Related Experiment Video
Updated: May 30, 2026

Isolation of Primary Patient-specific Aortic Smooth Muscle Cells and Semiquantitative Real-time Contraction Measurements In Vitro
Published on: February 15, 2022
Smooth muscle phenotypic diversity is mediated through alterations in myocardin gene splicing
Roger M Ilagan1, Christopher W Genheimer, Sarah F Quinlan
1Tengion, Inc., Science and Technology, Winston-Salem, North Carolina, USA. roger.ilagan@tengion.com
Abstract:
Myocardin (MYOCD) is a smooth and cardiac muscle-specific transcriptional coactivator that is required for the proper expression of contraction-related genes. Through its function to transactivate effector genes, MYOCD plays an essential role in mediating the switch between contractile and non-contractile phenotypes, particularly in smooth muscle cells (SMC). There are at least two known transcript variants of MYOCD that are expressed in SMC, differing only by the presence (+) or absence (Δ) of Exon 11. To date, no functional role has been assigned to the domain encoded by Exon 11, nor have any notable differences between the ability of each isoform to activate contraction-related genes been observed. In this study we compared sequences for Exon 11 among several mammalian species and identified a highly conserved, putative target sequence for glycogen synthase kinase 3 (GSK3) phosphorylation, suggesting a regulatory role for Exon 11 that can be modulated by alternative splicing. The function of Exon 11 was investigated by altering MYOCD splice selection in cultured porcine SMC with small interfering RNAs (siRNA) and specific chemical inhibitors, resulting in a relative increase in expression of ΔExon 11 variants in the endogenous pool of MYOCD mRNA. The relative increase in ΔExon 11 mRNAs correlated with a reduction of contractile phenotype in the porcine SMC as evidenced by morphological assessment and molecular analysis of effector genes. Together, these data suggest that MYOCD ΔExon 11 may participate in modulating SMC phenotype, potentially acting as a dominant-negative repressor of contraction-related genes.
Insights
The absence of Exon 11 in Myocardin (MYOCD) variants may alter smooth muscle cell (SMC) phenotype. This suggests MYOCD splicing regulates gene expression and cell behavior, impacting SMC contractility.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Myocardin (MYOCD) is a key coactivator for muscle-specific genes.
- MYOCD has splice variants differing by Exon 11, but its function is unclear.
- Smooth muscle cell (SMC) phenotype is regulated by MYOCD.
Purpose of the Study:
- Investigate the functional role of MYOCD Exon 11.
- Determine if alternative splicing of MYOCD affects SMC phenotype.
- Explore the regulatory mechanism of MYOCD in smooth muscle contraction.
Main Methods:
- Comparative sequence analysis of Exon 11 across mammalian species.
- Utilized siRNA and chemical inhibitors to alter MYOCD splicing in cultured porcine SMC.
- Assessed changes in SMC morphology and effector gene expression.
Main Results:
- Identified a conserved GSK3 phosphorylation site in Exon 11, suggesting regulatory potential.
- Increased expression of MYOCD lacking Exon 11 (ΔExon 11) correlated with reduced SMC contractility.
- Observed morphological and molecular changes indicative of a non-contractile phenotype.
Conclusions:
- MYOCD alternative splicing, specifically Exon 11 inclusion/exclusion, influences SMC phenotype.
- The ΔExon 11 MYOCD variant may act as a dominant-negative repressor of contraction-related genes.
- Exon 11's role in MYOCD function is linked to alternative splicing and modulation of smooth muscle contractility.
Related Concept Videos
Smooth Muscle Contraction
The onset of contraction is triggered by an increase in calcium ions within the sarcoplasm, similar to the process in striated muscle. However, smooth muscles have a relatively smaller reservoir of the sarcoplasmic...
Master Transcription Regulators
Specialized Characteristics of Cardiac Muscles
Cardiac muscle cells are smaller than skeletal muscles, averaging 10–20 mm in diameter and 50–100 mm in length. However, they have large energy demands for continuous contraction and relaxation. This energy is almost exclusively derived from aerobic metabolism of energy reserves in...
Alternative RNA Splicing
There are five types of alternative RNA splicing that vary in the ways the pre-mRNA segments are removed or retained in the mature mRNA. The first...
Satellite Stem Cells and Muscular Dystrophy
RNA Splicing

