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Updated: May 22, 2026

Isolation of Primary Patient-specific Aortic Smooth Muscle Cells and Semiquantitative Real-time Contraction Measurements In Vitro
Published on: February 15, 2022
Atorvastatin inhibits myocardin expression in vascular smooth muscle cells
Jingjing Li1, Jixin Jiang, Hao Yin
1Department of Biochemistry and Molecular Biology, The Libin Cardiovascular Institute of Alberta, The University of Calgary, Health Sciences Center, 3330 Hospital Dr NW, Calgary, Alberta, Canada T2N 4N1.
Insights
Atorvastatin (ATV) inhibits myocardin gene expression in vascular smooth muscle cells, reducing vascular contraction. This study reveals a novel mechanism for ATV
Area of Science:
- Cardiovascular Biology
- Molecular Pharmacology
- Cellular Physiology
Background:
- Atorvastatin (ATV) is a widely used lipid-lowering drug.
- ATV inhibits the RhoA-Rho-associated kinase (ROCK) pathway in vascular smooth muscle (SM) cells.
- Myocardin, a coactivator of serum response factor, upregulates SM contractile proteins and its gene expression is increased by the RhoA-ROCK pathway.
Purpose of the Study:
- To investigate whether Atorvastatin (ATV) inhibits myocardin gene expression in vascular smooth muscle cells.
- To elucidate the role of the RhoA-ROCK pathway in ATV's effects on vascular smooth muscle.
Main Methods:
- In vivo studies using mice treated with ATV.
- In vitro studies using cultured mouse and human aortic smooth muscle cells.
- Analysis of gene expression (myocardin, SM α-actin, SM22) and RhoA activation.
Main Results:
- ATV significantly downregulated myocardin gene expression and its target genes in mouse aortic and carotid arteries.
- ATV reduced the contractility of aortic rings and prevented KCl-induced expression of myocardin, SM α-actin, and SM22 in cultured SM cells.
- ATV inhibited RhoA membrane translocation and activation, effects mimicked by the ROCK inhibitor Y-27632.
Conclusions:
- Atorvastatin inhibits myocardin gene expression in vascular smooth muscle cells both in vivo and in vitro.
- This inhibition of myocardin expression represents a novel mechanism for Atorvastatin's effect on vascular contraction.
- The RhoA-ROCK pathway plays a critical role in mediating Atorvastatin's effects on vascular smooth muscle function.
Abstract:
Atorvastatin (ATV), an inhibitor of 3-hydroxy-3-methylglutaryl-coenzyme A reductase, is widely prescribed as a lipid-lowering drug. It also inhibits the RhoA-Rho-associated kinase pathway in vascular smooth muscle (SM) cells and critically inhibits SM function. Myocardin is a coactivator of serum response factor, which upregulates SM contractile proteins. The RhoA-Rho-associated kinase pathway, which directly triggers SM contraction, also increases myocardin gene expression. Therefore, we investigated whether ATV inhibits myocardin gene expression in SM cells. In mice injected with ATV (IP 20 μg/g per day) for 5 days, myocardin gene expression was significantly downregulated in aortic and carotid arterial tissues with decreased expression of myocardin target genes SM α-actin and SM22. Correspondingly, the contractility of aortic rings in mice treated with ATV or the Rho-associated kinase inhibitor Y-27632 was reduced in response to treatment with either KCl or phenylephrine. In cultured mouse and human aortic SM cells, KCl treatment stimulated the expression of myocardin, SM α-actin, and SM22. These stimulatory effects were prevented by ATV treatment. ATV-induced inhibition of myocardin expression was prevented by pretreatment with either mevalonate or geranylgeranylpyrophosphate but not farnesylpyrophosphate. Treatment with Y-27632 mimicked ATV effects on the gene expression of myocardin, SM α-actin, and SM22, further suggesting a role for the RhoA-Rho-associated kinase pathway in ATV effects. Furthermore, ATV treatment inhibited RhoA membrane translocation and activation; these effects were prevented by pretreatment with mevalonate. We conclude that ATV inhibits myocardin gene expression in vivo and in vitro, suggesting a novel mechanism for ATV inhibition of vascular contraction.
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