Department of Biochemistry and Biophysics , Stockholm University , 10691 Stockholm , Sweden.
ACS Chem Biol. 2018 May 18;13(5):1218-1227. doi: 10.1021/acschembio.7b01105. Epub 2018 Apr 16.
Intrinsically disordered proteins (IDPs) are abundant in the eukaryotic proteome. However, little is known about the role of subnanosecond dynamics and the conformational entropy that it represents in protein-protein interactions involving IDPs. Using nuclear magnetic resonance side chain and backbone relaxation, stopped-flow kinetics, isothermal titration calorimetry, and computational studies, we have characterized the interaction between the globular TAZ1 domain of the CREB binding protein and the intrinsically disordered transactivation domain of STAT2 (TAD-STAT2). We show that the TAZ1/TAD-STAT2 complex retains considerable subnanosecond motions, with TAD-STAT2 undergoing only a partial disorder-to-order transition. We report here the first experimental determination of the conformational entropy change for both binding partners in an IDP binding interaction and find that the total change even exceeds in magnitude the binding enthalpy and is comparable to the contribution from the hydrophobic effect, demonstrating its importance in the binding energetics. Furthermore, we show that the conformational entropy change for TAZ1 is also instrumental in maintaining a biologically meaningful binding affinity. Strikingly, a spatial clustering of very high amplitude motions and a cluster of more rigid sites in the complex exist, which through computational studies we found to overlap with regions that experience energetic frustration and are less frustrated, respectively. Thus, the residual dynamics in the bound state could be necessary for faster dissociation, which is important for proteins that interact with multiple binding partners.
天然无序蛋白质(IDPs)在真核生物蛋白质组中大量存在。然而,对于涉及 IDPs 的蛋白质-蛋白质相互作用中,亚纳秒动力学及其所代表的构象熵的作用,我们知之甚少。通过核磁共振侧链和骨架弛豫、停流动力学、等温滴定量热法和计算研究,我们对 CREB 结合蛋白的球形 TAZ1 结构域与 STAT2 的天然无序转录激活结构域(TAD-STAT2)之间的相互作用进行了表征。我们表明,TAZ1/TAD-STAT2 复合物保留了相当大的亚纳秒运动,而 TAD-STAT2 仅经历部分无序到有序的转变。我们在这里首次实验确定了 IDP 结合相互作用中两个结合伙伴的构象熵变化,并发现总变化甚至超过结合焓的幅度,与疏水作用的贡献相当,证明了它在结合能学中的重要性。此外,我们表明 TAZ1 的构象熵变化对于维持有生物学意义的结合亲和力也是至关重要的。引人注目的是,在复合物中存在非常高振幅运动的空间聚类和更刚性的位点聚类,通过计算研究,我们发现它们分别与经历能量受挫和受挫较小的区域重叠。因此,在结合状态下的剩余动力学对于更快的解离可能是必要的,这对于与多个结合伙伴相互作用的蛋白质很重要。