Kubota Y, Nash R A, Klungland A, Schär P, Barnes D E, Lindahl T
Imperial Cancer Research Fund, Clare Hall Laboratories, South Mimms, Hertfordshire, UK.
EMBO J. 1996 Dec 2;15(23):6662-70.
Repair of a uracil-guanine base pair in DNA has been reconstituted with the recombinant human proteins uracil-DNA glycosylase, apurinic/apyrimidinic endonuclease, DNA polymerase beta and DNA ligase III. The XRCC1 protein, which is known to bind DNA ligase III, is not absolutely required for the reaction but suppresses strand displacement by DNA polymerase beta, allowing for more efficient ligation after filling of a single nucleotide patch. We show that XRCC1 interacts directly with DNA polymerase beta using far Western blotting, affinity precipitation and yeast two-hybrid analyses. In addition, a complex formed between DNA polymerase beta and a double-stranded oligonucleotide containing an incised abasic site was supershifted by XRCC1 in a gel retardation assay. The region of interaction with DNA polymerase beta is located within residues 84-183 in the N-terminal half of the XRCC1 protein, whereas the C-terminal region of XRCC1 is involved in binding DNA ligase III. These data indicate that XRCC1, which has no known catalytic activity, might serve as a scaffold protein during base excision-repair. DNA strand displacement and excessive gap filling during DNA repair were observed in cell-free extracts of an XRCC1-deficient mutant cell line, in agreement with the results from the reconstituted system.
利用重组人源蛋白尿嘧啶-DNA糖基化酶、脱嘌呤/脱嘧啶内切酶、DNA聚合酶β和DNA连接酶III,已在体外重建了DNA中尿嘧啶-鸟嘌呤碱基对的修复过程。已知XRCC1蛋白可与DNA连接酶III结合,该反应并非绝对需要它,但它可抑制DNA聚合酶β的链置换作用,从而在填补单个核苷酸缺口后实现更高效的连接。我们通过远缘Western印迹法、亲和沉淀法和酵母双杂交分析表明,XRCC1可直接与DNA聚合酶β相互作用。此外,在凝胶阻滞试验中,DNA聚合酶β与含有切割后无碱基位点的双链寡核苷酸形成的复合物被XRCC1超迁移。与DNA聚合酶β相互作用的区域位于XRCC1蛋白N端的84-183位氨基酸残基内,而XRCC1的C端区域则参与与DNA连接酶III的结合。这些数据表明,没有已知催化活性的XRCC1可能在碱基切除修复过程中作为一种支架蛋白发挥作用。在XRCC1缺陷型突变细胞系的无细胞提取物中观察到了DNA修复过程中的DNA链置换和过度缺口填补现象,这与体外重建系统的结果一致。