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Theoretical-computational modelling of infrared spectra in peptides and proteins: a new frontier for combined theoretical-experimental investigations

机译:肽和蛋白质中红外光谱的理论计算模型:理论与实验研究相结合的新领域

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The state-of-the-art of theoretical-computational modelling of infrared (IR) spectra in peptides and proteins is able to reproduce the main spectral features involved in the secondary-structure organisation. The results so far collected, clearly show that the complexity of the atomic processes inherent to the IR spectra makes the often used empirical secondary-structure/frequency correlations inaccurate and possibly misleading. The use of extended configurational sampling as provided by, for example, molecular dynamics simulations and of a physically coherent treatment of both the quantum degrees of freedom and their coupling with the semiclassical atomic motions, promises to open the way to interpret and predict IR temperature-dependent and time-dependent spectral signals, in particular for the study of folding/unfolding transitions.
机译:肽和蛋白质中红外(IR)光谱的理论计算建模的最新技术能够再现二级结构组织中涉及的主要光谱特征。到目前为止收集的结果清楚地表明,IR光谱固有的原子过程的复杂性使得经常使用的经验二级结构/频率相关性不准确,并且可能会产生误导。例如,通过分子动力学模拟以及对量子自由度及其与半经典原子运动的耦合进行物理相干处理,可以使用扩展的结构采样,有望为解释和预测IR温度开辟道路-依赖和时间依赖的频谱信号,特别是用于折叠/展开过渡的研究。

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