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Mechanism of allosteric activation of human mRNA cap methyltransferase (RNMT) by RAM: insights from accelerated molecular dynamics simulations

机译:RAM的人mRNA甲基转移酶(RNMT)的变构激活机制:加速分子动力学模拟的见解

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摘要

The RNA guanine-N7 methyltransferase (RNMT) in complex with RNMT-activating miniprotein (RAM) catalyses the formation of a N7-methylated guanosine cap structure on the 5' end of nascent RNA polymerase II transcripts. The mRNA cap protects the primary transcript from exonucleases and recruits cap-binding complexes that mediate RNA processing, export and translation. By using microsecond standard and accelerated molecular dynamics simulations, we provide for the first time a detailed molecular mechanism of allosteric regulation of RNMT by RAM. We show that RAM selects the RNMT active site conformations that are optimal for binding of substrates (AdoMet and the cap), thus enhancing their affinity. Furthermore, our results strongly suggest the likely scenario in which the cap binding promotes the subsequent AdoMet binding, consistent with the previously suggested cooperative binding model. By employing the network community analyses, we revealed the underlying long-range allosteric networks and paths that are crucial for allosteric regulation by RAM. Our findings complement and explain previous experimental data on RNMT activity. Moreover, this study provides the most complete description of the cap and AdoMet binding poses and interactions within the enzyme's active site. This information is critical for the drug discovery efforts that consider RNMT as a promising anti-cancer target.
机译:RNA鸟嘌呤-N7甲基转移酶(RNMT)与RNMT激活的小型细胞蛋白(RAM)催化在新生RNA聚合酶II转录物的5'末端形成N7-甲基化鸟苷帽结构。 mRNA帽保护来自外切核酸酶的主要转录物,并促进介导RNA加工,出口和翻译的帽结合复合物。通过使用微秒标准和加速分子动力学模拟,我们首次提供RNMT对RNMT的变构调节的详细分子机制。我们表明RAM选择最佳用于衬底(Adomet和帽)的最佳RNMT有源网站构象,从而提高它们的亲和力。此外,我们的结果强烈建议帽结合促进随后的Adomet结合的可能场景,与先前提出的协作结合模型一致。通过采用网络社区分析,我们揭示了潜在的远程颠覆网络和路径,对RAM的变构规则至关重要。我们的调查结果补充并解释了关于RNMT活动的先前实验数据。此外,该研究提供了帽子和Adomet结合姿势和酶在酶的活性位点内的相互作用的最完整描述。这些信息对于考虑RNMT作为有前途的抗癌目标的药物发现努力至关重要。

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