Robarts Research Institute and Department of Biochemistry, Schulich School of Medicine and Dentistry, University of Western Ontario, London, ON N6A 5B7, Canada.
Robarts Research Institute and Department of Biochemistry, Schulich School of Medicine and Dentistry, University of Western Ontario, London, ON N6A 5B7, Canada.
Biochim Biophys Acta Mol Cell Res. 2024 Oct;1871(7):119815. doi: 10.1016/j.bbamcr.2024.119815. Epub 2024 Aug 14.
The Ku heterodimer (Ku70/Ku80) is central to the non-homologous end-joining (NHEJ) pathway. Ku binds to the broken DNA ends and promotes the assembly of the DNA repair complex. The N-terminal Ku70 von Willebrand A (vWA) domain is known to mediate protein-protein interactions important for the repair process. In particular, the D192 and D195 residues within helix 5 of the Ku70 vWA domain were shown to be essential for NHEJ function, although the precise role of these residues was not identified. Here, we set up a miniTurbo screening system to identify Ku70 D192/D195 residue-specific interactors in a conditional, human Ku70-knockout cell line in response to DNA damage. Using fusion protein constructs of Ku70 wild-type and mutant (D192A/D195R) with miniTurbo, we identified a number of candidate proximal interactors in response to DNA damage treatment, including DNA Ligase IV (LigIV), a known and essential NHEJ complex member. Interestingly, LigIV was enriched in our wildtype screen but not the Ku70 D192A/D195R screen, suggesting its interaction is disrupted by the mutation. Validation experiments demonstrated that the DNA damage-induced interaction between Ku70 and LigIV was disrupted by the Ku70 D192A/D195R mutations. Our findings provide greater detail about the interaction surface between the Ku70 vWA domain and LigIV and offer strong evidence that the D192 and D195 residues are important for NHEJ completion through an interaction with LigIV. Altogether, this work reveals novel potential proximal interactors of Ku in response to DNA damage and identifies Ku70 D192/D195 residues as essential for LigIV interaction with Ku during NHEJ.
Ku 异源二聚体(Ku70/Ku80)是非同源末端连接(NHEJ)途径的核心。Ku 与断裂的 DNA 末端结合,并促进 DNA 修复复合物的组装。已知 Ku70 的 N 端血管性血友病 A(vWA)结构域介导对修复过程重要的蛋白质-蛋白质相互作用。特别是,Ku70 vWA 结构域螺旋 5 内的 D192 和 D195 残基对于 NHEJ 功能至关重要,尽管这些残基的确切作用尚未确定。在这里,我们建立了一个 miniTurbo 筛选系统,以在人类 Ku70 敲除细胞系中鉴定出条件性 DNA 损伤反应中 Ku70 D192/D195 残基特异性相互作用物。使用 Ku70 野生型和突变型(D192A/D195R)与 miniTurbo 的融合蛋白构建体,我们鉴定了一些候选的近端相互作用物,包括 DNA 连接酶 IV(LigIV),这是一种已知的和必需的 NHEJ 复合物成员。有趣的是,LigIV 在我们的野生型筛选中富集,但在 Ku70 D192A/D195R 筛选中没有富集,这表明其相互作用被突变破坏。验证实验表明,Ku70 和 LigIV 之间的 DNA 损伤诱导相互作用被 Ku70 D192A/D195R 突变破坏。我们的发现提供了 Ku70 vWA 结构域与 LigIV 之间相互作用的更详细信息,并提供了强有力的证据表明,D192 和 D195 残基通过与 LigIV 的相互作用对于 NHEJ 的完成很重要。总之,这项工作揭示了 DNA 损伤反应中 Ku 的新的潜在近端相互作用物,并确定 Ku70 D192/D195 残基是 LigIV 与 Ku 在 NHEJ 过程中相互作用所必需的。