Zietlow Laura, Bessho Tadayoshi
The Eppley Institute for Research in Cancer and Allied Diseases, University of Nebraska Medical Center, 986805 Nebraska Medical Center, Omaha, Nebraska 68198-6805, USA.
Biochemistry. 2008 May 13;47(19):5460-4. doi: 10.1021/bi702343y. Epub 2008 Apr 17.
DNA interstrand cross-links (ICLs) are mainly repaired by the combined action of nucleotide excision repair and homologous recombination in E. coli. Genetic data also suggest the existence of a nucleotide excision repair-dependent, homologous recombination-independent ICL repair pathway. The involvement of translesion synthesis in this pathway has been postulated; however, the molecular mechanism of this pathway is not understood. To examine the role of translesion synthesis in ICL repair, we generated a defined substrate with a single psoralen ICL that mimics a postincision structure generated by nucleotide excision repair. We demonstrated that the Klenow fragment (DNA polymerase I) performs translesion synthesis on this model substrate. This in vitro translesion synthesis assay will help in understanding the basic mechanism of a postincision translesion synthesis process in ICL repair.
在大肠杆菌中,DNA链间交联(ICL)主要通过核苷酸切除修复和同源重组的联合作用进行修复。遗传数据也表明存在一种依赖核苷酸切除修复、不依赖同源重组的ICL修复途径。推测跨损伤合成参与了该途径;然而,该途径的分子机制尚不清楚。为了研究跨损伤合成在ICL修复中的作用,我们构建了一个带有单个补骨脂素ICL的特定底物,该底物模拟了核苷酸切除修复产生的切口后结构。我们证明了klenow片段(DNA聚合酶I)在该模型底物上进行跨损伤合成。这种体外跨损伤合成测定将有助于理解ICL修复中切口后跨损伤合成过程的基本机制。