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Integrin α9 regulates smooth muscle cell phenotype switching and vascular remodeling
Manish Jain, Rishabh Dev, Prakash Doddapattar, Shigeyuki Kon, Nirav Dhanesha, Anil K. Chauhan
Manish Jain, Rishabh Dev, Prakash Doddapattar, Shigeyuki Kon, Nirav Dhanesha, Anil K. Chauhan
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Research Article Vascular biology

Integrin α9 regulates smooth muscle cell phenotype switching and vascular remodeling

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Abstract

Excessive proliferation of vascular smooth muscle cells (SMCs) remains a significant cause of in-stent restenosis. Integrins, which are heterodimeric transmembrane receptors, play a crucial role in SMC biology by binding to the extracellular matrix protein with the actin cytoskeleton within the SMC. Integrin α9 plays an important role in cell motility and autoimmune diseases; however, its role in SMC biology and remodeling remains unclear. Herein, we demonstrate that stimulated human coronary SMCs upregulate α9 expression. Targeting α9 in stimulated human coronary SMCs, using anti–integrin α9 antibody, suppresses synthetic phenotype and inhibits SMC proliferation and migration. To provide definitive evidence, we generated an SMC-specific α9-deficient mouse strain. Genetic ablation of α9 in SMCs suppressed synthetic phenotype and reduced proliferation and migration in vitro. Mechanistically, suppressed synthetic phenotype and reduced proliferation were associated with decreased focal adhesion kinase/steroid receptor coactivator signaling and downstream targets, including phosphorylated ERK, p38 MAPK, glycogen synthase kinase 3β, and nuclear β-catenin, with reduced transcriptional activation of β-catenin target genes. Following vascular injury, SMC-specific α9-deficient mice or wild-type mice treated with murine anti–integrin α9 antibody exhibited reduced injury-induced neointimal hyperplasia at day 28 by limiting SMC migration and proliferation. Our findings suggest that integrin α9 regulates SMC biology, suggesting its potential therapeutic application in vascular remodeling.

Authors

Manish Jain, Rishabh Dev, Prakash Doddapattar, Shigeyuki Kon, Nirav Dhanesha, Anil K. Chauhan

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Figure 3

SMC-specific integrin α9 modulates neointimal hyperplasia in mice.

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SMC-specific integrin α9 modulates neointimal hyperplasia in mice.
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All mice are on Apoe–/– background. Serum-deprived SMCs were stimulated with or without PDGF-BB (20 ng/mL) for indicated time points. (A) Representative immunoblots and densitometric analysis of α9 expression levels. β-Actin was used as a loading control (n = 4). (B) Quantification of α9 mRNA expression by real-time PCR (n = 6). (C) Western blot analysis of α9 and β-actin in SMCs isolated from α9SMC-KO and control α9fl/fl mice. #1 and #2 represent samples from 2 individual mice. (D) The left panels show representative photomicrographs of Verhoeff’s van Gieson–stained carotid artery sections from male and female α9SMC-KO and control α9fl/fl mice after 28 days of injury (male n = 12–13; female n = 9/group). Scale bars: 200 μm. The right panels show quantification of intimal area, medial area, and a ratio of intimal to medial area. Each dot represents a single mouse. (E) The left panels show representative BrdU-positive cells (red) counterstained with αSMA (green). Nuclei are counterstained with Hoechst (blue). The right panel shows the quantification of percentage BrdU-positive cells (n = 7). Scale bars: 200 μm. (F) The left panels show representative TUNEL-positive cells (green) counterstained with Hoechst (blue). The right panel shows the quantification of TUNEL-positive cells (n = 7). Scale bars: 200 μm. Values are represented as mean ± SEM. Statistical analysis: (A) 1-way ANOVA followed by Bonferroni’s post hoc test; (B–F) unpaired 2-tailed Student’s t test. *P < 0.05 versus quiescent. N.D., not detected.

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