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Updated: Jun 29, 2025

Aip1p Dynamics Are Altered by the R256H Mutation in Actin
Published on: July 30, 2014
Dilated cardiomyopathy-associated skeletal muscle actin (ACTA1) mutation R256H disrupts actin structure and function
Ankit Garg1,2,3, Silvia Jansen4, Rui Zhang2
1Division of Cardiology, Department of Medicine Johns Hopkins University Baltimore MD USA.
Insights
A specific mutation in skeletal muscle actin (ACTA1) can cause dilated cardiomyopathy (DCM) even at low levels. This R256H mutation disrupts heart muscle contractility by affecting actin filaments.
Area of Science:
- Cardiovascular Biology
- Muscle Physiology
- Molecular Genetics
Background:
- Skeletal muscle actin (ACTA1) mutations are common causes of skeletal myopathies.
- The role of ACTA1 in cardiomyopathy is debated due to its low expression in cardiomyocytes compared to other actin isoforms.
Conclusions:
- The ACTA1 R256H mutation is sufficient to cause cardiomyopathy by disrupting cardiac muscle contractility.
- This study establishes a causative link between ACTA1 R256H and clinical dilated cardiomyopathy.
- Even low-level expression of mutant actin can lead to significant cardiac dysfunction.
Abstract:
Skeletal muscle actin (ACTA1) mutations are a prevalent cause of skeletal myopathies consistent with ACTA1's high expression in skeletal muscle. Rare de novo mutations in ACTA1 associated with combined cardiac and skeletal myopathies have been reported, but ACTA1 represents only ~20% of the total actin pool in cardiomyocytes, making its role in cardiomyopathy controversial. Here we demonstrate how a mutation in an actin isoform expressed at low levels in cardiomyocytes can cause cardiomyopathy by focusing on a unique ACTA1 mutation, R256H. We previously identified this mutation in multiple family members with dilated cardiomyopathy (DCM), who had reduced systolic function without clinical skeletal myopathy. Using a battery of multiscale biophysical tools, we show that R256H has potent functional effects on ACTA1 function at the molecular scale and in human cardiomyocytes. Importantly, we demonstrate that R256H acts in a dominant manner, where the incorporation of small amounts of mutant protein into thin filaments is sufficient to disrupt molecular contractility, and that this effect is dependent on the presence of troponin and tropomyosin. To understand the structural basis of this change in regulation, we resolved a structure of R256H filaments using Cryo-EM, and we see alterations in actin's structure that have the potential to disrupt interactions with tropomyosin. Finally, we show that ACTA1R256H/+ human induced pluripotent stem cell cardiomyocytes demonstrate reduced contractility and sarcomeric disorganization. Taken together, we demonstrate that R256H has multiple effects on ACTA1 function that are sufficient to cause reduced contractility and establish a likely causative relationship between ACTA1 R256H and clinical cardiomyopathy.
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