Obarska Agnieszka, Blundell Alex, Feder Marcin, Vejsadová Stepánka, Sisáková Eva, Weiserová Marie, Bujnicki Janusz M, Firman Keith
Laboratory of Bioinformatics and Protein Engineering, International Institute of Molecular and Cell Biology, Trojdena 4, 02-109 Warsaw, Poland.
Nucleic Acids Res. 2006 Apr 13;34(7):1992-2005. doi: 10.1093/nar/gkl132. Print 2006.
Recent publication of crystal structures for the putative DNA-binding subunits (HsdS) of the functionally uncharacterized Type I restriction-modification (R-M) enzymes MjaXIP and MgeORF438 have provided a convenient structural template for analysis of the more extensively characterized members of this interesting family of multisubunit molecular motors. Here, we present a structural model of the Type IC M.EcoR124I DNA methyltransferase (MTase), comprising the HsdS subunit, two HsdM subunits, the cofactor AdoMet and the substrate DNA molecule. The structure was obtained by docking models of individual subunits generated by fold-recognition and comparative modelling, followed by optimization of inter-subunit contacts by energy minimization. The model of M.EcoR124I has allowed identification of a number of functionally important residues that appear to be involved in DNA-binding. In addition, we have mapped onto the model the location of several new mutations of the hsdS gene of M.EcoR124I that were produced by misincorporation mutagenesis within the central conserved region of hsdS, we have mapped all previously identified DNA-binding mutants of TRD2 and produced a detailed analysis of the location of surface-modifiable lysines. The model structure, together with location of the mutant residues, provides a better background on which to study protein-protein and protein-DNA interactions in Type I R-M systems.
功能尚未明确的I型限制修饰(R-M)酶MjaXIP和MgeORF438的推定DNA结合亚基(HsdS)的晶体结构最近发表,为分析这个有趣的多亚基分子马达家族中研究更广泛的成员提供了便利的结构模板。在此,我们展示了I型C类M.EcoR124I DNA甲基转移酶(MTase)的结构模型,它由HsdS亚基、两个HsdM亚基、辅因子AdoMet和底物DNA分子组成。该结构是通过对由折叠识别和比较建模生成的各个亚基模型进行对接,然后通过能量最小化优化亚基间接触而获得的。M.EcoR124I的模型使得能够鉴定出一些似乎参与DNA结合的功能重要残基。此外,我们已将通过在hsdS的中央保守区域内错误掺入诱变产生的M.EcoR124I的hsdS基因的几个新突变的位置映射到该模型上,我们已确定了TRD2所有先前鉴定的DNA结合突变体,并对可表面修饰赖氨酸的位置进行了详细分析。该模型结构以及突变残基的位置为研究I型R-M系统中的蛋白质-蛋白质和蛋白质-DNA相互作用提供了更好的背景。