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On the energy components governing molecular recognition in the framework of continuum approaches

机译:在连续性方法框架中控制分子识别的能量成分

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摘要

Molecular recognition is a process that brings together several biological macromolecules to form a complex and one of the most important characteristics of the process is the binding free energy. Various approaches exist to model the binding free energy, provided the knowledge of the 3D structures of bound and unbound molecules. Among them, continuum approaches are quite appealing due to their computational efficiency while at the same time providing predictions with reasonable accuracy. Here we review recent developments in the field emphasizing on the importance of adopting adequate description of physical processes taking place upon the binding. In particular, we focus on the efforts aiming at capturing some of the atomistic details of the binding phenomena into the continuum framework. When possible, the energy components are reviewed independently of each other. However, it is pointed out that rigorous approaches should consider all energy contributions on the same footage. The two major schemes for utilizing the individual energy components to predict binding affinity are outlined as well.
机译:分子识别是一个将几种生物大分子结合在一起形成复合物的过程,该过程最重要的特征之一就是结合自由能。只要了解结合和未结合分子的3D结构知识,就可以使用多种方法来模拟结合自由能。其中,连续性方法由于其计算效率而颇具吸引力,同时又提供了合理准确性的预测。在这里,我们回顾了该领域的最新发展,着重强调了对绑定过程中发生的物理过程进行充分描述的重要性。特别是,我们专注于旨在将绑定现象的一些原子细节捕获到连续体框架中的工作。在可能的情况下,相互独立地检查能量分量。但是,需要指出的是,严格的方法应考虑同一素材上的所有能量贡献。还概述了利用各个能量成分预测结合亲和力的两种主要方案。

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