Department of Chemistry, University of North Carolina, Chapel Hill,North Carolina 27599, USA.
Biochemistry. 2010 Apr 13;49(14):3174-90. doi: 10.1021/bi901871u.
The first step in DNA mismatch repair (MMR) is the recognition of DNA mismatches or nucleotide insertions/deletions (IDLs) by MutS and MutS homologues. To investigate the conformational properties of MutS-mismatch complexes, we used single-molecule fluorescence resonance energy transfer (smFRET) to examine the dynamics of MutS-induced DNA bending at a GT mismatch. The FRET measurements reveal that the MutS-GT mismatch recognition complex is highly dynamic, undergoing conformational transitions between many states with different degrees of DNA bending. Due to the complexity of the data, we developed an analysis approach, called FRET TACKLE, in which we combine direct analysis of FRET transitions with examination of kinetic lifetimes to identify all of the conformational states and characterize the kinetics of the binding and conformational equilibria. The data reveal that MutS-GT complexes can reside in six different conformations, which have lifetimes that differ by as much as 20-fold and exhibit rates of interconversion that vary by 2 orders of magnitude. To gain further insight into the dynamic properties of GT-MutS complexes and to bolster the validity of our analysis, we complemented our experimental data with Monte Carlo simulations. Taken together, our results suggest that the dynamics of the MutS-mismatch complex could govern the efficiency of repair of different DNA mismatches. Finally, in addition to revealing these important biological implications of MutS-DNA interactions, this FRET TACKLE method will enable the analysis of the complex dynamics of other biological systems.
DNA 错配修复 (MMR) 的第一步是 MutS 和 MutS 同源物识别 DNA 错配或核苷酸插入/缺失 (IDL)。为了研究 MutS-错配复合物的构象特性,我们使用单分子荧光共振能量转移 (smFRET) 来检测 MutS 在 GT 错配处诱导的 DNA 弯曲的动力学。FRET 测量表明,MutS-GT 错配识别复合物具有高度的动态性,在不同程度的 DNA 弯曲的许多状态之间发生构象转变。由于数据的复杂性,我们开发了一种分析方法,称为 FRET TACKLE,在该方法中,我们将 FRET 跃迁的直接分析与动力学寿命的检查相结合,以确定所有构象状态并表征结合和构象平衡的动力学。数据表明,MutS-GT 复合物可以存在于六种不同的构象中,其寿命相差多达 20 倍,并且表现出变化幅度高达 2 个数量级的互变速率。为了更深入地了解 GT-MutS 复合物的动态特性并增强我们分析的有效性,我们用蒙特卡罗模拟补充了我们的实验数据。总之,我们的结果表明,MutS-错配复合物的动力学可能控制不同 DNA 错配修复的效率。最后,除了揭示 MutS-DNA 相互作用的这些重要生物学意义外,这种 FRET TACKLE 方法还将能够分析其他生物系统的复杂动力学。