氢键在蛋白质结构预测和设计中的潜在功能。

Alexandre V Morozov, Tanja Kortemme
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引用次数: 58

摘要

氢键是生物大分子和大分子复合物自由能的重要组成部分,因此准确描述这些相互作用对生物分子建模的进展具有重要意义。氢键的简单描述是基于静电偶极-偶极相互作用,涉及氢供体和受体-受体基偶极子,但氢键形成的物理性质更为复杂。在最基本的层面上,氢键是一种量子力学现象,有共价效应、极化和电荷转移的贡献。最近的实验和理论计算表明,静电和共价组分都决定了氢键的性质。很可能,描述氢键所需的严格程度将取决于所提出的问题。目前的氢键建模方法包括基于蛋白质和小分子结构数据库中氢键几何形状调查的知识描述、经验分子力学模型和基于量子力学的电子结构计算。从头算氢键能和几何形状的计算精确地再现了从蛋白质结构中观察到的氢键几何形状分布中获得的能量景观。发现取向依赖的氢键电位可以提高蛋白质结构预测和精炼、蛋白质-蛋白质对接和蛋白质设计的质量。
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Potential functions for hydrogen bonds in protein structure prediction and design.

Hydrogen bonds are an important contributor to free energies of biological macromolecules and macromolecular complexes, and hence an accurate description of these interactions is important for progress in biomolecular modeling. A simple description of the hydrogen bond is based on an electrostatic dipole-dipole interaction involving hydrogen-donor and acceptor-acceptor base dipoles, but the physical nature of hydrogen bond formation is more complex. At the most fundamental level, hydrogen bonding is a quantum mechanical phenomenon with contributions from covalent effects, polarization, and charge transfer. Recent experiments and theoretical calculations suggest that both electrostatic and covalent components determine the properties of hydrogen bonds. Likely, the level of rigor required to describe hydrogen bonding will depend on the problem posed. Current approaches to modeling hydrogen bonds include knowledge-based descriptions based on surveys of hydrogen bond geometries in structural databases of proteins and small molecules, empirical molecular mechanics models, and quantum mechanics-based electronic structure calculations. Ab initio calculations of hydrogen bonding energies and geometries accurately reproduce energy landscapes obtained from the distributions of hydrogen bond geometries observed in protein structures. Orientation-dependent hydrogen bonding potentials were found to improve the quality of protein structure prediction and refinement, protein-protein docking, and protein design.

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