Ishida Hisashi, Matsumoto Atsushi
Quantum Beam Science Research Directorate, National Institutes for Quantum and Radiological Science and Technology, 8-1-7 Umemidai Kizugawa-Shi, Kyoto, 619-0215, Japan.
Proteins. 2016 Sep;84(9):1287-303. doi: 10.1002/prot.25077. Epub 2016 Jun 15.
In order to understand how MutS recognizes mismatched DNA and induces the reaction of DNA repair using ATP, the dynamics of the complexes of MutS (bound to the ADP and ATP nucleotides, or not) and DNA (with mismatched and matched base-pairs) were investigated using molecular dynamics simulations. As for DNA, the structure of the base-pairs of the homoduplex DNA which interacted with the DNA recognition site of MutS was intermittently disturbed, indicating that the homoduplex DNA was unstable. As for MutS, the disordered loops in the ATPase domains, which are considered to be necessary for the induction of DNA repair, were close to (away from) the nucleotide-binding sites in the ATPase domains when the nucleotides were (not) bound to MutS. This indicates that the ATPase domains changed their structural stability upon ATP binding using the disordered loop. Conformational analysis by principal component analysis showed that the nucleotide binding changed modes which have structurally solid ATPase domains and the large bending motion of the DNA from higher to lower frequencies. In the MutS-mismatched DNA complex bound to two nucleotides, the bending motion of the DNA at low frequency modes may play a role in triggering the formation of the sliding clamp for the following DNA-repair reaction step. Moreover, MM-PBSA/GBSA showed that the MutS-homoduplex DNA complex bound to two nucleotides was unstable because of the unfavorable interactions between MutS and DNA. This would trigger the ATP hydrolysis or separation of MutS and DNA to continue searching for mismatch base-pairs. Proteins 2016; 84:1287-1303. © 2016 Wiley Periodicals, Inc.
为了理解MutS如何识别错配DNA并利用ATP诱导DNA修复反应,我们使用分子动力学模拟研究了MutS(结合或未结合ADP和ATP核苷酸)与DNA(具有错配和匹配碱基对)复合物的动力学。对于DNA,与MutS的DNA识别位点相互作用的同型双链DNA碱基对结构会间歇性受到干扰,这表明同型双链DNA不稳定。对于MutS,当核苷酸与(未与)MutS结合时,ATP酶结构域中被认为是诱导DNA修复所必需的无序环靠近(远离)ATP酶结构域中的核苷酸结合位点。这表明ATP酶结构域利用无序环在ATP结合时改变了其结构稳定性。通过主成分分析进行的构象分析表明,核苷酸结合改变了模式,使ATP酶结构域在结构上更稳定,同时DNA的大弯曲运动频率从高到低变化。在与两个核苷酸结合的MutS-错配DNA复合物中,低频模式下DNA的弯曲运动可能在触发后续DNA修复反应步骤中滑动夹的形成方面发挥作用。此外,MM-PBSA/GBSA表明,由于MutS与DNA之间存在不利相互作用,与两个核苷酸结合的MutS-同型双链DNA复合物不稳定。这将触发ATP水解或MutS与DNA分离,以继续寻找错配碱基对。《蛋白质》2016年;84:1287 - 1303。©2016威利期刊公司。