Center for Structural Biology and Department of Molecular & Cellular Biochemistry, University of Kentucky, Lexington, Kentucky, USA.
Proteins. 2020 Dec;88(12):1607-1619. doi: 10.1002/prot.25979. Epub 2020 Aug 12.
Recent work has revealed that the association of a disordered region of a protein with a folded binding partner can occur as rapidly as association between two folded proteins. This is the case for the phosphatase calcineurin (CaN) and its association with its activator calmodulin. Calmodulin binds to the intrinsically disordered regulatory domain of CaN. Previous studies have shown that electrostatic steering can accelerate the binding of folded proteins with disordered ligands. Given that electrostatic forces are strong determinants of disordered protein ensembles, the relationship between electrostatics, conformational ensembles, and quaternary interactions is unclear. Here, we employ experimental approaches to explore the impact of electrostatic interactions on the association of calmodulin with the disordered regulatory region of CaN. We find that estimated association rate constants of calmodulin with our chosen calmodulin-substrates are within the diffusion-limited regime. The association rates are dependent on the ionic strength, indicating that favorable electrostatic forces increase the rate of association. Further, we show that charged amino acids outside the calmodulin-binding site modulate the binding rate. Conformational ensembles obtained from computer simulations suggest that electrostatic interactions within the regulatory domain might bias the conformational ensemble such that the calmodulin binding region is readily accessible. Given the prevalence of charged residues in disordered protein chains, our findings are likely relevant to many protein-protein interactions.
最近的研究揭示,蛋白质的无序区域与折叠的结合伴侣的关联可以像两个折叠的蛋白质之间的关联一样迅速发生。这就是磷酸酶钙调神经磷酸酶 (CaN) 与其激活剂钙调蛋白的情况。钙调蛋白与 CaN 的固有无序调节域结合。先前的研究表明,静电导向可以加速折叠蛋白与无序配体的结合。鉴于静电作用力是无序蛋白质集合的重要决定因素,因此静电、构象集合和四级相互作用之间的关系尚不清楚。在这里,我们采用实验方法来探索静电相互作用对钙调蛋白与 CaN 无序调节区的结合的影响。我们发现,钙调蛋白与我们选择的钙调蛋白底物的估计缔合速率常数在扩散限制范围内。缔合速率取决于离子强度,表明有利的静电力增加了缔合的速率。此外,我们表明,钙调蛋白结合位点之外的带电氨基酸调节结合速率。计算机模拟获得的构象集合表明,调节域内的静电相互作用可能使构象集合偏向于易于接近钙调蛋白结合区域。鉴于无序蛋白质链中带电荷残基的普遍性,我们的发现可能与许多蛋白质-蛋白质相互作用有关。