Arvidson D N, Lu F, Faber C, Zalkin H, Brennan R G
Department of Biochemistry and Molecular Biology, Oregon Health Sciences University, Portland 97201-3098, USA.
Nat Struct Biol. 1998 Jun;5(6):436-41. doi: 10.1038/nsb0698-436.
The crystal structure of the purine repressor mutant L54M bound to hypoxanthine and to the purF operator provides a stereochemical understanding of the high DNA affinity of this hinge helix mutant. Comparison of the PurR L54M-DNA complex to that of the wild type PurR-DNA complex reveals that these purine repressors bind and kink DNA similarly despite significant differences in their minor groove contacts and routes to interdigitation of the central C.G:G.C base pair step. Modeling studies, supported by genetic and biochemical data, show that the stereochemistry of the backbone atoms of the abutting hinge helices combined with the rigidity of the kinked base pair step constrain the interdigitating residue to leucine or methionine for the LacI/GalR family of transcription regulators.
与次黄嘌呤及purF操纵基因结合的嘌呤阻遏物突变体L54M的晶体结构,为这种铰链螺旋突变体的高DNA亲和力提供了立体化学层面的理解。将PurR L54M-DNA复合物与野生型PurR-DNA复合物进行比较发现,尽管这两种嘌呤阻遏物在小沟接触以及中央C.G:G.C碱基对步移的相互交错路径上存在显著差异,但它们与DNA的结合及使DNA弯曲的方式相似。由遗传和生化数据支持的模型研究表明,对于LacI/GalR家族的转录调节因子而言,相邻铰链螺旋主链原子的立体化学结构与弯曲碱基对步移的刚性相结合,将相互交错的残基限制为亮氨酸或甲硫氨酸。