊介绍: Cell Division is an open access, peer-reviewed journal that encompasses all the molecular aspects of cell cycle control and cancer, cell growth, proliferation, survival, differentiation, signalling, gene transcription, protein synthesis, genome integrity, chromosome stability, centrosome duplication, DNA damage and DNA repair. Cell Division provides an online forum for the cell-cycle community that aims to publish articles on all exciting aspects of cell-cycle research and to bridge the gap between models of cell cycle regulation, development, and cancer biology. This forum is driven by specialized and timely research articles, reviews and commentaries focused on this fast moving field, providing an invaluable tool for cell-cycle biologists. Cell Division publishes articles in areas which includes, but not limited to: DNA replication, cell fate decisions, cell cycle & development Cell proliferation, mitosis, spindle assembly checkpoint, ubiquitin mediated degradation DNA damage & repair Apoptosis & cell death
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