Zheng Wenjun, Thirumalai D
Physics Department, University at Buffalo, Buffalo, New York, USA.
Biophys J. 2009 Mar 18;96(6):2128-37. doi: 10.1016/j.bpj.2008.12.3897.
Structure-based elastic network models (ENMs) have been remarkably successful in describing conformational transitions in a variety of biological systems. Low-frequency normal modes are usually calculated from the ENM that characterizes elastic interactions between residues in contact in a given protein structure with a uniform force constant. To explore the dynamical effects of nonuniform elastic interactions, we calculate the robustness and coupling of the low-frequency modes in the presence of nonuniform variations in the ENM force constant. The variations in the elastic interactions, approximated here by Gaussian noise, approximately account for perturbation effects of heterogeneous residue-residue interactions or evolutionary sequence changes within a protein family. First-order perturbation theory provides an efficient and qualitatively correct estimate of the mode robustness and mode coupling for finite perturbations to the ENM force constant. The mode coupling analysis and the mode robustness analysis identify groups of strongly coupled modes that encode for protein functional motions. We illustrate the new concepts using myosin II motor protein as an example. The biological implications of mode coupling in tuning the allosteric couplings among the actin-binding site, the nucleotide-binding site, and the force-generating converter and lever arm in myosin isoforms are discussed. We evaluate the robustness of the correlation functions that quantify the allosteric couplings among these three key structural motifs.
基于结构的弹性网络模型(ENMs)在描述各种生物系统中的构象转变方面取得了显著成功。低频正常模式通常从ENM计算得出,该模型以均匀的力常数表征给定蛋白质结构中接触残基之间的弹性相互作用。为了探索非均匀弹性相互作用的动力学效应,我们在ENM力常数存在非均匀变化的情况下计算低频模式的稳健性和耦合性。弹性相互作用的变化在此处由高斯噪声近似表示,大致说明了蛋白质家族内异质残基 - 残基相互作用或进化序列变化的扰动效应。一阶微扰理论为ENM力常数的有限扰动提供了模式稳健性和模式耦合的高效且定性正确的估计。模式耦合分析和模式稳健性分析识别出编码蛋白质功能运动的强耦合模式组。我们以肌球蛋白II运动蛋白为例说明这些新概念。讨论了模式耦合在调节肌球蛋白同工型中肌动蛋白结合位点、核苷酸结合位点以及力产生转换器和杠杆臂之间的变构耦合方面的生物学意义。我们评估了量化这三个关键结构基序之间变构耦合的相关函数的稳健性。