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色氨酸质子转移反应机制中水的作用。

The role of water in the proton transfer reaction mechanism in tryptophan.

机构信息

Laboratorio de Química Teórica Computacional, Facultad de Química, Pontificia Universidad Católica de Chile, Santiago, Chile.

出版信息

J Comput Chem. 2010 Nov 15;31(14):2642-9. doi: 10.1002/jcc.21559.

Abstract

The role of water in the proton transfer mechanism between the carboxylic and the amino group in tryptophan was studied through the direct, intramolecular reaction in presence of a continuum and the single water molecule mediated, intermolecular reaction in vacuum and in presence of a continuum. The introduction of the continuum reduced the activation barriers for the proton transfer from the neutral form and stabilized the zwitterion in both cases. The reaction force and the reaction electronic flux along the intrinsic reaction coordinate allowed in combination with a Natural Bond Order Analysis a more detailed description of the influence of water on the reaction mechanism. Represented as a continuum model, water reduced the energy required for bond reorganization and did not alter the first part of the intermolecular reaction, characterized through the approximation of the water molecule to the functional groups of the amino acid and a polarization of the system. The absence of a water molecule in the intramolecular proton transfer with continuum changed the reaction coordinate to a reduction of the angle between the functional groups of the amino acid leaving the energy required for bond formation unaffected. Thus, the smaller activation barrier obtained in the direct intramolecular proton transfer with continuum model in comparison to the water mediated reaction, originates from the energetically more favorable angle reduction in comparison the approximation of a water molecule.

摘要

通过在连续介质中存在的直接、分子内反应以及在真空和连续介质中存在的单个水分子介导的分子间反应,研究了水在色氨酸的羧基和氨基之间的质子转移机制中的作用。引入连续介质降低了中性形式的质子转移的活化能垒,并在两种情况下稳定了两性离子。反应力和沿着本征反应坐标的反应电子通量,结合自然键序分析,对水对反应机制的影响进行了更详细的描述。以连续介质模型表示,水降低了键重组所需的能量,并且不改变分子间反应的第一部分,这部分反应的特征是通过近似水分子到氨基酸的官能团和系统的极化。在连续介质中进行的分子内质子转移中没有水分子,这改变了反应坐标,即减少了氨基酸官能团之间的角度,而不影响键形成所需的能量。因此,与水分子介导的反应相比,连续介质中直接分子内质子转移获得的较小活化能垒源自于与水分子近似相比,更有利的能量角度降低。

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