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Updated: Jul 7, 2026

Analysis of Cardiomyocyte Development using Immunofluorescence in Embryonic Mouse Heart
Published on: March 26, 2015
Three-dimensional structure of vertebrate cardiac muscle myosin filaments
Maria E Zoghbi1, John L Woodhead, Richard L Moss
1Department of Cell Biology, University of Massachusetts Medical School, 55 Lake Avenue North, Worcester, MA 01655, USA.
Insights
Cardiac myosin filaments
Area of Science:
- Cardiac muscle physiology
- Molecular and structural biology
- Cardiovascular disease mechanisms
Background:
- Cardiac contraction relies on myosin and actin filament interactions.
- Inherited hypertrophic cardiomyopathy (HCM) is linked to mutations in cardiac myosin filament proteins.
- The 3D structure of cardiac myosin filaments and HCM-related alterations remain unclear.
Purpose of the Study:
- To determine the 3D structure of cardiac myosin filaments in wild-type and HCM models.
- To elucidate the roles of titin and myosin binding protein C (MyBP-C) in filament structure and function.
- To investigate how MyBP-C mutations impact cardiac myosin filament organization and relaxation.
Main Methods:
- Utilized electron microscopy and image analysis for 3D reconstruction.
- Examined myosin filaments from wild-type mice and a MyBP-C knockout HCM model.
- Achieved a resolution of 4 nm for structural analysis.
Main Results:
- Revealed the conformation of myosin heads and the organization of titin and MyBP-C in wild-type filaments.
- Observed intramolecular interactions of myosin heads, suggesting a common 'off-state' conformation.
- Identified disrupted myosin head interactions in the MyBP-C knockout model, indicating its role in filament relaxation.
Conclusions:
- Myosin binding protein C is crucial for normal cardiac myosin filament relaxation.
- The study provides structural insights into cardiac contraction, filament assembly, and HCM pathogenesis.
- Developed techniques applicable to studying other myosin-related HCM diseases.
Abstract:
Contraction of the heart results from interaction of the myosin and actin filaments. Cardiac myosin filaments consist of the molecular motor myosin II, the sarcomeric template protein, titin, and the cardiac modulatory protein, myosin binding protein C (MyBP-C). Inherited hypertrophic cardiomyopathy (HCM) is a disease caused mainly by mutations in these proteins. The structure of cardiac myosin filaments and the alterations caused by HCM mutations are unknown. We have used electron microscopy and image analysis to determine the three-dimensional structure of myosin filaments from wild-type mouse cardiac muscle and from a MyBP-C knockout model for HCM. Three-dimensional reconstruction of the wild-type filament reveals the conformation of the myosin heads and the organization of titin and MyBP-C at 4 nm resolution. Myosin heads appear to interact with each other intramolecularly, as in off-state smooth muscle myosin [Wendt T, Taylor D, Trybus KM, Taylor K (2001) Proc Natl Acad Sci USA 98:4361-4366], suggesting that all relaxed muscle myosin IIs may adopt this conformation. Titin domains run in an elongated strand along the filament surface, where they appear to interact with part of MyBP-C and with the myosin backbone. In the knockout filament, some of the myosin head interactions are disrupted, suggesting that MyBP-C is important for normal relaxation of the filament. These observations provide key insights into the role of the myosin filament in cardiac contraction, assembly, and disease. The techniques we have developed should be useful in studying the structural basis of other myosin-related HCM diseases.
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