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各向异性介电向列晶体的双稳性和内皮细胞集体对应力场的适应。

Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields.

机构信息

Laboratory of Thermodynamics in Emerging Technologies, Department of Mechanical and Process Engineering, ETH Zurich, Sonneggstrasse 3, Zurich, 8092, Switzerland.

Experimental Continuum Mechanics, EMPA, Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, Dübendorf, 8600, Switzerland.

出版信息

Adv Sci (Weinh). 2022 May;9(16):e2102148. doi: 10.1002/advs.202102148. Epub 2022 Mar 28.

Abstract

Endothelial monolayers physiologically adapt to flow and flow-induced wall shear stress, attaining ordered configurations in which elongation, orientation, and polarization are coherently organized over many cells. Here, with the flow direction unchanged, a peculiar bi-stable (along the flow direction or perpendicular to it) cell alignment is observed, emerging as a function of the flow intensity alone, while cell polarization is purely instructed by flow directionality. Driven by the experimental findings, the parallelism between endothelia is delineated under a flow field and the transition of dual-frequency nematic liquid crystals under an external oscillatory electric field. The resulting physical model reproduces the two stable configurations and the energy landscape of the corresponding system transitions. In addition, it reveals the existence of a disordered, metastable state emerging upon system perturbation. This intermediate state, experimentally demonstrated in endothelial monolayers, is shown to expose the cellular system to a weakening of cell-to-cell junctions to the detriment of the monolayer integrity. The flow-adaptation of monolayers composed of healthy and senescent endothelia is successfully predicted by the model with adjustable nematic parameters. These results may help to understand the maladaptive response of in vivo endothelial tissues to disturbed hemodynamics and the progressive functional decay of senescent endothelia.

摘要

内皮细胞单层在生理上适应流动和流动引起的壁切应力,在许多细胞中实现了有序的排列,其中伸长、定向和极化是一致组织的。在这里,在流动方向不变的情况下,观察到一种特殊的双稳态(沿流动方向或垂直于流动方向)细胞排列,这种排列仅作为流动强度的函数而出现,而细胞极化则完全由流动方向性指示。受实验结果的驱动,在流动场下描绘了内皮细胞之间的平行性,以及在外加振荡电场下双频向列液晶的转变。所得到的物理模型再现了两个稳定的构型和相应系统转变的能量景观。此外,它揭示了在系统扰动时出现的无序、亚稳态的存在。在实验中在内皮细胞单层中证明了这种中间状态,它使细胞系统容易受到细胞间连接的削弱,从而损害单层的完整性。模型通过调整向列参数成功预测了由健康和衰老内皮细胞组成的单层的流动适应性。这些结果可能有助于理解体内内皮组织对血液动力学紊乱的适应不良反应以及衰老内皮细胞的功能逐渐衰退。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b7b/9165505/ac6932ef91d6/ADVS-9-2102148-g002.jpg

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