Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.

Smooth muscle cells are maintained in a differentiated state in the vessel wall, but can be modulated to a synthetic phenotype following injury. Smooth muscle phenotypic modulation is thought to play an important role in the pathology of vascular occlusive diseases. Phenotypically modulated smooth m...

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Main Authors: Feng Shi, Xiaochun Long, Allison Hendershot, Joseph M Miano, Jane Sottile
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3994013?pdf=render
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spelling doaj-4c28b25989bd42a58e855ad76cbe51742020-11-24T21:34:27ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0194e9498810.1371/journal.pone.0094988Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.Feng ShiXiaochun LongAllison HendershotJoseph M MianoJane SottileSmooth muscle cells are maintained in a differentiated state in the vessel wall, but can be modulated to a synthetic phenotype following injury. Smooth muscle phenotypic modulation is thought to play an important role in the pathology of vascular occlusive diseases. Phenotypically modulated smooth muscle cells exhibit increased proliferative and migratory properties that accompany the downregulation of smooth muscle cell marker proteins. Extracellular matrix proteins, including fibronectin, can regulate the smooth muscle phenotype when used as adhesive substrates. However, cells produce and organize a 3-dimensional fibrillar extracellular matrix, which can affect cell behavior in distinct ways from the protomeric 2-dimensional matrix proteins that are used as adhesive substrates. We previously showed that the deposition/polymerization of fibronectin into the extracellular matrix can regulate the deposition and organization of other extracellular matrix molecules in vitro. Further, our published data show that the presence of a fibronectin polymerization inhibitor results in increased expression of smooth muscle cell differentiation proteins and inhibits vascular remodeling in vivo. In this manuscript, we used an in vitro cell culture system to determine the mechanism by which fibronectin polymerization affects smooth muscle phenotypic modulation. Our data show that fibronectin polymerization decreases the mRNA levels of multiple smooth muscle differentiation genes, and downregulates the levels of smooth muscle α-actin and calponin proteins by a Rac1-dependent mechanism. The expression of smooth muscle genes is transcriptionally regulated by fibronectin polymerization, as evidenced by the increased activity of luciferase reporter constructs in the presence of a fibronectin polymerization inhibitor. Fibronectin polymerization also promotes smooth muscle cell growth, and decreases the levels of actin stress fibers. These data define a Rac1-dependent pathway wherein fibronectin polymerization promotes the SMC synthetic phenotype by modulating the expression of smooth muscle cell differentiation proteins.http://europepmc.org/articles/PMC3994013?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Feng Shi
Xiaochun Long
Allison Hendershot
Joseph M Miano
Jane Sottile
spellingShingle Feng Shi
Xiaochun Long
Allison Hendershot
Joseph M Miano
Jane Sottile
Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.
PLoS ONE
author_facet Feng Shi
Xiaochun Long
Allison Hendershot
Joseph M Miano
Jane Sottile
author_sort Feng Shi
title Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.
title_short Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.
title_full Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.
title_fullStr Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.
title_full_unstemmed Fibronectin matrix polymerization regulates smooth muscle cell phenotype through a Rac1 dependent mechanism.
title_sort fibronectin matrix polymerization regulates smooth muscle cell phenotype through a rac1 dependent mechanism.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Smooth muscle cells are maintained in a differentiated state in the vessel wall, but can be modulated to a synthetic phenotype following injury. Smooth muscle phenotypic modulation is thought to play an important role in the pathology of vascular occlusive diseases. Phenotypically modulated smooth muscle cells exhibit increased proliferative and migratory properties that accompany the downregulation of smooth muscle cell marker proteins. Extracellular matrix proteins, including fibronectin, can regulate the smooth muscle phenotype when used as adhesive substrates. However, cells produce and organize a 3-dimensional fibrillar extracellular matrix, which can affect cell behavior in distinct ways from the protomeric 2-dimensional matrix proteins that are used as adhesive substrates. We previously showed that the deposition/polymerization of fibronectin into the extracellular matrix can regulate the deposition and organization of other extracellular matrix molecules in vitro. Further, our published data show that the presence of a fibronectin polymerization inhibitor results in increased expression of smooth muscle cell differentiation proteins and inhibits vascular remodeling in vivo. In this manuscript, we used an in vitro cell culture system to determine the mechanism by which fibronectin polymerization affects smooth muscle phenotypic modulation. Our data show that fibronectin polymerization decreases the mRNA levels of multiple smooth muscle differentiation genes, and downregulates the levels of smooth muscle α-actin and calponin proteins by a Rac1-dependent mechanism. The expression of smooth muscle genes is transcriptionally regulated by fibronectin polymerization, as evidenced by the increased activity of luciferase reporter constructs in the presence of a fibronectin polymerization inhibitor. Fibronectin polymerization also promotes smooth muscle cell growth, and decreases the levels of actin stress fibers. These data define a Rac1-dependent pathway wherein fibronectin polymerization promotes the SMC synthetic phenotype by modulating the expression of smooth muscle cell differentiation proteins.
url http://europepmc.org/articles/PMC3994013?pdf=render
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