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从一滴血中评估中性粒细胞趋化效率的多因素分析。

Multifactorial assessment of neutrophil chemotaxis efficiency from a drop of blood.

机构信息

BioMEMS Resource Center, Division of Surgery, Innovation and Bioengineering, Department of Surgery, Massachusetts General Hospital, Shriners Burns Hospital, Harvard Medical School, Boston, Massachusetts, USA.

出版信息

J Leukoc Biol. 2022 Jun;111(6):1175-1184. doi: 10.1002/JLB.3MA0122-378RR. Epub 2022 Jan 31.

Abstract

Following injury and infection, neutrophils are guided to the affected site by chemoattractants released from injured tissues and invading microbes. During this process (chemotaxis), neutrophils must integrate multiple chemical signals, while also responding to physical constraints and prioritizing their directional decisions to generate an efficient immune response. In some clinical conditions, human neutrophils appear to lose the ability to chemotax efficiently, which may contribute both directly and indirectly to disease pathology. Here, a range of microfluidic designs is utilized to test the sensitivity of chemotaxing neutrophils to various perturbations, including binary decision-making in the context of channels with different chemoattractant gradients, hydraulic resistance, and angle of approach. Neutrophil migration in long narrow channels and planar environments is measured. Conditions in which neutrophils are significantly more likely to choose paths with the steepest chemoattractant gradient and the most direct approach angle, and find that migration efficiency across planar chambers is inversely correlated with chamber diameter. By sequential measurement of neutrophil binary decision-making to different chemoattractant gradients, or chemotactic index in sequential planar environments, data supporting a model of biased random walk for neutrophil chemotaxis are presented.

摘要

在受伤和感染后,受损组织和入侵微生物释放的趋化因子将中性粒细胞引导至受影响的部位。在这个过程中(趋化作用),中性粒细胞必须整合多种化学信号,同时响应物理约束,并优先考虑其定向决策,以产生有效的免疫反应。在某些临床情况下,人类中性粒细胞似乎失去了有效趋化的能力,这可能直接和间接导致疾病病理学。在这里,利用一系列微流控设计来测试趋化性中性粒细胞对各种扰动的敏感性,包括在具有不同趋化因子梯度、水力阻力和接近角度的通道中进行二元决策。测量了中性粒细胞在长而窄的通道和平面环境中的迁移。中性粒细胞更有可能选择具有最陡峭趋化因子梯度和最直接接近角度的路径的条件,并且发现平面室中的迁移效率与室直径成反比。通过对不同趋化因子梯度或顺序平面环境中的趋化指数的中性粒细胞二元决策的顺序测量,提出了支持中性粒细胞趋化的偏向随机游走模型的数据。

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