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Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction

While matrix remodeling plays a key role in vascular physiology and pathology, the underlying mechanisms have remained incompletely understood. We studied the remodeling of collagen matrices by individual vascular smooth muscle cells (SMCs), clusters and monolayers. In addition, we focused on the co...

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Autores principales: van den Akker, Jeroen, Tuna, Bilge Guvenc, Pistea, Adrian, Sleutel, Arie J. J., Bakker, Erik N. T. P., van Bavel, Ed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer-Verlag 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3382645/
https://www.ncbi.nlm.nih.gov/pubmed/22674440
http://dx.doi.org/10.1007/s11517-012-0916-6
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author van den Akker, Jeroen
Tuna, Bilge Guvenc
Pistea, Adrian
Sleutel, Arie J. J.
Bakker, Erik N. T. P.
van Bavel, Ed
author_facet van den Akker, Jeroen
Tuna, Bilge Guvenc
Pistea, Adrian
Sleutel, Arie J. J.
Bakker, Erik N. T. P.
van Bavel, Ed
author_sort van den Akker, Jeroen
collection PubMed
description While matrix remodeling plays a key role in vascular physiology and pathology, the underlying mechanisms have remained incompletely understood. We studied the remodeling of collagen matrices by individual vascular smooth muscle cells (SMCs), clusters and monolayers. In addition, we focused on the contribution of transglutaminase 2 (TG2), which plays an important role in the remodeling of small arteries. Single SMCs displaced fibers in collagen matrices at distances up to at least 300 μm in the course of 8–12 h. This process involved both ‘hauling up’ of matrix by the cells and local matrix compaction at a distance from the cells, up to 200 μm. This exceeded the distance over which cellular protrusions were active, implicating the involvement of secreted enzymes such as TG2. SMC isolated from TG2 KO mice still showed compaction, with changed dynamics and relaxation. The TG active site inhibitor L682777 blocked local compaction by wild type cells, strongly reducing the displacement of matrix towards the cells. At increasing cell density, cells cooperated to establish compaction. In a ring-shaped collagen matrix, this resulted in preferential displacement in the radial direction, perpendicular to the cellular long axis. This process was unaffected by inhibition of TG2 cross-linking. These results show that SMCs are capable of matrix remodeling by prolonged, gradual compaction along their short axis. This process could add to the 3D organization and remodeling of blood vessels based on the orientation and contraction of SMCs.
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spelling pubmed-33826452012-07-05 Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction van den Akker, Jeroen Tuna, Bilge Guvenc Pistea, Adrian Sleutel, Arie J. J. Bakker, Erik N. T. P. van Bavel, Ed Med Biol Eng Comput Original Article While matrix remodeling plays a key role in vascular physiology and pathology, the underlying mechanisms have remained incompletely understood. We studied the remodeling of collagen matrices by individual vascular smooth muscle cells (SMCs), clusters and monolayers. In addition, we focused on the contribution of transglutaminase 2 (TG2), which plays an important role in the remodeling of small arteries. Single SMCs displaced fibers in collagen matrices at distances up to at least 300 μm in the course of 8–12 h. This process involved both ‘hauling up’ of matrix by the cells and local matrix compaction at a distance from the cells, up to 200 μm. This exceeded the distance over which cellular protrusions were active, implicating the involvement of secreted enzymes such as TG2. SMC isolated from TG2 KO mice still showed compaction, with changed dynamics and relaxation. The TG active site inhibitor L682777 blocked local compaction by wild type cells, strongly reducing the displacement of matrix towards the cells. At increasing cell density, cells cooperated to establish compaction. In a ring-shaped collagen matrix, this resulted in preferential displacement in the radial direction, perpendicular to the cellular long axis. This process was unaffected by inhibition of TG2 cross-linking. These results show that SMCs are capable of matrix remodeling by prolonged, gradual compaction along their short axis. This process could add to the 3D organization and remodeling of blood vessels based on the orientation and contraction of SMCs. Springer-Verlag 2012-06-07 2012 /pmc/articles/PMC3382645/ /pubmed/22674440 http://dx.doi.org/10.1007/s11517-012-0916-6 Text en © The Author(s) 2012 https://creativecommons.org/licenses/by/4.0/ This article is distributed under the terms of the Creative Commons Attribution License which permits any use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Original Article
van den Akker, Jeroen
Tuna, Bilge Guvenc
Pistea, Adrian
Sleutel, Arie J. J.
Bakker, Erik N. T. P.
van Bavel, Ed
Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction
title Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction
title_full Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction
title_fullStr Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction
title_full_unstemmed Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction
title_short Vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction
title_sort vascular smooth muscle cells remodel collagen matrices by long-distance action and anisotropic interaction
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3382645/
https://www.ncbi.nlm.nih.gov/pubmed/22674440
http://dx.doi.org/10.1007/s11517-012-0916-6
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