Rocheleau Anne D, Sumagin Ronen, Sarelius Ingrid H, King Michael R
Department of Biomedical Engineering, Cornell University, Ithaca, New York, United States of America.
Department of Pathology, Feinberg School of Medicine, Northwestern University, Chicago, Illinois, United States of America.
PLoS One. 2015 Jun 19;10(6):e0128378. doi: 10.1371/journal.pone.0128378. eCollection 2015.
P-selectin and P-selectin glycoprotein ligand-1 (PSGL-1) play important roles in mediating the inflammatory cascade. Selectin kinetics, together with neutrophil hydrodynamics, regulate the fundamental adhesion cascade of cell tethering and rolling on the endothelium. The current study uses the Multiscale Adhesive Dynamics computational model to simulate, for the first time, the tethering and rolling behavior of pseudopod-containing neutrophils as mediated by P-selectin/PSGL-1 bonds. This paper looks at the effect of including P-selectin/PSGL-1 adhesion kinetics. The parameters examined included the shear rate, adhesion on-rate, initial neutrophil position, and receptor number sensitivity. The outcomes analyzed included types of adhesive behavior observed, tether rolling distance and time, number of bonds formed during an adhesive event, contact area, and contact time. In contrast to the hydrodynamic model, P-selectin/PSGL-1 binding slows the neutrophil's translation in the direction of flow and causes the neutrophil to swing around perpendicular to flow. Several behaviors were observed during the simulations, including tethering without firm adhesion, tethering with downstream firm adhesion, and firm adhesion upon first contact with the endothelium. These behaviors were qualitatively consistent with in vivo data of murine neutrophils with pseudopods. In the simulations, increasing shear rate, receptor count, and bond formation rate increased the incidence of firm adhesion upon first contact with the endothelium. Tethering was conserved across a range of physiological shear rates and was resistant to fluctuations in the number of surface PSGL-1 molecules. In simulations where bonding occurred, interaction with the side of the pseudopod, rather than the tip, afforded more surface area and greater contact time with the endothelial wall.
P选择素和P选择素糖蛋白配体-1(PSGL-1)在介导炎症级联反应中发挥重要作用。选择素动力学与中性粒细胞流体动力学共同调节细胞在内皮细胞上的拴系和滚动这一基本黏附级联反应。当前研究首次使用多尺度黏附动力学计算模型来模拟由P选择素/PSGL-1键介导的含伪足中性粒细胞的拴系和滚动行为。本文研究了纳入P选择素/PSGL-1黏附动力学的影响。所研究的参数包括剪切速率、黏附结合速率、中性粒细胞初始位置和受体数量敏感性。所分析的结果包括观察到的黏附行为类型、拴系滚动距离和时间、黏附事件中形成的键的数量、接触面积和接触时间。与流体动力学模型不同,P选择素/PSGL-1结合减缓了中性粒细胞在流动方向上的平移,并导致中性粒细胞垂直于流动方向摆动。模拟过程中观察到了几种行为,包括无牢固黏附的拴系、下游牢固黏附的拴系以及首次接触内皮细胞时的牢固黏附。这些行为在质量上与有伪足的小鼠中性粒细胞的体内数据一致。在模拟中,增加剪切速率、受体数量和键形成速率会增加首次接触内皮细胞时牢固黏附的发生率。在一系列生理剪切速率范围内,拴系现象均存在,并且对表面PSGL-1分子数量的波动具有抗性。在发生键合的模拟中,与伪足侧面而非尖端的相互作用提供了更大的表面积和与内皮壁更长的接触时间。