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首页> 外文期刊>ACS Omega >Mechanistic Insights into the Differential Catalysis by RheB and Its Mutants: Y35A and Y35A-D65A
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Mechanistic Insights into the Differential Catalysis by RheB and Its Mutants: Y35A and Y35A-D65A

机译:RheB及其突变体:Y35A和Y35A-D65A差异催化的机理研究。

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RheB GTPase is a Ras-related molecular switch, which regulates the mTOR signaling pathway by cycling between the active [guanosine triphosphate (GTP)] state and inactive [guanine diphosphate (GDP)] state. Impairment of GTPase activity because of mutations in several small GTPases is known to be associated with several cancers. The conventional GTPase mechanism such as in H-Ras requires a conserved glutamine (Q64) in the switch-II region of RheB to align the catalytic water molecule for efficient GTP hydrolysis. The conformation of this conserved glutamine is different in RheB, resulting in an altered conformation of the entire switch-II region. Studies on the atypical switch-II conformation in RheB revealed a distinct, noncanonical mode of GTP hydrolysis. An RheB mutant Y35A was previously shown to exclusively enhance the intrinsic GTPase activity of RheB, whereas the Y35A-D65A double mutant was shown to reduce the elevated GTPase activity. Here, we have used all-atom molecular dynamics (MD) simulations for comprehensive understanding of the conformational dynamics associated with the fast (Y35A) and slow (Y35A-D65A) hydrolyzing mutants of RheB. Using a combination of starting models from PDB structures and in-silico generated mutant structures, we discuss the observed conformational deviations in wild type (WT) versus mutants. Our results show that a number of interactions of RheB with phosphates of GTP as well as Mg~(2+) are destabilized in Y35A mutant in the switch-I region. We report distinct water dynamics at the active site of WT and mutants. Furthermore, principal component analysis showed significant differences in the conformational space sampled by the WT and mutants. Our observations provide improved understanding of the noncanonical GTP hydrolysis mechanism adopted by RheB and its modulation by Y35A and Y35A-D65A mutants.
机译:RheB GTPase是与Ras相关的分子开关,它通过在活跃的[鸟苷三磷酸(GTP)]状态和非活跃的[鸟嘌呤二磷酸(GDP)]状态之间循环来调节mTOR信号通路。已知由于几种小GTP酶中的突变而导致的GTP酶活性受损与几种癌症有关。常规的GTPase机制(例如在H-Ras中)需要在RheB的switch-II区域中保守的谷氨酰胺(Q64)来排列催化水分子以进行有效的GTP水解。该保守的谷氨酰胺的构象在RheB中是不同的,导致整个switch-II区域的构象改变。对RheB中非典型switch-II构象的研究揭示了GTP水解的独特,非经典模式。以前显示RheB突变体Y35A仅增强RheB的固有GTPase活性,而显示Y35A-D65A双突变体可降低升高的GTPase活性。在这里,我们已使用全原子分子动力学(MD)模拟来全面了解与RheB的快速(Y35A)和慢速(Y35A-D65A)水解突变体相关的构象动力学。使用来自PDB结构和计算机生成的突变体结构的起始模型的组合,我们讨论了在野生型(WT)与突变体中观察到的构象偏差。我们的结果表明,RheB与GTP磷酸盐以及Mg〜(2+)的许多相互作用在switch-I区的Y35A突变体中不稳定。我们报告了WT和突变体的活性部位不同的水动力学。此外,主成分分析显示野生型和突变体采样的构象空间存在显着差异。我们的观察结果提供了对RheB采用的非规范GTP水解机制及其由Y35A和Y35A-D65A突变体调控的更好的理解。

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