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Structural basis underlying complex assembly and conformational transition of the type I R-M system

机译:I R-M系统复杂组装和构象转变的基础结构

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摘要

Type I restriction-modification (R-M) systems are multisubunit enzymes with separate DNA-recognition (S), methylation (M), and restriction (R) subunits. Despite extensive studies spanning five decades, the detailed molecular mechanisms underlying subunit assembly and conformational transition are still unclear due to the lack of high-resolution structural information. Here, we report the atomic structure of a type I MTase complex (2M+1S) bound to DNA and cofactor S-adenosyl methionine in the “open” form. The intermolecular interactions between M and S subunits are mediated by a four-helix bundle motif, which also determines the specificity of the interaction. Structural comparison between open and previously reported low-resolution “closed” structures identifies the huge conformational changes within the MTase complex. Furthermore, biochemical results show that R subunits prefer to load onto the closed form MTase. Based on our results, we proposed an updated model for the complex assembly. The work reported here provides guidelines for future applications in molecular biology.
机译:I型限制性修饰(R-M)系统是具有单独的DNA识别(S),甲基化(M)和限制性(R)亚基的多亚基酶。尽管进行了数十年的广泛研究,但由于缺乏高分辨率结构信息,因此亚基组装和构象转变的详细分子机制仍不清楚。在这里,我们以“开放”形式报告与DNA和辅因子S-腺苷甲硫氨酸结合的I型MTase复合物(2M + 1S)的原子结构。 M和S亚基之间的分子间相互作用由四螺旋束基元介导,这也决定了相互作用的特异性。开放和先前报道的低分辨率“封闭”结构之间的结构比较确定了MTase复合物中巨大的构象变化。此外,生化结果表明,R亚基更喜欢加载到封闭形式的MTase上。根据我们的结果,我们提出了用于复杂装配的更新模型。此处报道的工作为分子生物学的未来应用提供了指导。

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