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首页> 外文期刊>Genes and Development: a Journal Devoted to the Molecular Analysis of Gene Expression in Eukaryotes, Prokaryotes, and Viruses >A single double-strand break system reveals repair dynamics and mechanisms in heterochromatin and euchromatin
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A single double-strand break system reveals repair dynamics and mechanisms in heterochromatin and euchromatin

机译:单个双链断裂系统揭示了异染色质和常染色质的修复动力学和机理

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摘要

Repair of DNA double-strand breaks (DSBs) must be properly orchestrated in diverse chromatin regions to maintain genome stability. The choice between two main DSB repair pathways, nonhomologous end-joining (NHEJ) and homologous recombination (HR), is regulated by the cell cycle as well as chromatin context. Pericentromeric heterochromatin forms a distinct nuclear domain that is enriched for repetitive DNA sequences that pose significant challenges for genome stability. Heterochromatic DSBs display specialized temporal and spatial dynamics that differ from euchromatic DSBs. Although HR is thought to be the main pathway used to repair heterochromatic DSBs, direct tests of this hypothesis are lacking. Here, we developed an in vivo single DSB system for both heterochromatic and euchromatic loci in Drosophila melanogaster. Live imaging of single DSBs in larval imaginal discs recapitulates the spatio temporal dynamics observed for irradiation (IR)-induced breaks in cell culture. Importantly, live imaging and sequence analysis of repair products reveal that DSBs in euchromatin and heterochromatin are repaired with similar kinetics, employ both NHEJ and HR, and can use homologous chromosomes as an HR template. This direct analysis reveals important insights into heterochromatin DSB repair in animal tissues and provides a foundation for further explorations of repair mechanisms in different chromatin domains.
机译:必须在不同的染色质区域适当地编排DNA双链断裂(DSB)的修复,以保持基因组的稳定性。在两种主要的DSB修复途径之间进行选择,即非同源末端连接(NHEJ)和同源重组(HR),这取决于细胞周期和染色质的环境。周变异构异染色质形成独特的核结构域,该结构域富集了重复的DNA序列,对基因组稳定性提出了重大挑战。异色DSB显示不同于常色DSB的专门的时间和空间动态。尽管人们认为HR是修复异色DSB的主要途径,但仍缺乏对该假设的直接检验。在这里,我们为果蝇的异色和常色基因座开发了一个体内单一DSB系统。幼虫成像盘中单个DSB的实时成像概括了观察到的辐射(IR)诱导的细胞培养中断的时空动态。重要的是,实时成像和修复产物的序列分析表明,常染色质和异染色质中的DSB可以通过相似的动力学进行修复,同时使用NHEJ和HR,并且可以使用同源染色体作为HR模板。这种直接分析揭示了对动物组织中异染色质DSB修复的重要见解,并为进一步探索不同染色质域中的修复机制提供了基础。

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