Guclu Tandac F, Atilgan Ali Rana, Atilgan Canan
Faculty of Engineering and Natural Sciences, Sabanci University, 34956, Istanbul, Turkey.
J Phys Chem B. 2021 Mar 11;125(9):2266-2276. doi: 10.1021/acs.jpcb.0c11604. Epub 2021 Feb 25.
The third domain of PSD-95 (PDZ3) is a model for investigating allosteric communication in protein and ligand interactions. While motifs contributing to its binding specificity have been scrutinized, a conformational dynamical basis is yet to be established. Despite the miniscule structural changes due to point mutants, the observed significant binding affinity differences have previously been assessed with a focus on two α-helices located at the binding groove (α) and the C-terminus (α). Here, we employ a new computational approach to develop a generalized view on the molecular basis of PDZ3 binding selectivity and interaction communication for a set of point mutants of the protein (G330T, H372A, G330T-H372A) and its ligand (CRIPT, named L, and its T-2F variant, L) along with the wild type (WT). To analyze the dynamical aspects hidden in the conformations that are produced by molecular dynamics simulations, we utilize variations in community composition calculated based on the betweenness centrality measure from graph theory. We find that the highly charged N-terminus, which is located far from the ligand, has the propensity to share the same community with the ligand in the biologically functional complexes, indicating a distal segment might mediate the binding dynamics. N- and C-termini of PDZ3 share communities, and α acts as a hub for the whole protein by sustaining the communication with all structural segments, albeit being a trait not unique to the functional complexes. Moreover, α which lines the binding cavity frequently parts communities with the ligand and is not a controller of the binding but is rather a slave to the overall dynamics coordinated by the N-terminus. Thus, ligand binding fate in PDZ3 is traced to the population of community compositions extracted from dynamics despite the lack of significant conformational changes.
PSD - 95的第三个结构域(PDZ3)是研究蛋白质与配体相互作用中变构通讯的一个模型。虽然对其结合特异性的基序已进行了仔细研究,但构象动力学基础尚未建立。尽管点突变导致的结构变化极小,但先前已评估了观察到的显著结合亲和力差异,重点关注位于结合凹槽处的两个α螺旋(α)和C末端(α)。在这里,我们采用一种新的计算方法,以形成关于该蛋白质(G330T、H372A、G330T - H372A)及其配体(CRIPT,命名为L及其T - 2F变体,L)以及野生型(WT)的一组点突变体的PDZ3结合选择性和相互作用通讯分子基础的广义观点。为了分析分子动力学模拟产生的构象中隐藏的动力学方面,我们利用基于图论的介数中心性度量计算的群落组成变化。我们发现,远离配体的高电荷N末端在生物功能复合物中倾向于与配体共享同一个群落,这表明一个远端片段可能介导结合动力学。PDZ3的N末端和C末端共享群落,并且α通过维持与所有结构片段的通讯而充当整个蛋白质的枢纽,尽管这并非功能复合物所特有的特征。此外,位于结合腔的α经常与配体分属不同群落,它不是结合的控制器,而是由N末端协调的整体动力学的从属者。因此,尽管缺乏显著的构象变化,但PDZ3中的配体结合命运可追溯到从动力学中提取的群落组成群体。