Wu Li, Xiao Botao, Jia Xiaoling, Zhang Yan, Lü Shouqin, Chen Juan, Long Mian
National Microgravity Laboratory and Center for Biomechanics and Bioengineering, Institute of Mechanics, Chinese Academy of Sciences, Beijing 100080, China.
National Microgravity Laboratory and Center for Biomechanics and Bioengineering, Institute of Mechanics, Chinese Academy of Sciences, Beijing 100080, China.
J Biol Chem. 2007 Mar 30;282(13):9846-9854. doi: 10.1074/jbc.M609219200. Epub 2007 Jan 31.
Mechanics and surface microtopology of the molecular carrier influence cell adhesion, but the mechanisms underlying these effects are not well understood. We used a micropipette adhesion frequency assay to quantify how the carrier stiffness and microtopology affected two-dimensional kinetics of interacting adhesion molecules on two apposing surfaces. Interactions of P-selectin with P-selectin glycoprotein ligand-1 (PSGL-1) were used to demonstrate such effects by presenting the molecules on three carrier systems: human red blood cells (RBCs), human promyelocytic leukemia HL-60 cells, and polystyrene beads. Stiffening the carrier alone or in cooperation with roughing the surface lowered the two-dimensional affinity of interacting molecules by reducing the forward rate but not the reverse rate, whereas softening the carrier and roughing the surface had opposing effects in affecting two-dimensional kinetics. In contrast, the soluble antibody bound with similar three-dimensional affinity to surface-anchored P-selectin or PSGL-1 constructs regardless of carrier stiffness and microtopology. These results demonstrate that the carrier stiffness and microtopology of a receptor influences its rate of encountering and binding a surface ligand but does not subsequently affect the stability of binding. This provides new insights into understanding the rolling and tethering mechanism of leukocytes onto endothelium in both physiological and pathological processes.
分子载体的力学特性和表面微观拓扑结构会影响细胞黏附,但其潜在机制尚不清楚。我们使用微量移液器黏附频率测定法来量化载体硬度和微观拓扑结构如何影响两个相对表面上相互作用的黏附分子的二维动力学。通过将P-选择素与P-选择素糖蛋白配体-1(PSGL-1)的相互作用呈现在三种载体系统上,即人红细胞(RBC)、人早幼粒细胞白血病HL-60细胞和聚苯乙烯珠,来证明这种影响。单独使载体变硬或与使表面粗糙化相结合,通过降低正向速率而非反向速率来降低相互作用分子的二维亲和力,而使载体变软和使表面粗糙化在影响二维动力学方面具有相反的作用。相比之下,可溶性抗体与表面锚定的P-选择素或PSGL-1构建体以相似的三维亲和力结合,而与载体硬度和微观拓扑结构无关。这些结果表明,受体的载体硬度和微观拓扑结构会影响其与表面配体相遇和结合的速率,但随后不会影响结合的稳定性。这为理解生理和病理过程中白细胞在内皮上的滚动和 tethering 机制提供了新的见解。 (注:“tethering”这个词如果没有上下文准确含义不太明确,这里直接保留英文)