Sun Ganyun, Zhang Yan, Huo Bo, Long Mian
National Microgravity Laboratory and Center for Biomechanics and Bioengineering, Institute of Mechanics, Chinese Academy of Sciences, Beijing, PR China.
Eur Biophys J. 2009 Jun;38(5):701-11. doi: 10.1007/s00249-009-0428-y. Epub 2009 Mar 10.
Two-dimensional (2D) kinetics of receptor-ligand interactions governs cell adhesion in many biological processes. While the dissociation kinetics of receptor-ligand bond is extensively investigated, the association kinetics has much less been quantified. Recently receptor-ligand interactions between two surfaces were investigated using a thermal fluctuation assay upon biomembrane force probe technique (Chen et al. in Biophys J 94:694-701, 2008). The regulating factors on association kinetics, however, are not well characterized. Here we developed an alternative thermal fluctuation assay using optical trap technique, which enables to visualize consecutive binding-unbinding transition and to quantify the impact of microbead diffusion on receptor-ligand binding. Three selectin constructs (sLs, sPs, and PLE) and their ligand P-selectin glycoprotein ligand 1 were used to conduct the measurements. It was indicated that bond formation was reduced by enhancing the diffusivity of selectin-coupled carrier, suggesting that carrier diffusion is crucial to determine receptor-ligand binding. It was also found that 2D forward rate predicted upon first-order kinetics was in the order of sPs > sLs > PLE and bond formation was history-dependent. These results further the understandings in regulating association kinetics of surface-bound receptor-ligand interactions.
受体 - 配体相互作用的二维(2D)动力学在许多生物过程中控制着细胞黏附。虽然受体 - 配体键的解离动力学已得到广泛研究,但缔合动力学的量化研究却少得多。最近,利用生物膜力探针技术的热涨落测定法研究了两个表面之间的受体 - 配体相互作用(Chen等人,《生物物理杂志》94:694 - 701,2008年)。然而,缔合动力学的调节因子尚未得到很好的表征。在此,我们开发了一种使用光镊技术的替代热涨落测定法,该方法能够可视化连续的结合 - 解离转变,并量化微珠扩散对受体 - 配体结合的影响。使用三种选择素构建体(sLs、sPs和PLE)及其配体P - 选择素糖蛋白配体1进行测量。结果表明,通过提高选择素偶联载体的扩散率可减少键的形成,这表明载体扩散对于确定受体 - 配体结合至关重要。还发现,根据一级动力学预测的二维正向速率顺序为sPs > sLs > PLE,并且键的形成具有历史依赖性。这些结果进一步加深了对表面结合的受体 - 配体相互作用缔合动力学调节的理解。