Cargando…

Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds

The understanding of endothelium–extracellular matrix interactions during the initiation of new blood vessels is of great medical importance; however, the mechanobiological principles governing endothelial protrusive behaviours in 3D microtopographies remain imperfectly understood. In blood capillar...

Descripción completa

Detalles Bibliográficos
Autores principales: Ucla, Pierre, Ju, Xingming, Demircioglu, Melisa, Baiz, Sarah, Muller, Laurent, Germain, Stéphane, Monnot, Catherine, Semetey, Vincent, Coscoy, Sylvie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8910162/
https://www.ncbi.nlm.nih.gov/pubmed/35269558
http://dx.doi.org/10.3390/ijms23052415
_version_ 1784666390857252864
author Ucla, Pierre
Ju, Xingming
Demircioglu, Melisa
Baiz, Sarah
Muller, Laurent
Germain, Stéphane
Monnot, Catherine
Semetey, Vincent
Coscoy, Sylvie
author_facet Ucla, Pierre
Ju, Xingming
Demircioglu, Melisa
Baiz, Sarah
Muller, Laurent
Germain, Stéphane
Monnot, Catherine
Semetey, Vincent
Coscoy, Sylvie
author_sort Ucla, Pierre
collection PubMed
description The understanding of endothelium–extracellular matrix interactions during the initiation of new blood vessels is of great medical importance; however, the mechanobiological principles governing endothelial protrusive behaviours in 3D microtopographies remain imperfectly understood. In blood capillaries submitted to angiogenic factors (such as vascular endothelial growth factor, VEGF), endothelial cells can transiently transdifferentiate in filopodia-rich cells, named tip cells, from which angiogenesis processes are locally initiated. This protrusive state based on filopodia dynamics contrasts with the lamellipodia-based endothelial cell migration on 2D substrates. Using two-photon polymerization, we generated 3D microstructures triggering endothelial phenotypes evocative of tip cell behaviour. Hexagonal lattices on pillars (“open”), but not “closed” hexagonal lattices, induced engagement from the endothelial monolayer with the generation of numerous filopodia. The development of image analysis tools for filopodia tracking allowed to probe the influence of the microtopography (pore size, regular vs. elongated structures, role of the pillars) on orientations, engagement and filopodia dynamics, and to identify MLCK (myosin light-chain kinase) as a key player for filopodia-based protrusive mode. Importantly, these events occurred independently of VEGF treatment, suggesting that the observed phenotype was induced through microtopography. These microstructures are proposed as a model research tool for understanding endothelial cell behaviour in 3D fibrillary networks.
format Online
Article
Text
id pubmed-8910162
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-89101622022-03-11 Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds Ucla, Pierre Ju, Xingming Demircioglu, Melisa Baiz, Sarah Muller, Laurent Germain, Stéphane Monnot, Catherine Semetey, Vincent Coscoy, Sylvie Int J Mol Sci Article The understanding of endothelium–extracellular matrix interactions during the initiation of new blood vessels is of great medical importance; however, the mechanobiological principles governing endothelial protrusive behaviours in 3D microtopographies remain imperfectly understood. In blood capillaries submitted to angiogenic factors (such as vascular endothelial growth factor, VEGF), endothelial cells can transiently transdifferentiate in filopodia-rich cells, named tip cells, from which angiogenesis processes are locally initiated. This protrusive state based on filopodia dynamics contrasts with the lamellipodia-based endothelial cell migration on 2D substrates. Using two-photon polymerization, we generated 3D microstructures triggering endothelial phenotypes evocative of tip cell behaviour. Hexagonal lattices on pillars (“open”), but not “closed” hexagonal lattices, induced engagement from the endothelial monolayer with the generation of numerous filopodia. The development of image analysis tools for filopodia tracking allowed to probe the influence of the microtopography (pore size, regular vs. elongated structures, role of the pillars) on orientations, engagement and filopodia dynamics, and to identify MLCK (myosin light-chain kinase) as a key player for filopodia-based protrusive mode. Importantly, these events occurred independently of VEGF treatment, suggesting that the observed phenotype was induced through microtopography. These microstructures are proposed as a model research tool for understanding endothelial cell behaviour in 3D fibrillary networks. MDPI 2022-02-22 /pmc/articles/PMC8910162/ /pubmed/35269558 http://dx.doi.org/10.3390/ijms23052415 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ucla, Pierre
Ju, Xingming
Demircioglu, Melisa
Baiz, Sarah
Muller, Laurent
Germain, Stéphane
Monnot, Catherine
Semetey, Vincent
Coscoy, Sylvie
Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds
title Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds
title_full Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds
title_fullStr Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds
title_full_unstemmed Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds
title_short Dynamics of Endothelial Engagement and Filopodia Formation in Complex 3D Microscaffolds
title_sort dynamics of endothelial engagement and filopodia formation in complex 3d microscaffolds
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8910162/
https://www.ncbi.nlm.nih.gov/pubmed/35269558
http://dx.doi.org/10.3390/ijms23052415
work_keys_str_mv AT uclapierre dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT juxingming dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT demircioglumelisa dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT baizsarah dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT mullerlaurent dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT germainstephane dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT monnotcatherine dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT semeteyvincent dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds
AT coscoysylvie dynamicsofendothelialengagementandfilopodiaformationincomplex3dmicroscaffolds