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Comparative studies for evaluation of CO2 fixation in the cavity of the Rubisco enzyme using QM, QM/MM and linear-scaling DFT methods

机译:QM,QM / MM和线性缩放DFT方法评估Rubisco酶腔中CO2固定的比较研究

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摘要

We evaluate the minimum energy configuration (MM) and binding free energy (QM/MM and QM) of CO2 to Rubisco, of fundamental importance to the carboxylation step of the reaction. Two structural motifs have been used to achieve this goal, one of which starts from the initial X-ray Protein Data Bank structure of Rubisco's active centre (671 atoms), and the other is a simplified, smaller model (77 atoms) which has been used most successfully, thus far, for study. The small model is subjected to quantum chemical density functional theory (DFT) studies, both in vacuo and using implicit solvation. The effects of the protein environment are also included by means of a hybrid quantum mechanical/molecular mechanical (QM/MM) approach, using PM6/AMBER and B3LYP/AMBER schemes. Finally, linear-scaling DFT methods have also been applied to evaluate energetic features of the large motif, and the result obtained for the binding free energy of the CO2 underlines the importance of the accurate modelling of the surrounding protein milieu using a full DFT description.
机译:我们评估了Rubisco的最小能量构型(MM)和结合二氧化碳的自由能(QM / MM和QM),这对于反应的羧化步骤至关重要。为了达到这个目的,已经使用了两个结构基序,一个是从Rubisco活性中心的初始X射线蛋白质数据库结构开始(671个原子),另一个是简化的,较小的模型(77个原子)。迄今为止,最成功地用于研究。这个小模型在真空中和使用隐式溶剂化都接受了量子化学密度泛函理论(DFT)研究。还通过使用PM6 / AMBER和B3LYP / AMBER方案的混合量子力学/分子力学(QM / MM)方法来包括蛋白质环境的影响。最后,线性缩放DFT方法也已用于评估大基序的能量特征,并且获得的CO2结合自由能的结果强调了使用完整DFT描述精确建模周围蛋白质环境的重要性。

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