The multistep process of homotypic neutrophil aggregation: a review of the molecules and effects of hydrodynamics.

S I Simon, S Neelamegham, A Taylor, C W Smith
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引用次数: 23

Abstract

Homotypic adhesion of neutrophils stimulated with chemoattractant is analogous to capture on vascular endothelium in that both processes are supported by L-selectin and beta 2-integrin adhesion receptors. Under hydrodynamic shear, cell adhesion requires that receptors bind sufficient ligand over the duration of intercellular contact to withstand the hydrodynamic stresses. Using cone and plate viscometry to apply a uniform linear shear field to suspensions of neutrophils and flow cytometry to quantitate the size distribution of aggregates formed over the time course of formyl peptide stimulation, we conducted a detailed examination of the affect of shear rate and shear stress on the kinetics of cell aggregation. The efficiency of aggregate formation was fit from a mathematical model based on Smoluchowski's two-body collision theory. Over a range of venular shear rates (400-800 s-1), approximately 90% of the single cells are recruited into aggregates ranging from doublets to grouping larger than sextuplets. Adhesion efficiency fit to the kinetics of aggregation increased with shear rate from approximately 20% at 100 s-1 to a maximum level of approximately 80% at 400 s-1. This increase to peak adhesion efficiency was dependent on L-selectin and beta 2-integrin, and was resistant to shear stress up to approximately 7 dyn/cm2. When L-selectin was blocked with antibody, beta 2-integrin (CD11a,b) supported adhesion at low shear rates (< 400 s-1). Aggregates formed over the rapid phase of aggregation remain intact and resistant to shear up to 120 s. At the end of this plateau phase of stability, aggregates spontaneously dissociate back to singlets. The rate of cell disaggregation is linearly proportional to the applied shear rate. The binding kinetics of selectin and integrin appear to be optimized to function within discrete ranges of shear rate and stress, providing an intrinsic mechanism for the transition from neutrophil tethering to firm but reversible adhesion.

同型中性粒细胞聚集的多步骤过程:分子及其流体动力学效应的综述。
中性粒细胞在化学引诱剂刺激下的同型粘附类似于在血管内皮上的捕获,这两个过程都是由l -选择素和β 2整合素粘附受体支持的。在水动力剪切下,细胞粘附要求受体在细胞间接触期间结合足够的配体以承受水动力应力。使用锥形和平板粘度法对中性粒细胞悬浮液施加均匀的线性剪切场,并使用流式细胞术定量测定甲酰基肽刺激时间过程中形成的聚集体的大小分布,我们详细检查了剪切速率和剪切应力对细胞聚集动力学的影响。根据斯摩鲁乔夫斯基二体碰撞理论建立数学模型,拟合了聚合体形成效率。在静脉剪切速率范围内(400-800 s-1),大约90%的单细胞被募集成从双胞到大于六胞的聚集体。随着剪切速率的增加,黏附效率从100 s-1时的20%左右增加到400 s-1时的80%左右。这种对峰值粘附效率的提高取决于l -选择素和β 2-整合素,并且可以抵抗高达约7 dyn/cm2的剪切应力。当l -选择素被抗体阻断时,β 2-整合素(CD11a,b)在低剪切速率下支持粘附(< 400 s-1)。在聚集的快速阶段形成的聚集体保持完整,抗剪切长达120秒。在稳定的高原阶段结束时,聚集体自发地解离回单线体。细胞分解的速率与施加的剪切速率成线性比例。选择素和整合素的结合动力学似乎在剪切速率和应力的离散范围内进行了优化,为中性粒细胞粘附向牢固但可逆的粘附过渡提供了内在机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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