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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >And yet, it moves: nuclear and chromatin dynamics of a heterochromatic double-strand break
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And yet, it moves: nuclear and chromatin dynamics of a heterochromatic double-strand break

机译:然而,它移动:核和染色质动态的异形双链断裂

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Heterochromatin is mostly composed of repeated DNA sequences prone to aberrant recombination. How cells maintain the stability of these sequences during double-strand break (DSB) repair has been a long-standing mystery. Studies in Drosophila cells revealed that faithful homologous recombination repair of heterochromatic DSBs relies on the striking relocalization of repair sites to the nuclear periphery before Rad51 recruitment and repair progression. Here, we summarize our current understanding of this response, including the molecular mechanisms involved, and conserved pathways in mammalian cells. We will highlight important similarities with pathways identified in budding yeast for repair of other types of repeated sequences, including rDNA and short telomeres. We will also discuss the emerging role of chromatin composition and regulation in heterochromatin repair progression. Together, these discoveries challenged previous assumptions that repair sites are substantially static in mul-ticellular eukaryotes, that heterochromatin is largely inert in the presence of DSBs, and that silencing and compaction in this domain are obstacles to repair.
机译:异铬胺主要由反复的DNA序列组成,易于异常重组。电池如何在双链断裂(DSB)修复期间保持这些序列的稳定性是一个长期常见的谜团。果蝇细胞的研究表明,异络DSB的忠实同源性重组修复依赖于Rad51招生和修复进展前对核外周的修复位点的击打重锁定化。在这里,我们总结了我们目前对这种反应的理解,包括所涉及的分子机制和哺乳动物细胞中的保守途径。我们将突出与在萌芽酵母中确定的途径的重要相似性,用于修复其他类型的重复序列,包括RDNA和短端粒。我们还将讨论染色质组成和调节在异染色质修复进展中的新兴作用。这些发现挑战了先前的假设,即修复位点在Mul-ticelluoteots中基本上静止,因此异料胺在DSB存在下很大程度上是惰性的,并且该结构域中的沉默和压实是修复的障碍。

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