Nishi Hafumi, Fong Jessica H, Chang Christiana, Teichmann Sarah A, Panchenko Anna R
National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD, USA.
Mol Biosyst. 2013 Jul;9(7):1620-6. doi: 10.1039/c3mb25514j. Epub 2013 Jan 30.
Phosphorylation offers a dynamic way to regulate protein activity, subcellular localization, and stability. The majority of signaling pathways involve an extensive set of protein-protein interactions, and phosphorylation is widely used to regulate protein-protein binding by affecting the stability, kinetics and specificity of interactions. Previously it was found that phosphorylation sites tend to be located on protein-protein binding interfaces and may orthosterically modulate the strength of interactions. Here we studied the effect of phosphorylation on protein binding in relation to intrinsic disorder for different types of human protein complexes with known structure of the binding interface. Our results suggest that the processes of phosphorylation, binding and disorder-order transitions are coupled to each other, with about one quarter of all disordered interface Ser/Thr/Tyr sites being phosphorylated. Namely, residue site disorder and interfacial states significantly affect the phosphorylation of serine and to a lesser extent of threonine. Tyrosine phosphorylation might not be directly associated with binding through disorder, and is often observed in ordered interface regions which are not predicted to be disordered in the unbound state. We analyze possible mechanisms of how phosphorylation might regulate protein-protein binding via intrinsic disorder, and specifically focus on how phosphorylation could prevent disorder-order transitions upon binding.
磷酸化提供了一种动态调节蛋白质活性、亚细胞定位和稳定性的方式。大多数信号通路涉及一系列广泛的蛋白质-蛋白质相互作用,磷酸化被广泛用于通过影响相互作用的稳定性、动力学和特异性来调节蛋白质-蛋白质结合。此前发现,磷酸化位点往往位于蛋白质-蛋白质结合界面上,并且可能通过别构调节相互作用的强度。在这里,我们研究了磷酸化对不同类型具有已知结合界面结构的人类蛋白质复合物中与内在无序相关的蛋白质结合的影响。我们的结果表明,磷酸化、结合和无序-有序转变过程相互耦合,所有无序界面丝氨酸/苏氨酸/酪氨酸位点中约四分之一被磷酸化。也就是说,残基位点的无序和界面状态显著影响丝氨酸的磷酸化,对苏氨酸的影响较小。酪氨酸磷酸化可能不直接通过无序与结合相关,并且经常在未结合状态下预计不会无序的有序界面区域中观察到。我们分析了磷酸化可能如何通过内在无序调节蛋白质-蛋白质结合的可能机制,并特别关注磷酸化如何在结合时防止无序-有序转变。