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同源异形盒基因 Polyhomeotic 突变导致细胞周期缺陷是由于 DNA 损伤检查点的失活。

Cell cycle defects in polyhomeotic mutants are caused by abrogation of the DNA damage checkpoint.

机构信息

Molecular Epigenetics Group, Department of Zoology, University of BC, Life Sciences Centre, 2350 Health Sciences Mall Vancouver, BC, Canada V6T 1Z3.

出版信息

Dev Biol. 2010 Mar 15;339(2):320-8. doi: 10.1016/j.ydbio.2009.12.031. Epub 2010 Jan 4.

Abstract

Polycomb group (PcG) genes are required for heritable silencing of target genes. Many PcG mutants have chromatin bridges and other mitotic defects in early embryos. These phenotypes can arise from defects in S phase or mitosis, so the phenotype does not show when PcG proteins act in cell cycle regulation. We analyzed the cell cycle role of the proximal subunit of Polyhomeotic (PhP) in Drosophila. Time-lapse imaging reveals that chromatin bridges formed during mitosis are able to resolve but sometimes result in chromosome breakage. Chromosome bridging is also observed in canonical cell cycles occurring in larval brains and is therefore not unique to the rapid embryonic cycles. PhP colocalizes with chromatin in S phase but not in mitosis in early embryos, indicating a direct role in DNA synthesis. Time lapse imaging of ph(p) mutants reveals an acceleration of S phase, showing that ph(p) regulates S phase length. Like ph(p) mutations, mutations in DNA damage checkpoints result in S phase acceleration. Consistent with this model, mutations in ph do not affect DNA synthesis rates, but exhibit impaired ability to block cell cycle progression following exposure to gamma-rays. Our data show that the mitotic defects of ph(p) are caused by defects in the DNA damage response that occurs after DNA replication in S phase, and we propose that PhP has a direct role in DNA damage repair.

摘要

多梳抑制复合物 (PcG) 基因对于靶基因的可遗传沉默是必需的。许多 PcG 突变体在早期胚胎中具有染色质桥和其他有丝分裂缺陷。这些表型可能来自 S 期或有丝分裂的缺陷,因此当 PcG 蛋白在细胞周期调控中发挥作用时,表型不会出现。我们分析了果蝇中 Polyhomeotic (PhP) 近端亚基在细胞周期中的作用。延时成像显示,在有丝分裂过程中形成的染色质桥能够解决,但有时会导致染色体断裂。在幼虫大脑中发生的典型细胞周期中也观察到染色体桥接,因此它不是胚胎快速周期所特有的。PhP 在 S 期与染色质共定位,但在早期胚胎的有丝分裂中不与染色质共定位,表明其在 DNA 合成中具有直接作用。ph(p) 突变体的延时成像显示 S 期加速,表明 ph(p) 调节 S 期长度。与 ph(p) 突变一样,DNA 损伤检查点的突变导致 S 期加速。与该模型一致,ph 突变不影响 DNA 合成速率,但在暴露于伽马射线后表现出阻止细胞周期进程的能力受损。我们的数据表明,ph(p) 的有丝分裂缺陷是由 S 期 DNA 复制后发生的 DNA 损伤反应缺陷引起的,我们提出 PhP 在 DNA 损伤修复中具有直接作用。

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