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

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 directi...

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Autores principales: Stefopoulos, Georgios, Lendenmann, Tobias, Schutzius, Thomas M., Giampietro, Costanza, Roy, Tamal, Chala, Nafsika, Giavazzi, Fabio, Cerbino, Roberto, Poulikakos, Dimos, Ferrari, Aldo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9165505/
https://www.ncbi.nlm.nih.gov/pubmed/35344288
http://dx.doi.org/10.1002/advs.202102148
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author Stefopoulos, Georgios
Lendenmann, Tobias
Schutzius, Thomas M.
Giampietro, Costanza
Roy, Tamal
Chala, Nafsika
Giavazzi, Fabio
Cerbino, Roberto
Poulikakos, Dimos
Ferrari, Aldo
author_facet Stefopoulos, Georgios
Lendenmann, Tobias
Schutzius, Thomas M.
Giampietro, Costanza
Roy, Tamal
Chala, Nafsika
Giavazzi, Fabio
Cerbino, Roberto
Poulikakos, Dimos
Ferrari, Aldo
author_sort Stefopoulos, Georgios
collection PubMed
description 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.
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spelling pubmed-91655052022-06-04 Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields Stefopoulos, Georgios Lendenmann, Tobias Schutzius, Thomas M. Giampietro, Costanza Roy, Tamal Chala, Nafsika Giavazzi, Fabio Cerbino, Roberto Poulikakos, Dimos Ferrari, Aldo Adv Sci (Weinh) Research Articles 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. John Wiley and Sons Inc. 2022-03-28 /pmc/articles/PMC9165505/ /pubmed/35344288 http://dx.doi.org/10.1002/advs.202102148 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Stefopoulos, Georgios
Lendenmann, Tobias
Schutzius, Thomas M.
Giampietro, Costanza
Roy, Tamal
Chala, Nafsika
Giavazzi, Fabio
Cerbino, Roberto
Poulikakos, Dimos
Ferrari, Aldo
Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields
title Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields
title_full Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields
title_fullStr Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields
title_full_unstemmed Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields
title_short Bistability of Dielectrically Anisotropic Nematic Crystals and the Adaptation of Endothelial Collectives to Stress Fields
title_sort bistability of dielectrically anisotropic nematic crystals and the adaptation of endothelial collectives to stress fields
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9165505/
https://www.ncbi.nlm.nih.gov/pubmed/35344288
http://dx.doi.org/10.1002/advs.202102148
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