LadHyX, CNRS, Ecole Polytechnique, Institut Polytechnique de Paris, Palaiseau, France.
Université de Lorraine, LCP-A2MC, F-57000, Metz, France.
Nat Commun. 2022 May 19;13(1):2797. doi: 10.1038/s41467-022-30488-0.
Collective migration of vascular endothelial cells is central for embryonic development, angiogenesis, and wound closure. Although physical confinement of cell assemblies has been shown to elicit specific patterns of collective movement in various cell types, endothelial migration in vivo often occurs without confinement. Here we show that unconfined endothelial cell monolayers on microgroove substrates that mimic the anisotropic organization of the extracellular matrix exhibit a specific type of collective movement that takes the form of a periodic pattern of antiparallel cell streams. We further establish that the development of these streams requires intact cell-cell junctions and that stream sizes are particularly sensitive to groove depth. Finally, we show that modeling the endothelial cell sheet as an active fluid with the microgrooves acting as constraints on cell orientation predicts the occurrence of the periodic antiparallel cell streams as well as their lengths and widths. We posit that in unconfined cell assemblies, physical factors that constrain or bias cellular orientation such as anisotropic extracellular matrix cues or directed flow-derived shear forces dictate the pattern of collective cell movement.
血管内皮细胞的集体迁移对于胚胎发育、血管生成和伤口闭合至关重要。尽管已经证明细胞集合的物理限制会引发各种细胞类型中特定的集体运动模式,但体内的内皮迁移通常在没有限制的情况下发生。在这里,我们表明,在模拟细胞外基质各向异性组织的微槽基底上,无约束的内皮细胞单层表现出一种特定类型的集体运动,其形式为平行细胞流的周期性模式。我们进一步证实,这些流的发展需要完整的细胞-细胞连接,并且流的大小对槽深特别敏感。最后,我们表明,将内皮细胞片建模为具有微槽作为细胞取向约束的活性流体,可以预测周期性的平行细胞流的发生及其长度和宽度。我们假设,在无约束的细胞集合中,限制或偏向细胞方向的物理因素,如各向异性的细胞外基质线索或定向流动产生的剪切力,决定了细胞集体运动的模式。