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Nano-to-Micro Scale Dynamics of P-Selectin Detachment from Leukocyte Interfaces. III. Numerical Simulation of Tethering under Flow

机译:从白细胞界面分离P-选择素的纳米级至微米级动力学。三流动下的系留数值模拟

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摘要

Transient capture of cells or model microspheres from flow over substrates sparsely coated with adhesive ligands has provided significant insight into the unbinding kinetics of leukocyte:endothelium adhesion complexes under external force. Whenever a cell is stopped by a point attachment, the full hydrodynamic load is applied to the adhesion site within an exceptionally short time—less than the reciprocal of the hydrodynamic shear rate (e.g., typically <0.01 s). The decay in numbers of cells or beads that remain attached to a surface has been used as a measure of the kinetics of molecular bond dissociation under constant force, revealing a modest increase in detachment rate at growing applied shear stresses. On the other hand, when detached under steady ramps of force with mechanical probes (e.g., the atomic force microscope and biomembrane force probe), P-selectin:PSGL-1 adhesion bonds break at rates that increase enormously under rising force, yielding 100-fold faster off rates at force levels comparable to high shear. The comparatively weak effect of force on tether survival in flow chamber experiments could be explained by a possible partition of the load amongst several bonds. However, a comprehensive understanding of the difference in kinetic behavior requires us to also inspect other factors affecting the dynamics of attachment-force buildup, such as the interfacial compliance of all linkages supporting the adhesion complex. Here, combining the mechanical properties of the leukocyte interface measured in probe tests with single-bond kinetics and the kinetics of cytoskeletal dissociation, we show that for the leukocyte adhesion complex P-selectin:PSGL-1, a detailed adhesive dynamics simulation accurately reproduces the tethering behavior of cells observed in flow chambers. Surprisingly, a mixture of 10% single bonds and 90% dimeric bonds is sufficient to fully match the data of the P-selectin:PSGL-1 experiments, with the calculated decay in fraction of attached cells still appearing exponential.
机译:从稀疏地涂有粘合剂配体的基质上流动获得的细胞或模型微球的瞬态捕获,为白细胞:内皮粘附复合物在外力作用下的脱结合动力学提供了重要的见识。每当通过点连接使单元停止时,在极短的时间内便将全部流体动力载荷施加到粘附部位,该时间小于流体动力剪切速率的倒数(例如,通常<0.01 s)。保持附着在表面上的细胞或珠子数量的减少已被用作恒力作用下分子键解离动力学的量度,揭示了在不断增加的剪切应力下分离速率的适度增加。另一方面,当在机械力探针(例如原子力显微镜和生物膜力探针)的稳定斜率下分离时,P-selectin:PSGL-1粘合键的断裂速率会在上升力的作用下急剧增加,从而产生100-在与高剪切力相当的力水平下,折弯速度更快。在流室实验中,力对系绳生存力的影响相对较弱,这可以通过载荷在多个键之间的可能分配来解释。然而,对动力学行为差异的全面理解要求我们还检查影响附着力建立动力学的其他因素,例如支持粘附复合物的所有连接的界面顺应性。在这里,结合探针测试中测得的白细胞界面的机械性能与单键动力学和细胞骨架解离动力学,我们表明,对于白细胞粘附复合物P-selectin:PSGL-1,详细的黏附动力学模拟可以准确再现在流动室中观察到的细胞束缚行为。令人惊讶的是,由10%的单键和90%的二聚体键组成的混合物足以完全匹配P-selectin:PSGL-1实验的数据,计算出的附着细胞比例的衰减仍呈指数级。

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