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首页> 外文期刊>Nature Communications >Protrusion force microscopy reveals oscillatory force generation and mechanosensing activity of human macrophage podosomes
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Protrusion force microscopy reveals oscillatory force generation and mechanosensing activity of human macrophage podosomes

机译:突出力显微镜揭示了人类巨噬细胞足小体的振荡力产生和机械传感活性。

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摘要

Podosomes are adhesion structures formed in monocyte-derived cells. They are F-actin-rich columns perpendicular to the substrate surrounded by a ring of integrins. Here, to measure podosome protrusive forces, we designed an innovative experimental setup named protrusion force microscopy (PFM), which consists in measuring by atomic force microscopy the deformation induced by living cells onto a compliant Formvar sheet. By quantifying the heights of protrusions made by podosomes onto Formvar sheets, we estimate that a single podosome generates a protrusion force that increases with the stiffness of the substratum, which is a hallmark of mechanosensing activity. We show that the protrusive force generated at podosomes oscillates with a constant period and requires combined actomyosin contraction and actin polymerization. Finally, we elaborate a model to explain the mechanical and oscillatory activities of podosomes. Thus, PFM shows that podosomes are mechanosensing cell structures exerting a protrusive force.
机译:体是在单核细胞衍生的细胞中形成的粘附结构。它们是富含F-肌动蛋白的柱,垂直于被整联蛋白环包围的底物。在这里,为了测量足小体的突出力,我们设计了一种创新的实验装置,称为突出力显微镜(PFM),该装置包括通过原子力显微镜测量活细胞在顺应性Formvar片材上引起的变形。通过量化足突在Formvar片材上形成的突起的高度,我们估计单个足突产生的突起力随基质硬度的增加而增加,这是机械感测活动的标志。我们显示,在足小体上产生的突出力以恒定的周期振荡,并需要结合肌动球蛋白收缩和肌动蛋白聚合。最后,我们阐述了一个模型来解释足小体的机械和振荡活动。因此,PFM表明,足小体正在发挥机械作用的细胞结构发挥了突出的作用力。

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