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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Vibrational Spectral Simulation for Peptides of Mixed Secondary Structure: Method Comparisons with the Trpzip Model Hairpin
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Vibrational Spectral Simulation for Peptides of Mixed Secondary Structure: Method Comparisons with the Trpzip Model Hairpin

机译:混合二级结构肽的振动光谱模拟:与Trpzip模型发夹的方法比较

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Infrared absorption and vibrational circular dichroism (IR and VCD) spectra of model fragments of TrpZip-style beta-hairpin structures are simulated using density functional theory (DFT) methods to estimate the influence of fragment size,end effects,conformational irregularities,peptide side chains,and solvent. Different fragmentation schemes,computing the strands and turn segments separately,were tested by varying the sizes of each and their respective overlaps. For suitably overlapping fragments,atomic property tensors were found to be reliably transferable,as tested by their ability to generate simulated spectra in good agreement with results from ab initio DFT computations for the entire peptide. This fragment approach significantly reduces computational times and opens up a wider range of systems that can be studied with a DFT-based approach as compared to previous methods based on uniform repeating sequences. However,vacuum calculations do not adequately represent the frequency dispersion of solvated molecules,and thus,some alternate strategies for solvation correction are explored for improving the simulation accuracy. Unlike for regular periodic secondary structure,the solvent significantly impacts the spectral shapes of hairpins,due to the different degrees of hydration of individual amide groups,which can be exposed to or shielded from water due to external vs internal hydrogen bonding. This is amplified by the shielding of selected amides from the solvent due to bulky side chains. The peptide plus solvent was structurally modeled with molecular dynamics methods,and then an electrostatic field-based parametrization correction was added to the force field and intensity tensors to compensate for the solvent dipolar field. The effect of the shielding and subsequent reordering of modes has a larger impact on VCD than IR band shapes.
机译:使用密度泛函理论(DFT)方法模拟了TrpZip型β-发夹结构模型片段的红外吸收光谱和振动圆二色性(IR和VCD)光谱,以估算片段大小,末端效应,构象不规则性,肽侧链的影响和溶剂。通过改变每个片段的大小以及它们各自重叠的大小,测试了不同的分割方案,分别计算了链段和转弯段。对于适当重叠的片段,通过其生成模拟光谱的能力与从头开始对整个肽段进行DFT计算的结果非常一致,测试发现原子性质张量是可可靠转移的。与以前的基于统一重复序列的方法相比,这种片段方法显着减少了计算时间,并开辟了可以使用基于DFT的方法研究的更广泛的系统。然而,真空计算不能充分代表溶剂化分子的频散,因此,人们探索了一些溶剂化校正的替代策略来提高模拟精度。与常规的周期性二级结构不同,该溶剂会显着影响发夹的光谱形状,这是由于各个酰胺基的水合程度不同,由于外部氢键与内部氢键,酰胺基可能会暴露于水或被水屏蔽。由于笨重的侧链,可通过从溶剂中屏蔽选定的酰胺来扩大反应范围。使用分子动力学方法对肽加溶剂进行结构建模,然后在力场和强度张量中添加基于静电场的参数校正,以补偿溶剂偶极场。屏蔽和随后对模式进行重新排序的影响比VCD波段形状对VCD的影响更大。

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