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首页> 外文期刊>Physical chemistry chemical physics: PCCP >The specific vibrational modes of GTP in solution and bound to Ras: a detailed theoretical analysis by QM/MM simulations
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The specific vibrational modes of GTP in solution and bound to Ras: a detailed theoretical analysis by QM/MM simulations

机译:GTP在溶液中并与Ras结合的特定振动模式:通过QM / MM模拟进行的详细理论分析

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The hydrolysis of guanosine triphosphate (GTP) in general, and especially by GTPases like the Ras protein, is in the focus of biological investigations. A huge amount of experimental data from Fourier-transformed infrared studies is currently available, and many vibrational bands of free GTP, GTPMg~(2+), and RasGTPMg~(2+) in solution have been assigned by isotopic labeling. In the Ras environment, bands between 800 cm~(-1) and 1300 cm~(-1) have already been assigned, but not those below 800 cm~(-1). The combination of quantum and molecular mechanics (QM/MM) methods takes the quantum effects for selected relevant atoms into account. This provides structural details, vibrational frequencies and electron distributions of the region of interest. We therefore used MM and QM/MM simulations to investigate the normal vibrational modes of GTP, GTPMg~(2+), and RasGTPMg~(2+) in solution, and assigned the vibrational frequencies for each normal vibration mode. In this study, the quantum box contains the nucleoside and the Mg~(2+).The comparison of calculated and experimental vibrational spectra provides a very good control for the quality of the calculations. Structurally, MM and QM/MM simulations reveal a stable tridentate coordination of the Mg~(2+) by GTP in water, and a stable bidentate coordination by GTP in complex with Ras. For validation, we compare the calculated frequencies and isotopic shifts with the experimental results available in the range of 800 cm~(-1) to 1300 cm~(-1). For the first time we suggest band assignments of the vibrational modes below 800 cm~(-1) by comparison of calculated and experimental spectra.
机译:一般而言,鸟苷三磷酸(GTP)的水解,尤其是像Ras蛋白这样的GTPases的水解,是生物学研究的重点。目前已经获得了来自傅立叶变换红外研究的大量实验数据,并且通过同位素标记分配了溶液中自由GTP,GTPMg〜(2+)和RasGTPMg〜(2+)的许多振动带。在Ras环境中,已经指定了800 cm〜(-1)和1300 cm〜(-1)之间的频段,但未指定800 cm〜(-1)以下的频段。量子力学和分子力学(QM / MM)方法的结合考虑了选定相关原子的量子效应。这提供了感兴趣区域的结构细节,振动频率和电子分布。因此,我们使用MM和QM / MM仿真研究了溶液中GTP,GTPMg〜(2+)和RasGTPMg〜(2+)的正常振动模式,并为每种正常振动模式分配了振动频率。在这项研究中,量子盒包含了核苷和Mg〜(2+)。计算的振动光谱和实验的振动光谱进行了比较,从而很好地控制了计算质量。在结构上,MM和QM / MM模拟揭示了水中GTP对Mg〜(2+)的稳定的三齿配位,以及GTP与Ras配合物对Mg〜(2+)的稳定的二齿配位。为了进行验证,我们将计算的频率和同位素位移与800 cm〜(-1)至1300 cm〜(-1)范围内的实验结果进行了比较。通过计算和实验光谱的比较,我们首次建议在800 cm〜(-1)以下的振动模式进行频带分配。

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