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Direct Comparison of Experimental and Calculated NMR Scalar Coupling Constants for Force Field Validation and Adaptation

机译:直接比较实验和计算的NMR标量耦合常数以进行力场验证和适应

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The ability to measure scalar coupling constants across hydrogen bonds(~(3h)J_(NC'))from high-resolution NMR experiments allows the characterization of detailed structural properties of biomolecules.To analyze those,a parametrized model based on the linear combination of atomic orbitals relates H-bond geometries with the measured ~(3h)J_(NC')coupling magnitude.In the present study the dependence of calculated ~(3h)J_(NC')coupling constants on force field parameters is assessed.It is shown that increased polarity of the hydrogen bond improves the calculated ~(3h)J_(NC')coupling constants and shifts the conformational ensemble sampled from the molecular dynamics(MD)simulations toward the experimentally measured one.Increased charges lead to more narrow distance and angle distributions and improve the agreement between calculated and measured ~(3h)J_(NC')couplings.However,different secondary structures are better represented by different magnitudes of electrostatic interactions-different atomic partial charges in the present work-as indicated by root-mean square deviations(rsmds)between observed and calculated coupling constants ~(3h)J_(NC').The parametrization of the empirical formula is found to be meaningful and robust,but the parameter values are not universal across different proteins and different secondary structural elements(a-helices,beta-sheets and loops).Using standard and slightly increased CHARMM charges,predictions for the as-yet unknown scalar coupling constants for the V54A and I6A mutants of protein G are made.
机译:通过高分辨率NMR实验测量跨氢键(〜(3h)J_(NC'))的标量偶合常数的能力可以表征生物分子的详细结构特性。要对此进行分析,请使用基于线性组合的参数化模型原子轨道将H键的几何形状与测得的〜(3h)J_(NC')耦合量相关联。结果表明,增加氢键的极性会改善计算的〜(3h)J_(NC')耦合常数,并使从分子动力学(MD)模拟中采样的构象整体朝着实验测量的方向移动。增加的电荷导致更窄的距离和角度分布并改善〜(3h)J_(NC')耦合之间的一致性。但是,不同的次级结构可以通过不同程度的静电相互作用更好地表示。本工作中的原子偏电荷-由观察到的和计算出的耦合常数〜(3h)J_(NC')之间的均方根偏差(rsmds)表示。经验公式的参数化被认为是有意义的和鲁棒的,但是参数值在不同的蛋白质和不同的二级结构元素(α-螺旋,β-折叠和环)之间不是通用的。使用标准的CHARMM电荷并略有增加,可预测V54A和I6A突变体的迄今未知的标量耦合常数蛋白质G制成。

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