Drotschmann K, Yang W, Brownewell F E, Kool E T, Kunkel T A
Laboratory of Molecular Genetics, NIEHS, National Institutes of Health, Research Triangle Park, North Carolina 27709, USA.
J Biol Chem. 2001 Dec 7;276(49):46225-9. doi: 10.1074/jbc.C100450200. Epub 2001 Oct 18.
Crystal structures of bacterial MutS homodimers bound to mismatched DNA reveal asymmetric interactions of the two subunits with DNA. A phenylalanine and glutamate of one subunit make mismatched base-specific interactions, and residues of both subunits contact the DNA backbone surrounding the mismatched base, but asymmetrically. A number of amino acids in MutS that contact the DNA are conserved in the eukaryotic Msh2-Msh6 heterodimer. We report here that yeast strains with amino acids substituted for residues inferred to interact with the DNA backbone or mismatched base have elevated spontaneous mutation rates consistent with defective mismatch repair. Purified Msh2-Msh6 with substitutions in the conserved Phe(337) and Glu(339) in Msh6 thought to stack or hydrogen bond, respectively, with the mismatched base do have reduced DNA binding affinity but normal ATPase activity. Moreover, wild-type Msh2-Msh6 binds with lower affinity to mismatches with thymine replaced by difluorotoluene, which lacks the ability to hydrogen bond. The results suggest that yeast Msh2-Msh6 interacts asymmetrically with the DNA through base-specific stacking and hydrogen bonding interactions and backbone contacts. The importance of these contacts decreases with increasing distance from the mismatch, implying that interactions at and near the mismatch are important for binding in a kinked DNA conformation.
与错配DNA结合的细菌MutS同型二聚体的晶体结构揭示了两个亚基与DNA的不对称相互作用。一个亚基的苯丙氨酸和谷氨酸与错配碱基形成特异性相互作用,两个亚基的残基都与错配碱基周围的DNA主链接触,但这种接触是不对称的。MutS中许多与DNA接触的氨基酸在真核生物的Msh2-Msh6异源二聚体中是保守的。我们在此报告,用氨基酸替代推断与DNA主链或错配碱基相互作用的残基的酵母菌株,其自发突变率升高,这与错配修复缺陷一致。纯化的Msh2-Msh6中,Msh6中保守的苯丙氨酸(337)和谷氨酸(339)分别被认为与错配碱基形成堆积或氢键,其DNA结合亲和力降低,但ATP酶活性正常。此外,野生型Msh2-Msh6与胸腺嘧啶被二氟甲苯取代的错配物结合亲和力较低,二氟甲苯缺乏形成氢键的能力。结果表明,酵母Msh2-Msh6通过碱基特异性堆积、氢键相互作用和主链接触与DNA不对称相互作用。这些接触的重要性随着与错配距离的增加而降低,这意味着在错配处及附近的相互作用对于在扭结DNA构象中的结合很重要。