Center for Molecular Medicine, University Medical Center Utrecht, Universiteitsweg 100, Utrecht, the Netherlands.
Human Genetics Department, Leiden University Medical Center, Leiden, the Netherlands.
Nat Commun. 2024 Oct 17;15(1):8984. doi: 10.1038/s41467-024-53313-2.
DNA double-strand breaks (DSBs) must be properly repaired within diverse chromatin domains to maintain genome stability. Whereas euchromatin has an open structure and is associated with transcription, facultative heterochromatin is essential to silence developmental genes and forms compact nuclear condensates, called polycomb bodies. Whether the specific chromatin properties of facultative heterochromatin require distinct DSB repair mechanisms remains unknown. Here, we integrate single DSB systems in euchromatin and facultative heterochromatin in Drosophila melanogaster and find that heterochromatic DSBs rapidly move outside polycomb bodies. These DSB movements coincide with a break-proximal reduction in the canonical heterochromatin mark histone H3 Lysine 27 trimethylation (H3K27me3). We demonstrate that DSB movement and loss of H3K27me3 at heterochromatic DSBs depend on the histone demethylase dUtx. Moreover, loss of dUtx specifically disrupts completion of homologous recombination at heterochromatic DSBs. We conclude that DSBs in facultative heterochromatin require dUtx-mediated loss of H3K27me3 to promote DSB movement and repair.
DNA 双链断裂 (DSBs) 必须在不同的染色质区域内正确修复,以维持基因组稳定性。常染色质具有开放的结构,并与转录相关,而兼性异染色质对于沉默发育基因和形成称为多梳体的紧凑核凝聚物是必不可少的。兼性异染色质的特定染色质特性是否需要独特的 DSB 修复机制尚不清楚。在这里,我们在果蝇的常染色质和兼性异染色质中整合了单个 DSB 系统,发现异染色质 DSB 迅速移出多梳体。这些 DSB 运动与靠近断裂的经典异染色质标记组蛋白 H3 赖氨酸 27 三甲基化 (H3K27me3) 的减少同时发生。我们证明 DSB 运动和异染色质 DSB 处的 H3K27me3 丢失依赖于组蛋白去甲基化酶 dUtx。此外,dUtx 的缺失特异性破坏了异染色质 DSB 处同源重组的完成。我们的结论是,兼性异染色质中的 DSB 需要 dUtx 介导的 H3K27me3 丢失来促进 DSB 运动和修复。