Milne G T, Jin S, Shannon K B, Weaver D T
Division of Tumor Immunology, Dana-Farber Cancer Institute, Boston, Massachusetts 02115, USA.
Mol Cell Biol. 1996 Aug;16(8):4189-98. doi: 10.1128/MCB.16.8.4189.
DNA double-strand break (DSB) repair in mammalian cells is dependent on the Ku DNA binding protein complex. However, the mechanism of Ku-mediated repair is not understood. We discovered a Saccharomyces cerevisiae gene (KU80) that is structurally similar to the 80-kDa mammalian Ku subunit. Ku8O associates with the product of the HDF1 gene, forming the major DNA end-binding complex of yeast cells. DNA end binding was absent in ku80delta, hdf1delta, or ku80delta hdf1delta strains. Antisera specific for epitope tags on Ku80 and Hdf1 were used in supershift and immunodepletion experiments to show that both proteins are directly involved in DNA end binding. In vivo, the efficiency of two DNA end-joining processes were reduced >10-fold in ku8Odelta, hdfldelta, or ku80delta hdf1delta strains: repair of linear plasmid DNA and repair of an HO endonuclease-induced chromosomal DSB. These DNA-joining defects correlated with DNA damage sensitivity, because ku80delta and hdf1delta strains were also sensitive to methylmethane sulfonate (MMS). Ku-dependent repair is distinct from homologous recombination, because deletion of KU80 and HDF1 increased the MMS sensitivity of rad52delta. Interestingly, rad5Odelta, also shown here to be defective in end joining, was epistatic with Ku mutations for MMS repair and end joining. Therefore, Ku and Rad50 participate in an end-joining pathway that is distinct from homologous recombinational repair. Yeast DNA end joining is functionally analogous to DSB repair and V(D)J recombination in mammalian cells.
哺乳动物细胞中的DNA双链断裂(DSB)修复依赖于Ku DNA结合蛋白复合体。然而,Ku介导的修复机制尚不清楚。我们发现了一个酿酒酵母基因(KU80),其在结构上与80 kDa的哺乳动物Ku亚基相似。Ku8O与HDF1基因的产物结合,形成酵母细胞的主要DNA末端结合复合体。在ku80δ、hdf1δ或ku80δ hdf1δ菌株中不存在DNA末端结合。针对Ku80和Hdf1上抗原决定簇标签的特异性抗血清用于超迁移和免疫沉淀实验,以表明这两种蛋白质都直接参与DNA末端结合。在体内,ku80δ、hdf1δ或ku80δ hdf1δ菌株中两种DNA末端连接过程的效率降低了10倍以上:线性质粒DNA的修复和HO内切核酸酶诱导的染色体DSB的修复。这些DNA连接缺陷与DNA损伤敏感性相关,因为ku80δ和hdf1δ菌株对甲基磺酸甲酯(MMS)也敏感。Ku依赖性修复与同源重组不同,因为KU80和HDF1的缺失增加了rad52δ对MMS的敏感性。有趣的是,rad50δ(此处也显示在末端连接方面存在缺陷)在MMS修复和末端连接方面与Ku突变呈上位性。因此,Ku和Rad50参与了一条与同源重组修复不同的末端连接途径。酵母DNA末端连接在功能上类似于哺乳动物细胞中的DSB修复和V(D)J重组。