Plank Jody L, Hsieh Tao-Shih
Department of Biochemistry, Duke University Medical Center, Durham, North Carolina 27710.
Department of Biochemistry, Duke University Medical Center, Durham, North Carolina 27710.
J Biol Chem. 2006 Jun 23;281(25):17510-17516. doi: 10.1074/jbc.M602933200. Epub 2006 Apr 11.
The double Holliday junction (dHJ) is a central intermediate to homologous recombination, but biochemical analysis of the metabolism of this structure has been hindered by the lack of a substrate that adequately replicates the endogenous structure. We have synthesized a novel dHJ substrate that consists of two small, double stranded DNA circles conjoined by two Holliday junctions (HJs). Its biochemical synthesis is based on the production of two pairs of single stranded circles from phagemids, followed by their sequential annealing with reverse gyrase. The sequence between the two HJs is identical on both strands, allowing the HJs to migrate without the generation of unpaired regions of DNA, whereas the distance between the HJs is on the order of gene conversion tracts thus far measured in Drosophila and mouse model systems. The structure of this substrate also provides similar topological constraint as would occur in an endogenous dHJ. Digestion of the dHJ substrate by T7 endonuclease I resolves the substrate into crossover and non-crossover products, as predicted by the Szostak model of double strand break repair. This substrate will greatly facilitate the examination of the mechanism of resolution of double Holliday junctions.
双Holliday连接体(dHJ)是同源重组的核心中间体,但由于缺乏能充分复制内源性结构的底物,对该结构代谢的生化分析受到了阻碍。我们合成了一种新型dHJ底物,它由两个小的双链DNA环通过两个Holliday连接体(HJ)相连组成。其生化合成基于从噬菌粒产生两对单链环,然后它们与反向回旋酶顺序退火。两条链上两个HJ之间的序列相同,使得HJ能够迁移而不产生DNA未配对区域,而两个HJ之间的距离与迄今为止在果蝇和小鼠模型系统中测量的基因转换片段长度相当。该底物的结构也提供了与内源性dHJ中类似的拓扑限制。如双链断裂修复的Szostak模型所预测的那样,用T7核酸内切酶I消化dHJ底物可将底物分解成交叉和非交叉产物。这种底物将极大地促进对双Holliday连接体解离机制的研究。