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Optimization and Evaluation of a Coarse-Grained Model of Protein Motion Using X-Ray Crystal Data

机译:使用X射线晶体数据的蛋白质运动粗粒模型的优化和评估

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摘要

Simple coarse-grained models, such as the Gaussian network model, have been shown to capture some of the features of equilibrium protein dynamics. We extend this model by using atomic contacts to define residue interactions and introducing more than one interaction parameter between residues. We use B-factors from 98 ultra-high resolution (≤1.0 Å) x-ray crystal structures to optimize the interaction parameters. The average correlation between Gaussian network-model fluctuation predictions and the B-factors is 0.64 for the data set, consistent with a previous large-scale study. By separating residue interactions into covalent and noncovalent, we achieve an average correlation of 0.74, and addition of ligands and cofactors further improves the correlation to 0.75. However, further separating the noncovalent interactions into nonpolar, polar, and mixed yields no significant improvement. The addition of simple chemical information results in better prediction quality without increasing the size of the coarse-grained model.
机译:简单的粗粒度模型(例如高斯网络模型)已显示出捕获平衡蛋白质动力学的某些特征。我们通过使用原子接触定义残基相互作用并引入多个残基间相互作用参数来扩展该模型。我们使用来自98个超高分辨率(≤1.0Å)X射线晶体结构的B因子来优化相互作用参数。对于该数据集,高斯网络模型波动预测与B因子之间的平均相关性为0.64,与先前的大规模研究一致。通过将残基相互作用分为共价和非共价,我们获得了0.74的平均相关性,配体和辅因子的添加进一步提高了相关性至0.75。但是,将非共价相互作用进一步分离为非极性,极性和混合产率并没有明显改善。添加简单的化学信息可以提高预测质量,而无需增加粗粒度模型的大小。

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