Hu Zengjian, Bowen Donnell, Southerland William M, del Sol Antonio, Pan Yongping, Nussinov Ruth, Ma Buyong
Department of Biochemistry and Molecular Biology, Howard University College of Medicine, Washington, District of Columbia, United States of America.
PLoS Comput Biol. 2007 Jun;3(6):e117. doi: 10.1371/journal.pcbi.0030117. Epub 2007 May 11.
Residue interaction networks and loop motions are important for catalysis in dihydrofolate reductase (DHFR). Here, we investigate the effects of ligand binding and chain connectivity on network communication in DHFR. We carry out systematic network analysis and molecular dynamics simulations of the native DHFR and 19 of its circularly permuted variants by breaking the chain connections in ten folding element regions and in nine nonfolding element regions as observed by experiment. Our studies suggest that chain cleavage in folding element areas may deactivate DHFR due to large perturbations in the network properties near the active site. The protein active site is near or coincides with residues through which the shortest paths in the residue interaction network tend to go. Further, our network analysis reveals that ligand binding has "network-bridging effects" on the DHFR structure. Our results suggest that ligand binding leads to a modification, with most of the interaction networks now passing through the cofactor, shortening the average shortest path. Ligand binding at the active site has profound effects on the network centrality, especially the closeness.
残基相互作用网络和环运动对二氢叶酸还原酶(DHFR)的催化作用很重要。在此,我们研究配体结合和链连接性对DHFR中网络通讯的影响。我们通过如实验所观察到的那样,在十个折叠元件区域和九个非折叠元件区域中断开链连接,对天然DHFR及其19个环形排列变体进行了系统的网络分析和分子动力学模拟。我们的研究表明,折叠元件区域中的链切割可能会使DHFR失活,这是由于活性位点附近的网络性质发生了大的扰动。蛋白质活性位点靠近或与残基相互作用网络中最短路径倾向于通过的残基重合。此外,我们的网络分析表明配体结合对DHFR结构具有“网络桥接效应”。我们的结果表明,配体结合导致了一种修饰,现在大多数相互作用网络都通过辅因子,从而缩短了平均最短路径。活性位点处的配体结合对网络中心性,尤其是紧密性有深远影响。