Yu Zhe, Ji Yanru, Huang Wenhua, Fang Ying, Wu Jianhua
School of Bioscience & Bioengineering, South China University of Technology, Guangzhou 510006, P. R. China.
National Key Discipline of Human Anatomy, School of Basic Medical Science, Southern Medical University, Guangdong Provincial Key Laboratory of Medical Biomechanics, Guangdong Engineering Research Center for Translation of Medical 3D Printing Application, Guangzhou 510515, P. R. China.
Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2023 Aug 25;40(4):645-653. doi: 10.7507/1001-5515.202208022.
The binding of talin-F0 domain to ras-related protein 1b (Rap1b) plays an important role in the formation of thrombosis. However, since talin is a force-sensitive protein, it remains unclear whether and how force regulates the talin-F0/Rap1b interaction. To explore the effect of force on the binding affinity and the dynamics mechanisms of talin-F0/Rap1b, molecular dynamics simulation was used to observe and compare the changes in functional and conformational information of the complex under different forces. Our results showed that when the complex was subjected to tensile forces, there were at least two dissociation pathways with significantly different mechanical strengths. The key event determining the mechanical strength difference between the two pathways was whether the β4 sheet of the F0 domain was pulled away from the original β1-β4 parallel structure. As the force increased, the talin-F0/Rap1b interaction first strengthened and then weakened, exhibiting the signature of a transition from catch bonds to slip bonds. The mechanical load of 20 pN increased the interaction index of two residue pairs, ASP -ARG and GLN -THR , which resulted in a significant increase in the affinity of the complex. This study predicts the regulatory mechanism of the talin-F0/Rap1b interaction by forces in the intracellular environment and provides novel ideas for the treatment of related diseases and drug development.
踝蛋白-F0结构域与Ras相关蛋白1b(Rap1b)的结合在血栓形成过程中起重要作用。然而,由于踝蛋白是一种力敏感蛋白,力是否以及如何调节踝蛋白-F0/Rap1b相互作用仍不清楚。为了探究力对踝蛋白-F0/Rap1b结合亲和力和动力学机制的影响,采用分子动力学模拟观察和比较了不同力作用下复合物功能和构象信息的变化。我们的结果表明,当复合物受到拉力时,至少存在两条机械强度显著不同的解离途径。决定两条途径机械强度差异的关键事件是F0结构域的β4折叠是否从原来的β1-β4平行结构中拉开。随着力的增加,踝蛋白-F0/Rap1b相互作用先增强后减弱,呈现出从捕获键到滑动键转变的特征。20 pN的机械负荷增加了两个残基对ASP-ARG和GLN-THR的相互作用指数,导致复合物亲和力显著增加。本研究预测了细胞内环境中力对踝蛋白-F0/Rap1b相互作用的调控机制,为相关疾病的治疗和药物开发提供了新思路。