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Theoretical IR Spectroscopy Based on QM/MM Calculations Provides Changes in Charge Distribution Bond Lengths and Bond Angles of the GTP Ligand Induced by the Ras-Protein

机译:基于QM / MM计算的理论红外光谱提供了Ras蛋白诱导的GTP配体电荷分布键长和键角的变化

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摘要

The GTPase Ras p21 is a crucial switch in cellular signal transduction. Fourier transform infrared (FTIR) spectra of the substrate guanosine triphosphate (GTP) show remarkable changes when it binds to the enzyme. The reduced band widths indicate that the flexible GTP molecule is guided by the protein into a preferred conformation. The delocalized phosphate vibrations of unbound GTP become localized. The frequency shifts show an electron movement toward β-phosphate, which probably contributes to catalysis by reducing the free activation energy. To quantify these qualitative observations we performed QM/MM molecular dynamics simulations of Ras·GTP and GTP in water. The triphosphate part of GTP was treated quantum mechanically using density functional theory (DFT). Vibrational spectra were calculated in harmonic approximation with an average deviation of 3% from the experimental frequencies. This provides a high confidence in the computational results as vibrational spectra are highly sensitive to conformation and charge distribution. As compared to GTP in water, Ras-bound GTP shows a shift of negative charge of ∼0.2 e toward the β-phosphate from γ-phosphate and from α-phosphate due to the positive charge of the magnesium ion, to a lesser extent of Lys-16, and surprisingly without any effect of the P-loop backbone. Magnesium and Gly-13 twist and bend the γ-O-β bonds such that the crucial bond is stretched before cleaving.
机译:GTPase Ras p21是细胞信号转导中的关键开关。底物鸟苷三磷酸(GTP)的傅立叶变换红外光谱(FTIR)在与酶结合时显示出显着变化。减小的带宽表明柔性GTP分子被蛋白质引导成优选的构象。未结合的GTP的离域磷酸盐振动变得局部化。频移表明电子向β-磷酸移动,这可能通过降低自由活化能而有助于催化。为了量化这些定性观察,我们在水中进行了Ras·GTP和GTP的QM / MM分子动力学模拟。使用密度泛函理论(DFT)对GTP的三磷酸部分进行了量子力学处理。振动频谱以谐波近似计算,与实验频率的平均偏差为3%。由于振动光谱对构象和电荷分布高度敏感,因此这对计算结果提供了很高的可信度。与水中的GTP相比,由于镁离子的正电荷,与Ras结合的GTP表现出约0.2 e的负电荷从γ磷酸盐和α磷酸盐向β磷酸盐的迁移,但程度较小。 Lys-16,并且令人惊讶地没有P环骨架的任何作用。镁和Gly-13扭曲并弯曲γ-O-β键,这样关键的键在断裂前就被拉伸了。

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