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首页> 外文期刊>Journal of chemical information and modeling >Understanding product specificity of protein lysine methyltransferases from QM/MM molecular dynamics and free energy simulations: The effects of mutation on SET7/9 beyond the Tyr/Phe switch
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Understanding product specificity of protein lysine methyltransferases from QM/MM molecular dynamics and free energy simulations: The effects of mutation on SET7/9 beyond the Tyr/Phe switch

机译:从QM / MM分子动力学和自由能模拟了解蛋白质赖氨酸甲基转移酶的产品特异性:超越Tyr / Phe开关的突变对SET7 / 9的影响

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摘要

The results of hybrid quantum mechanical/molecular mechanical (QM/MM) free energy (potential of mean force) simulations for methyl-transfer processes in SET7/9 and its Y245A mutant are compared to address the question concerning the change of the product specificity as well as catalytic efficiency due to the mutation. One of the key questions is whether or not the free energy profiles of methyl transfers may be used to predict the change of the product specificity as a result of the mutations for the residues that are not located at the Tyr/Phe switch position. The simulations show that while the wild-type SET7/9 is a monomethylase, the Y245→A mutation increases the ability of the enzyme to add more methyl groups on the target lysine (i.e., acting as a trimethylase). However, the first methyl-transfer process seems to become less efficient in the mutant compared to that in wild-type. All these results are consistent with experimental observations concerning the effects of the mutation on the product specificity and catalytic efficiency. Thus, the previous suggestion that the energetics of the methyl-transfer reactions may determine the product specificity, at least in some cases, is confirmed by the present work. Moreover, the dynamic information of the reactant complexes obtained from the QM/MM molecular dynamics simulations shows that the ability of the reactant complexes to form the reactive transition-state-like configurations may be used as an important indicator for the prediction of the product specificity of PKMTs, consistent with previous computational studies.
机译:比较了SET7 / 9及其Y245A突变体中甲基转移过程的混合量子力学/分子机械(QM / MM)自由能(平均力潜力)模拟结果,以解决有关产品特异性变化的问题以及由于突变引起的催化效率。关键问题之一是甲基转移的自由能谱是否可用于预测产物特异性的变化,这是由于不在Tyr / Phe开关位置的残基发生突变而引起的。模拟显示,虽然野生型SET7 / 9是单甲基化酶,但Y245→A突变增加了该酶在目标赖氨酸上添加更多甲基的能力(即,充当三甲基化酶)。但是,与野生型相比,突变体中的第一个甲基转移过程似乎效率较低。所有这些结果与关于突变对产物特异性和催化效率的影响的实验观察结果一致。因此,目前的研究证实了至少在某些情况下,甲基转移反应的能量学可以确定产物特异性的先前建议。此外,从QM / MM分子动力学模拟获得的反应物配合物的动态信息表明,反应物配合物形成反应性过渡态样构型的能力可以用作预测产物特异性的重要指标。与以前的计算研究一致。

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