Zeng Danyun, Shen Qingliang, Cho Jae-Hyun
Department of Biochemistry and Biophysics, Texas A&M University, College Station, TX 77843, USA.
Department of Biochemistry and Biophysics, Texas A&M University, College Station, TX 77843, USA.
Biochem Biophys Res Commun. 2017 Feb 26;484(1):21-26. doi: 10.1016/j.bbrc.2017.01.089. Epub 2017 Jan 19.
Biological functions of intrinsically disordered proteins (IDPs), and proteins containing intrinsically disordered regions (IDRs) are often mediated by short linear motifs, like proline-rich motifs (PRMs). Upon binding to their target proteins, IDPs undergo a disorder-to-order transition which is accompanied by a large conformational entropy penalty. Hence, the molecular mechanisms underlying control of conformational entropy are critical for understanding the binding affinity and selectivity of IDPs-mediated protein-protein interactions (PPIs). Here, we investigated the backbone conformational entropy change accompanied by binding of the N-terminal SH3 domain (nSH3) of CrkII and PRM derived from guanine nucleotide exchange factor 1 (C3G). In particular, we focused on the estimation of conformational entropy change of disordered PRM upon binding to the nSH3 domain. Quantitative characterization of conformational dynamics of disordered peptides like PRMs is limited. Hence, we combined various methods, including NMR model-free analysis, δ2D, DynaMine, and structure-based calculation of entropy loss. This study demonstrates that the contribution of backbone conformational entropy change is significant in the PPIs mediated by IDPs/IDRs.
内在无序蛋白(IDP)以及含有内在无序区域(IDR)的蛋白的生物学功能通常由短线性基序介导,如富含脯氨酸的基序(PRM)。与靶蛋白结合时,IDP会经历从无序到有序的转变,这伴随着较大的构象熵损失。因此,控制构象熵的分子机制对于理解IDP介导的蛋白质-蛋白质相互作用(PPI)的结合亲和力和选择性至关重要。在此,我们研究了CrkII的N端SH3结构域(nSH3)与源自鸟嘌呤核苷酸交换因子1(C3G)的PRM结合时伴随的主链构象熵变化。特别地,我们专注于估计无序PRM与nSH3结构域结合时的构象熵变化。像PRM这样的无序肽的构象动力学的定量表征是有限的。因此,我们结合了多种方法,包括无模型NMR分析、δ2D、DynaMine以及基于结构的熵损失计算。这项研究表明,主链构象熵变化在由IDP/IDR介导的PPI中具有重要作用。