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首页> 外文期刊>Progress in Nuclear Magnetic Resonance Spectroscopy: An International Review Journal >Chemical shift prediction for protein structure calculation and quality assessment using an optimally parameterized force field
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Chemical shift prediction for protein structure calculation and quality assessment using an optimally parameterized force field

机译:使用最佳参数化力场进行蛋白质结构计算和质量评估的化学位移预测

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摘要

The exquisite sensitivity of chemical shifts as reporters of structural information, and the ability to measure them routinely and accurately, gives great import to formulations that elucidate the structure-chemical-shift relationship. Here we present a new and highly accurate, precise, and robust formulation for the prediction of NMR chemical shifts from protein structures. Our approach, shAIC (shift prediction guided by Akaikes Information Criterion), capitalizes on mathematical ideas and an information-theoretic principle, to represent the functional form of the relationship between structure and chemical shift as a parsimonious sum of smooth analytical potentials which optimally takes into account short-, medium-, and long-range parameters in a nuclei-specific manner to capture potential chemical shift perturbations caused by distant nuclei. shAIC outperforms the state-of-the-art methods that use analytical formulations. Moreover, for structures derived by NMR or structures with novel folds, shAIC delivers better overall results; even when it is compared to sophisticated machine learning approaches. shAIC provides for a computationally lightweight implementation that is unimpeded by molecular size, making it an ideal for use as a force field.
机译:作为结构信息的报告者,化学位移具有出色的敏感性,并且能够常规,准确地对其进行测量,这对于阐明结构与化学位移关系的配方具有重要意义。在这里,我们提出了一种新的,高度准确,精确和强大的公式,用于预测蛋白质结构中的NMR化学位移。我们的方法shAIC(由Akaikes Information Criterion指导的位移预测)利用数学思想和信息理论原理,将结构和化学位移之间的关系的功能形式表示为平滑分析势的简约总和,最佳地将其考虑在内以特定于核的方式考虑短,中和远程参数,以捕获由遥远核引起的潜在化学位移扰动。 shAIC优于使用分析配方的最新方法。而且,对于通过NMR衍生的结构或具有新颖折叠的结构,shAIC可以提供更好的整体结果;即使与复杂的机器学习方法相比也是如此。 shAIC提供了不受分子大小限制的计算轻量级实现,使其成为力场的理想选择。

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