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Biased migration of confined neutrophil-like cells in asymmetric hydraulic environments

机译:非对称水力环境下中性粒细胞样细胞的偏向迁移

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摘要

Cells integrate multiple measurement modalities to navigate their environment. Soluble and substrate-bound chemical gradients and physical cues have all been shown to influence cell orientation and migration. Here we investigate the role of asymmetric hydraulic pressure in directional sensing. Cells confined in microchannels identified and chose a path of lower hydraulic resistance in the absence of chemical cues. In a bifurcating channel with asymmetric hydraulic resistances, this choice was preceded by the elaboration of two leading edges with a faster extension rate along the lower resistance channel. Retraction of the “losing” edge appeared to precipitate a final choice of direction. The pressure differences altering leading edge protrusion rates were small, suggesting weak force generation by leading edges. The response to the physical asymmetry was able to override a dynamically generated chemical cue. Motile cells may use this bias as a result of hydraulic resistance, or “barotaxis,” in concert with chemotaxis to navigate complex environments.
机译:单元集成了多种测量模式以导航其环境。可溶性和底物结合的化学梯度以及物理线索都已证明会影响细胞的方向和迁移。在这里,我们研究了非对称液压在方向感测中的作用。在没有化学提示的情况下,确定了限制在微通道中的细胞并选择了较低的水力阻力路径。在具有非对称水力阻力的分叉通道中,在选择两个前缘之前,沿着较低的阻力通道以更快的延伸速率进行了精加工。缩回“丢失”的边缘似乎促使方向的最终选择。改变前缘突出率的压力差很小,表明前缘产生的力较弱。对物理不对称性的响应能够替代动态生成的化学提示。运动细胞可能会由于水力阻力或“正压”而与趋化性一起使用这种偏见,以在复杂的环境中导航。

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