Heo Seong-Dal, Cho Minseon, Ku Ja Kang, Ban Changill
Department of Chemistry, Pohang University of Science and Technology, San 31, Hyoja-Dong, Pohang, Gyungbuk 790-784, Republic of Korea.
Biochem Biophys Res Commun. 2007 Dec 14;364(2):264-9. doi: 10.1016/j.bbrc.2007.09.130. Epub 2007 Oct 12.
The ability of MutS to recognize mismatched DNA is required to initiate a mismatch repair (MMR) system. ATP binding and hydrolysis are essential in this process, but their role in MMR is still not fully understood. In this study, steady-state ATPase activities of MutS from Escherichia coli were investigated using the spectrophotometric method with a double end-blocked heteroduplex containing gapped bases. The ATPase activities of MutS increased as the number of gapped bases increased in a double end-blocked heteroduplex with 2-8 gapped bases in the chain, indicating that MutS dissociates from DNA when it reaches a scission during movement along the DNA. Since movement of MutS along the chain does not require extensive ATP hydrolysis and the ATPase activity is only enhanced when MutS dissociates from a heteroduplex, these results support the sliding clamp model in which ATP binding by MutS induces the formation of a hydrolysis-independent sliding clamp.
错配修复(MMR)系统的启动需要MutS识别错配DNA的能力。ATP结合和水解在这一过程中至关重要,但其在MMR中的作用仍未完全明确。在本研究中,采用分光光度法,利用含缺口碱基的双端封闭异源双链体,对来自大肠杆菌的MutS的稳态ATP酶活性进行了研究。在链中含有2 - 8个缺口碱基的双端封闭异源双链体中,随着缺口碱基数量的增加,MutS的ATP酶活性增强,这表明MutS在沿DNA移动过程中到达断裂点时会从DNA上解离。由于MutS沿链的移动不需要大量ATP水解,且只有当MutS从异源双链体解离时ATP酶活性才会增强,这些结果支持了滑动夹模型,即MutS结合ATP会诱导形成不依赖水解的滑动夹。