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Peptide bond planarity constrains hydrogen bond geometry and influences secondary structure conformations

机译:肽键平面度限制氢键几何形状并影响二次结构构象

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摘要

An extensive database study of hydrogen bonds in different protein environments showed systematic variations in donor-acceptor-acceptor antecedent angle (Ĥ) and donor-acceptor distance. Protein environments were characterized by depth (distance of amino acids from bulk solvent), secondary structure, and whether the donor/acceptor belongs to the main chain (MC) or side chain (SC) of amino acids. The MC-MC hydrogen bonds (whether in secondary structures or not) have Ĥ angles tightly restricted to a value of around 155°, which was distinctly different from other Ĥ angles. Quantum chemical calculations attribute this characteristic MC-MC Ĥ angle to the nature of the electron density distribution around the planar peptide bond. Additional classical simulations suggest a causal link between MC-MC Ĥ angle and the conformation of secondary structures in proteins. We also showed that donor-acceptor distances are environment dependent, which has implications on protein stability. Our results redefine hydrogen bond geometries in proteins and suggest useful refinements to existing molecular mechanics force fields.
机译:不同蛋白质环境中氢键的广泛数据库研究显示了供体 - 受体 - 受体的前角(ĥ)和供体 - 受体距离的系统变化。蛋白质环境的描述是深度(来自批量溶剂的氨基酸的距离),二次结构以及供体/受体是否属于氨基酸的主链(MC)或侧链(SC)。 MC-MC氢键(无论是在二级结构中)的角度都紧密地限制在​​约155°的值,这与其他ĥ角明显不同。量子化学计算将这种特性MC-MCĥ角度归因于平面肽键周围的电子密度分布的性质。额外的经典模拟表明MC-MCĥ角与蛋白质中二次结构的构象之间的因果关系。我们还表明,施主距离是依赖的环境,这对蛋白质稳定性有影响。我们的结果重新定义了蛋白质中的氢键几何形状,并提出了对现有的分子力学力领域的有用改进。

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