Colombo Maria Carola, Vandevondele Joost, Van Doorslaer Sabine, Laio Alessandro, Guidoni Leonardo, Rothlisberger Ursula
Laboratory of Computational Chemistry and Biochemistry, Institute of Chemical Sciences and Engineering, EPFL, CH-1015 Lausanne, Switzerland.
Proteins. 2008 Feb 15;70(3):1084-98. doi: 10.1002/prot.21604.
We present a hybrid QM/MM Car-Parrinello molecular dynamics study of the copper-loaded C-terminal domain of the mouse prion protein. By means of a statistical analysis of copper coordination in known protein structures, we localized the protein regions with the highest propensity for copper ion binding. The identified candidate structures were subsequently refined via QM/MM simulations. Their EPR characteristics were computed to make contact with the experimental data and to probe the sensitivity to structural and chemical changes. Overall best agreement with the experimental EPR data (Van Doorslaer et al., J Phys Chem B 2001; 105: 1631-1639) and the information currently available in the literature is observed for a binding site involving H187. Moreover, a reinterpretation of the experimental proton hyperfine couplings was possible in the light of the present computational findings.
我们展示了对小鼠朊病毒蛋白铜负载C端结构域的混合量子力学/分子力学(QM/MM)Car-Parrinello分子动力学研究。通过对已知蛋白质结构中铜配位的统计分析,我们确定了蛋白质中铜离子结合倾向最高的区域。随后通过QM/MM模拟对鉴定出的候选结构进行了优化。计算了它们的电子顺磁共振(EPR)特征,以便与实验数据进行对比,并探究对结构和化学变化的敏感性。对于涉及H187的结合位点,总体上与实验EPR数据(Van Doorslaer等人,《物理化学杂志B》2001年;105:1631 - 1639)以及文献中目前可用的信息最为吻合。此外,根据当前的计算结果,对实验质子超精细耦合进行重新解释成为可能。