Differential Requirement for H2AX and 53BP1 in Organismal Development and Genome Maintenance in the Absence of Poly(ADP)ribosyl Polymerase 1

生物 PARP1 基因组不稳定性 DNA修复 DNA损伤 雷达51 聚ADP核糖聚合酶 综合征如奈梅亨破损综合症 分子生物学 同源重组 组蛋白 遗传学 聚合酶 细胞生物学 癌症研究 共济失调毛细血管扩张 DNA
作者
Benjamin C. Orsburn,Beatriz Escudero,Mansi Prakash,Silvia Gesheva,Guosheng Liu,David L. Huso,Sonia Franco
出处
期刊:Molecular and Cellular Biology [American Society for Microbiology]
卷期号:30 (10): 2341-2352 被引量:30
标识
DOI:10.1128/mcb.00091-10
摘要

Combined deficiencies of poly(ADP)ribosyl polymerase 1 (PARP1) and ataxia telangiectasia mutated (ATM) result in synthetic lethality and, in the mouse, early embryonic death. Here, we investigated the genetic requirements for this lethality via analysis of mice deficient for PARP1 and either of two ATM-regulated DNA damage response (DDR) factors: histone H2AX and 53BP1. We found that, like ATM, H2AX is essential for viability in a PARP1-deficient background. In contrast, deficiency for 53BP1 modestly exacerbates phenotypes of growth retardation, genomic instability, and organismal radiosensitivity observed in PARP1-deficient mice. To gain mechanistic insights into these different phenotypes, we examined roles for 53BP1 in the repair of replication-associated double-strand breaks (DSBs) in several cellular contexts. We show that 53BP1 is required for DNA-PKcs-dependent repair of hydroxyurea (HU)-induced DSBs but dispensable for RPA/RAD51-dependent DSB repair in the same setting. Moreover, repair of mitomycin C (MMC)-induced DSBs and sister chromatid exchanges (SCEs), two RAD51-dependent processes, are 53BP1 independent. Overall, our findings define 53BP1 as a main facilitator of nonhomologous end joining (NHEJ) during the S phase of the cell cycle, beyond highly specialized lymphocyte rearrangements. These findings have important implications for our understanding of the mechanisms whereby ATM-regulated DDR prevents human aging and cancer.

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