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DGCR8 在 DNA 双链断裂修复信号和肿瘤放射抵抗中的非规范功能。

Non-canonical function of DGCR8 in DNA double-strand break repair signaling and tumor radioresistance.

机构信息

Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX, USA.

Department of Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX, USA.

出版信息

Nat Commun. 2021 Jun 29;12(1):4033. doi: 10.1038/s41467-021-24298-z.

Abstract

In response to DNA double-strand breaks (DSBs), repair proteins are recruited to the damaged sites. Ubiquitin signaling plays a critical role in coordinating protein recruitment during the DNA damage response. Here, we find that the microRNA biogenesis factor DGCR8 promotes tumor resistance to X-ray radiation independently of its Drosha-binding ability. Upon radiation, the kinase ATM and the deubiquitinase USP51 mediate the activation and stabilization of DGCR8 through phosphorylation and deubiquitination. Specifically, radiation-induced ATM-dependent phosphorylation of DGCR8 at serine 677 facilitates USP51 to bind, deubiquitinate, and stabilize DGCR8, which leads to the recruitment of DGCR8 and DGCR8's binding partner RNF168 to MDC1 and RNF8 at DSBs. This, in turn, promotes ubiquitination of histone H2A, repair of DSBs, and radioresistance. Altogether, these findings reveal the non-canonical function of DGCR8 in DSB repair and suggest that radiation treatment may result in therapy-induced tumor radioresistance through ATM- and USP51-mediated activation and upregulation of DGCR8.

摘要

针对 DNA 双链断裂(DSBs),修复蛋白被招募到受损部位。泛素信号在协调 DNA 损伤反应过程中的蛋白募集中起着关键作用。在这里,我们发现 microRNA 生物发生因子 DGCR8 通过其 Drosha 结合能力独立地促进肿瘤对 X 射线辐射的抗性。在辐射下,激酶 ATM 和去泛素酶 USP51 通过磷酸化和去泛素化介导 DGCR8 的激活和稳定。具体而言,辐射诱导的 ATM 依赖性 DGCR8 丝氨酸 677 磷酸化促进 USP51 结合、去泛素化和稳定 DGCR8,这导致 DGCR8 和其结合伙伴 RNF168 招募到 MDC1 和 RNF8 在 DSB 处。这反过来又促进组蛋白 H2A 的泛素化、DSB 的修复和放射抗性。总之,这些发现揭示了 DGCR8 在 DSB 修复中的非典型功能,并表明放射治疗可能通过 ATM 和 USP51 介导的 DGCR8 的激活和上调导致治疗诱导的肿瘤放射抗性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8275/8242032/e9bf4653f20a/41467_2021_24298_Fig1_HTML.jpg

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