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Updated: Jul 23, 2025

Isolation of Primary Patient-specific Aortic Smooth Muscle Cells and Semiquantitative Real-time Contraction Measurements In Vitro
Published on: February 15, 2022
Lamin A/C Ablation Restricted to Vascular Smooth Muscle Cells, Cardiomyocytes, and Cardiac Fibroblasts Causes Cardiac
Alberto Del Monte-Monge1,2, Íñigo Ruiz-Polo de Lara1, Pilar Gonzalo1,2
1Centro Nacional de Investigaciones Cardiovasculares (CNIC), Melchor Fernández Almagro 3, 28029 Madrid, Spain.
Insights
Mutations in the LMNA gene cause heart disease. This study shows LMNA mutations also alter vascular smooth muscle cells, contributing to LMNA-dilated cardiomyopathy (LMNA-DCM) and suggesting new therapeutic targets.
Area of Science:
- Cardiovascular Biology
- Molecular Genetics
- Disease Mechanisms
Background:
- Mutations in the LMNA gene, encoding lamin A/C proteins, are linked to human cardiac diseases like dilated cardiomyopathies (LMNA-DCM).
- Existing research primarily focuses on cardiomyocyte alterations in LMNA-DCM pathogenesis.
- The role of vascular alterations in LMNA-DCM remains largely unexplored.
Purpose of the Study:
- To investigate whether LMNA mutations induce vascular alterations contributing to LMNA-DCM.
- To characterize the vascular phenotype in a novel mouse model lacking lamin A/C in key cell types.
Main Methods:
- Generation and characterization of Lmna mice lacking lamin A/C in vascular smooth muscle cells (VSMCs), cardiac fibroblasts, and cardiomyocytes.
- Assessment of cardiac function, fibrosis, and molecular markers (Smad3, caspase 3).
- Ex vivo wire myography of aortic rings to evaluate vascular contractility and responsiveness.
Main Results:
- Lmna mice exhibited hallmarks of human LMNA-DCM, including cardiac dysfunction, fibrosis, and premature death.
- Vascular alterations observed include perivascular fibrosis and a shift in aortic VSMC phenotype from contractile to synthetic.
- Aortic rings from Lmna mice showed impaired contraction and altered responses to vasoactive agents.
Conclusions:
- This study provides the first evidence that LMNA mutations cause phenotypic alterations in VSMCs.
- These vascular defects may significantly contribute to the pathophysiology of LMNA-DCM.
- Targeting vascular mechanisms could offer new therapeutic strategies for LMNA-DCM.
Abstract:
Mutations in the LMNA gene (encoding lamin A/C proteins) cause several human cardiac diseases, including dilated cardiomyopathies (LMNA-DCM). The main clinical risks in LMNA-DCM patients are sudden cardiac death and progressive left ventricular ejection fraction deterioration, and therefore most human and animal studies have sought to define the mechanisms through which LMNA mutations provoke cardiac alterations, with a particular focus on cardiomyocytes. To investigate if LMNA mutations also cause vascular alterations that might contribute to the etiopathogenesis of LMNA-DCM, we generated and characterized Lmna mice, which constitutively lack lamin A/C in vascular smooth muscle cells (VSMCs), cardiac fibroblasts, and cardiomyocytes. Like mice with whole body or cardiomyocyte-specific lamin A/C ablation, Lmna mice recapitulated the main hallmarks of human LMNA-DCM, including ventricular systolic dysfunction, cardiac conduction defects, cardiac fibrosis, and premature death. These alterations were associated with elevated expression of total and phosphorylated (active) Smad3 and cleaved (active) caspase 3 in the heart. Lmna mice also exhibited perivascular fibrosis in the coronary arteries and a switch of aortic VSMCs from the 'contractile' to the 'synthetic' phenotype. Ex vivo wire myography in isolated aortic rings revealed impaired maximum contraction capacity and an altered response to vasoconstrictor and vasodilator agents in Lmna mice. To our knowledge, our results provide the first evidence of phenotypic alterations in VSMCs that might contribute significantly to the pathophysiology of some forms of LMNA-DCM. Future work addressing the mechanisms underlying vascular defects in LMNA-DCM may open new therapeutic avenues for these diseases.
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