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释放剪切力:细胞间牵引力和细胞矩在细胞集体迁移中的作用。

Unleashing shear: Role of intercellular traction and cellular moments in collective cell migration.

机构信息

William B. Burnsed, Jr. Department of Mechanical Engineering, College of Engineering, University of South Alabama, Mobile, AL, USA.

Department of Biomedical Sciences, Pat Capps Covey College of Allied Health Professions, University of South Alabama, Mobile, AL, USA.

出版信息

Biochem Biophys Res Commun. 2020 Feb 5;522(2):279-285. doi: 10.1016/j.bbrc.2019.11.048. Epub 2019 Dec 24.

Abstract

In the field of endothelial biology, the term "shear forces" is tied to the forces exerted by the flowing blood on the quiescent cells. But endothelial cells themselves also exert physical forces on their immediate and distant neighbors. Specific factors of such intrinsic mechanical signals most relevant to immediate neighbors include normal (F) and shear (F) components of intercellular tractions, and those factors most relevant to distant neighbors include contractile or dilatational (M) and shear (M) components of the moments of cytoskeletal forces. However, for cells within a monolayer, F, F, M, and M remain inaccessible to experimental evaluation. Here, we present an approach that enables quantitative assessment of these properties. Remarkably, across a collectively migrating sheet of pulmonary microvascular endothelial cells, F was of the same order of magnitude as F. Moreover, compared to the normal components (F, M) of the mechanical signals, the shear components (F, M) were more distinctive in the cells closer to the migration front. Individual cells had an innately collective tendency to migrate along the axis of maximum contractile moment - a collective migratory process we referred to as cellular plithotaxis. Notably, larger F and M were associated with stronger plithotaxis, but dilatational moment appeared to disengage plithotactic guidance. Overall, cellular plithotaxis was more strongly associated with the "shear forces" (F, M) than with the "normal forces" (F, M). Finally, the mechanical state of the cells with fast migration speed and those with highly circular shape were reminiscent of fluid-like and solid-like matter, respectively. The results repeatedly pointed to neighbors imposing shear forces on a cell as a highly significant event, and hence, the term "shear forces" must include not just the forces from flowing fluid but also the forces from the substrate and neighbors. Collectively, these advances set the stage for deeper understanding of mechanical signaling in cellular monolayers.

摘要

在内皮生物学领域,“切变力”一词与血流对静止细胞施加的力有关。但是,内皮细胞本身也会对其紧邻和远处的邻居施加物理力。这种内在机械信号中与紧邻邻居最相关的特定因素包括细胞间牵拉力的正常(F)和切变(F)分量,而与远处邻居最相关的因素包括细胞骨架力的收缩或扩张(M)和切变(M)分量。然而,对于单层内的细胞,F、F、M 和 M 仍然无法进行实验评估。在这里,我们提出了一种能够定量评估这些特性的方法。值得注意的是,在集体迁移的肺微血管内皮细胞片中,F 的量级与 F 相同。此外,与机械信号的正常分量(F、M)相比,靠近迁移前沿的细胞中的切变分量(F、M)更为独特。单个细胞具有内在的集体倾向,沿着最大收缩矩的轴迁移——我们称之为细胞整体迁移的过程。值得注意的是,较大的 F 和 M 与较强的整体迁移相关,但扩张矩似乎会使整体迁移导向脱钩。总体而言,细胞整体迁移与“切变力”(F、M)的相关性强于“正常力”(F、M)。最后,具有较快迁移速度的细胞和具有高度圆形的细胞的力学状态分别类似于流体和固体物质。结果反复指出,邻居对细胞施加切变力是一个非常重要的事件,因此,“切变力”一词不仅包括流动流体的力,还包括基底和邻居的力。总的来说,这些进展为深入了解细胞单层中的力学信号奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f86a/6957749/4de8b4714244/nihms-1547450-f0001.jpg

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