Shang Xu, Chu Wenting, Chu Xiakun, Liu Chuanbo, Xu Liufang, Wang Jin
College of Physics, Jilin University, Changchun 130012, China.
Mol Biosyst. 2017 Sep 26;13(10):2152-2159. doi: 10.1039/c7mb00103g.
The intrinsically disordered protein (IDP) Chz.core, which is the interaction core of Chz1, shows binding preference to histone variant H2A.z. Although there are several studies on the binding process of Chz.core, the detailed coupled binding-folding processes are still elusive. In this study, we explored the coupled binding-folding mechanism and the effect of flexibility by continuously monitoring the flexibility degree of Chz.core. We applied an all-atom structure-based model (SBM), which takes advantage of providing both backbone and sidechain information about the conformational changes of Chz.core during binding. We presented a somewhat different "fly-casting" picture that the long IDP can undergo a tertiary stretching and bending with larger capture radii than ordered proteins. Our results suggest that the higher flexibility of Chz.core contributes to the shorter times for capturing events, leading to higher recognition efficiencies. In addition, compared to the ordered proteins, the high flexibility of the intrinsically disordered protein enables Chz.core to have a lower binding barrier and a faster association rate, which are favorable for the binding process to its partner H2A.z-H2B.
内在无序蛋白(IDP)Chz.core是Chz1的相互作用核心,它对组蛋白变体H2A.z表现出结合偏好。尽管已有多项关于Chz.core结合过程的研究,但详细的结合-折叠耦合过程仍不清楚。在本研究中,我们通过持续监测Chz.core的灵活程度,探索了其结合-折叠耦合机制以及灵活性的影响。我们应用了一种基于全原子结构的模型(SBM),该模型利用提供有关Chz.core在结合过程中构象变化的主链和侧链信息。我们提出了一种略有不同的“抛线钓鱼”图景,即长的IDP能够经历三级拉伸和弯曲,其捕获半径比有序蛋白更大。我们的结果表明,Chz.core较高的灵活性有助于缩短捕获事件的时间,从而提高识别效率。此外,与有序蛋白相比,内在无序蛋白的高灵活性使Chz.core具有更低的结合能垒和更快的缔合速率,这有利于其与伴侣H2A.z-H2B的结合过程。