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本文引用的文献

1
Stem cell divisions, somatic mutations, cancer etiology, and cancer prevention.干细胞分裂、体细胞突变、癌症病因学与癌症预防。
Science. 2017 Mar 24;355(6331):1330-1334. doi: 10.1126/science.aaf9011.
2
Holliday junction trap shows how cells use recombination and a junction-guardian role of RecQ helicase.Holliday 连接点陷阱揭示了细胞如何利用重组和 RecQ 解旋酶的连接点保护作用。
Sci Adv. 2016 Nov 18;2(11):e1601605. doi: 10.1126/sciadv.1601605. eCollection 2016 Nov.
3
Genome-wide quantification of rare somatic mutations in normal human tissues using massively parallel sequencing.利用大规模平行测序对正常人体组织中罕见体细胞突变进行全基因组定量分析。
Proc Natl Acad Sci U S A. 2016 Aug 30;113(35):9846-51. doi: 10.1073/pnas.1607794113. Epub 2016 Aug 15.
4
The RecQ DNA helicase Rqh1 constrains Exonuclease 1-dependent recombination at stalled replication forks.RecQ DNA解旋酶Rqh1在停滞的复制叉处抑制核酸外切酶1依赖性重组。
Sci Rep. 2016 Mar 9;6:22837. doi: 10.1038/srep22837.
5
Replication stress: getting back on track.复制应激:重回正轨。
Nat Struct Mol Biol. 2016 Feb;23(2):103-9. doi: 10.1038/nsmb.3163.
6
Exome sequencing identifies potential novel candidate genes in patients with unexplained colorectal adenomatous polyposis.外显子组测序鉴定出不明原因的大肠腺瘤性息肉病患者中潜在的新型候选基因。
Fam Cancer. 2016 Apr;15(2):281-8. doi: 10.1007/s10689-016-9870-z.
7
Polymerase δ replicates both strands after homologous recombination-dependent fork restart.在同源重组依赖性叉状结构重新启动后,聚合酶δ复制两条链。
Nat Struct Mol Biol. 2015 Nov;22(11):932-8. doi: 10.1038/nsmb.3100. Epub 2015 Oct 5.
8
Somatic mutation in cancer and normal cells.体细胞突变在癌症和正常细胞中。
Science. 2015 Sep 25;349(6255):1483-9. doi: 10.1126/science.aab4082. Epub 2015 Sep 24.
9
DNA REPAIR. Mus81 and converging forks limit the mutagenicity of replication fork breakage.DNA修复。Mus81和汇聚叉限制复制叉断裂的致突变性。
Science. 2015 Aug 14;349(6249):742-7. doi: 10.1126/science.aaa8391.
10
Promotion of presynaptic filament assembly by the ensemble of S. cerevisiae Rad51 paralogues with Rad52.酿酒酵母Rad51旁系同源蛋白与Rad52共同促进突触前细丝组装。
Nat Commun. 2015 Jul 28;6:7834. doi: 10.1038/ncomms8834.

停滞的复制叉在酵母中产生独特的突变特征。

Stalled replication forks generate a distinct mutational signature in yeast.

机构信息

Center for Chromosome Stability, Department of Cellular and Molecular Medicine, University of Copenhagen, 2200 Copenhagen, Denmark.

Center for Healthy Aging, Department of Cellular and Molecular Medicine, University of Copenhagen, 2200 Copenhagen, Denmark.

出版信息

Proc Natl Acad Sci U S A. 2017 Sep 5;114(36):9665-9670. doi: 10.1073/pnas.1706640114. Epub 2017 Aug 21.

DOI:10.1073/pnas.1706640114
PMID:28827358
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5594675/
Abstract

Proliferating cells acquire genome alterations during the act of DNA replication. This leads to mutation accumulation and somatic cell mosaicism in multicellular organisms, and is also implicated as an underlying cause of aging and tumorigenesis. The molecular mechanisms of DNA replication-associated genome rearrangements are poorly understood, largely due to methodological difficulties in analyzing specific replication forks in vivo. To provide an insight into this process, we analyzed the mutagenic consequences of replication fork stalling at a single, site-specific replication barrier (the Tus/ complex) engineered into the yeast genome. We demonstrate that transient stalling at this barrier induces a distinct pattern of genome rearrangements in the newly replicated region behind the stalled fork, which primarily consist of localized losses and duplications of DNA sequences. These genetic alterations arise through the aberrant repair of a single-stranded DNA gap, in a process that is dependent on Exo1- and Shu1-dependent homologous recombination repair (HRR). Furthermore, aberrant processing of HRR intermediates, and elevated HRR-associated mutagenesis, is detectable in a yeast model of the human cancer predisposition disorder, Bloom's syndrome. Our data reveal a mechanism by which cellular responses to stalled replication forks can actively generate genomic alterations and genetic diversity in normal proliferating cells.

摘要

在 DNA 复制过程中,增殖细胞会获得基因组改变。这导致多细胞生物中突变积累和体细胞镶嵌现象,并被认为是衰老和肿瘤发生的潜在原因。与 DNA 复制相关的基因组重排的分子机制还不太清楚,主要是因为在体内分析特定复制叉的方法存在困难。为了深入了解这一过程,我们分析了在酵母基因组中构建的单个特定复制障碍( Tus/ 复合物)处复制叉停滞的诱变后果。我们证明,在这个障碍处的短暂停滞会在停滞的复制叉后面的新复制区域中诱导出一种独特的基因组重排模式,主要包括 DNA 序列的局部缺失和重复。这些遗传改变是通过对单链 DNA 缺口的异常修复产生的,这个过程依赖于 Exo1- 和 Shu1 依赖性同源重组修复 (HRR)。此外,在人类癌症易感性疾病 Bloom 综合征的酵母模型中,可以检测到 HRR 中间产物的异常处理和 HRR 相关突变率的升高。我们的数据揭示了一种机制,即细胞对停滞的复制叉的反应可以主动在正常增殖细胞中产生基因组改变和遗传多样性。