Schwartz Erin K, Heyer Wolf-Dietrich
Department of Microbiology, University of California-Davis, Davis, CA 95616, USA.
Chromosoma. 2011 Apr;120(2):109-27. doi: 10.1007/s00412-010-0304-7. Epub 2011 Jan 11.
Homologous recombination is required for maintaining genomic integrity by functioning in high-fidelity repair of DNA double-strand breaks and other complex lesions, replication fork support, and meiotic chromosome segregation. Joint DNA molecules are key intermediates in recombination and their differential processing determines whether the genetic outcome is a crossover or non-crossover event. The Holliday model of recombination highlights the resolution of four-way DNA joint molecules, termed Holliday junctions, and the bacterial Holliday junction resolvase RuvC set the paradigm for the mechanism of crossover formation. In eukaryotes, much effort has been invested in identifying the eukaryotic equivalent of bacterial RuvC, leading to the discovery of a number of DNA endonucleases, including Mus81-Mms4/EME1, Slx1-Slx4/BTBD12/MUS312, XPF-ERCC1, and Yen1/GEN1. These nucleases exert different selectivity for various DNA joint molecules, including Holliday junctions. Their mutant phenotypes and distinct species-specific characteristics expose a surprisingly complex system of joint molecule processing. In an attempt to reconcile the biochemical and genetic data, we propose that nicked junctions constitute important in vivo recombination intermediates whose processing determines the efficiency and outcome (crossover/non-crossover) of homologous recombination.
同源重组通过对DNA双链断裂和其他复杂损伤进行高保真修复、支持复制叉以及减数分裂染色体分离来维持基因组完整性。DNA联合分子是重组过程中的关键中间体,它们的差异处理决定了遗传结果是交叉事件还是非交叉事件。重组的霍利迪模型突出了四链DNA联合分子(即霍利迪连接体)的拆分,细菌霍利迪连接体解离酶RuvC为交叉形成机制树立了典范。在真核生物中,人们投入了大量精力来寻找与细菌RuvC等效的真核生物蛋白,从而发现了许多DNA内切核酸酶,包括Mus81-Mms4/EME1、Slx1-Slx4/BTBD12/MUS312、XPF-ERCC1和Yen1/GEN1。这些核酸酶对包括霍利迪连接体在内的各种DNA联合分子具有不同的选择性。它们的突变表型和独特的物种特异性特征揭示了一个惊人复杂的联合分子处理系统。为了协调生化和遗传数据,我们提出带切口的连接体构成了重要的体内重组中间体,其处理过程决定了同源重组的效率和结果(交叉/非交叉)。