Mukherjee Sucheta, Wright William Douglass, Ehmsen Kirk Tevebaugh, Heyer Wolf-Dietrich
Department of Microbiology & Molecular Genetics, University of California, One Shields Ave., Davis, Davis CA 95616-8665, USA.
Department of Microbiology & Molecular Genetics, University of California, One Shields Ave., Davis, Davis CA 95616-8665, USA Department of Molecular & Cellular Biology, University of California, One Shields Ave., Davis, Davis CA 95616-8665, USA
Nucleic Acids Res. 2014 Jun;42(10):6511-22. doi: 10.1093/nar/gku265. Epub 2014 Apr 17.
Mus81-Mms4/EME1 is a DNA structure-selective endonuclease that cleaves joint DNA molecules that form during homologous recombination in mitotic and meiotic cells. Here, we demonstrate by kinetic analysis using physically tethered DNA substrates that budding yeast Mus81-Mms4 requires inherent rotational flexibility in DNA junctions for optimal catalysis. Förster Resonance Energy Transfer experiments further reveal that recognition of 3'-flap and nicked Holliday junction substrates by Mus81-Mms4 involves induction of a sharp bend with a 100° angle between two duplex DNA arms. In addition, thiol crosslinking of Mus81-Mms4 bound to DNA junctions demonstrates that the heterodimer undergoes a conformational change induced by joint DNA molecules with preferred structural properties. The results from all three approaches suggest a model for catalysis by Mus81-Mms4 in which initial DNA binding is based on minimal structural requirements followed by a rate-limiting conformational transition of the substrate and protein. This leads to a sharply kinked DNA molecule that may fray the DNA four base pairs away from the junction point to position the nuclease for cleavage between the fourth and fifth nucleotide. These data suggest that mutually compatible conformational changes of Mus81-Mms4 and its substrates tailor its incision activity to nicked junction molecules.
Mus81-Mms4/EME1是一种DNA结构选择性内切核酸酶,可切割在有丝分裂和减数分裂细胞的同源重组过程中形成的连接DNA分子。在此,我们通过使用物理连接的DNA底物进行动力学分析证明,出芽酵母Mus81-Mms4需要DNA连接点具有固有的旋转灵活性才能实现最佳催化作用。荧光共振能量转移实验进一步揭示,Mus81-Mms4对3'-侧翼和带切口的霍利迪连接底物的识别涉及在两条双链DNA臂之间诱导形成100°角的急剧弯曲。此外,与DNA连接点结合的Mus81-Mms4的硫醇交联表明,该异二聚体经历了由具有优选结构特性的连接DNA分子诱导的构象变化。所有这三种方法的结果都提示了一种Mus81-Mms4催化模型,其中初始DNA结合基于最小结构要求,随后是底物和蛋白质的限速构象转变。这会导致形成一个急剧扭结的DNA分子,该分子可能会使DNA在远离连接点四个碱基对处解链,从而将核酸酶定位在第四和第五个核苷酸之间进行切割。这些数据表明,Mus81-Mms4与其底物相互兼容的构象变化使其切割活性适应带切口的连接分子。