阻滞DNA复制叉附近的转录触发核糖体DNA拷贝数的变化

IF 13.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Nucleic Acids Research Pub Date : 2025-01-25 DOI:10.1093/nar/gkaf014
Mariko Sasaki, Takehiko Kobayashi
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引用次数: 0

摘要

DNA拷贝数通过染色体重排或染色体外环状DNA的产生而改变。在这里,我们证明了组蛋白去乙酰化酶Sir2通过抑制DNA复制叉在rDNA中形成的DNA双链断裂(DSB)的末端切除,以及DSB修复过程中它们随后的同源重组(HR)介导的rDNA拷贝数变化,来维持芽殖酵母核糖体RNA基因[核糖体DNA (rDNA)]的拷贝数。Sir2抑制位于叉阻滞位点附近的调控启动子E-pro的转录。当Sir2缺失时,这种转录受到刺激,但被阻止的复制叉终止。这种转录-复制碰撞诱导DSB的形成、DSB末端切除和依赖于Mre11-Rad50-Xrs2复合体的DSB修复,这容易导致染色体rDNA拷贝数的改变和染色体外rDNA环的产生。因此,抑制复制叉附近的转录对于通过引导DSB修复进入hr无关的无重排途径来维持rDNA的稳定性至关重要。
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Transcription near arrested DNA replication forks triggers ribosomal DNA copy number changes
DNA copy number changes via chromosomal rearrangements or the production of extrachromosomal circular DNA. Here, we demonstrate that the histone deacetylase Sir2 maintains the copy number of budding yeast ribosomal RNA gene [ribosomal DNA (rDNA)] by suppressing end resection of DNA double-strand breaks (DSBs) formed upon DNA replication fork arrest in the rDNA and their subsequent homologous recombination (HR)-mediated rDNA copy number changes during DSB repair. Sir2 represses transcription from the regulatory promoter E-pro located near the fork arresting site. When Sir2 is absent, this transcription is stimulated but terminated by arrested replication forks. This transcription–replication collision induces DSB formation, DSB end resection and the Mre11-Rad50-Xrs2 complex-dependent DSB repair that is prone to chromosomal rDNA copy number changes and the production of extrachromosomal rDNA circles. Therefore, repression of transcription near arrested replication forks is critical for the maintenance of rDNA stability by directing DSB repair into the HR-independent, rearrangement-free pathway.
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来源期刊
Nucleic Acids Research
Nucleic Acids Research 生物-生化与分子生物学
CiteScore
27.10
自引率
4.70%
发文量
1057
审稿时长
2 months
期刊介绍: Nucleic Acids Research (NAR) is a scientific journal that publishes research on various aspects of nucleic acids and proteins involved in nucleic acid metabolism and interactions. It covers areas such as chemistry and synthetic biology, computational biology, gene regulation, chromatin and epigenetics, genome integrity, repair and replication, genomics, molecular biology, nucleic acid enzymes, RNA, and structural biology. The journal also includes a Survey and Summary section for brief reviews. Additionally, each year, the first issue is dedicated to biological databases, and an issue in July focuses on web-based software resources for the biological community. Nucleic Acids Research is indexed by several services including Abstracts on Hygiene and Communicable Diseases, Animal Breeding Abstracts, Agricultural Engineering Abstracts, Agbiotech News and Information, BIOSIS Previews, CAB Abstracts, and EMBASE.
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