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Isolation and Physiological Analysis of Mouse Cardiomyocytes
Published on: September 7, 2014
Cardiomyocyte cytoskeleton and myofibrillogenesis in healthy and diseased heart
1Institute of Cell Biology ETH, Swiss Federal Institute of Technology, CH-8093, Zürich, Switzerland.
Insights
The muscle cytoskeleton, crucial for cardiomyocyte structure and function, maintains myofibrils and transmits force. Its disruption, as seen in muscle-LIM-protein deficiency, can lead to dilated cardiomyopathy.
Area of Science:
- Cardiovascular Biology
- Cellular Cytoskeleton Dynamics
- Muscle Physiology
Background:
- Cardiomyocyte cytoarchitecture relies on complex cytoskeletal interactions.
- Intermediate filaments are vital for myofibril maintenance and force transmission.
- Proper assembly and extracellular matrix interaction depend on the muscle cytoskeleton framework.
Purpose of the Study:
- To investigate the role of muscle cytoskeleton proteins in cardiac function.
- To understand how mutations in cytoskeleton proteins lead to dilated cardiomyopathy.
- To explore potential therapeutic targets for cardiomyopathies based on cytoskeletal interactions.
Main Methods:
- Analysis of cardiomyocyte cytoarchitecture and filamentous structures.
- Epitope tagging experiments to identify essential domains for sarcomere assembly.
- Study of muscle-LIM-protein deficient mice models for dilated cardiomyopathy.
- Investigation of cellular responses to mechanical stress and altered protein expression.
Main Results:
- Muscle cytoskeleton proteins are essential for myofibril maintenance and force transmission.
- Mutations or altered expression of cytoskeleton proteins can cause dilated cardiomyopathy.
- Muscle-LIM-protein deficiency in mice results in dilated cardiomyopathy and altered cardiomyocyte mechanical coupling.
- Changes in mechanical coupling affect intercalated disks and adherens junction proteins.
Conclusions:
- Controlled interactions between muscle cytoskeleton and contractile proteins are essential for cardiac function.
- Understanding these interactions may lead to improved contractile efficiency in cardiomyopathies.
- Further research into cytoskeletal dynamics can provide new therapeutic strategies for heart disease.
Abstract:
The unique cytoarchitecture of cardiomyocytes arises by complex interactions of different filamentous structures of the cytoskeleton. Intermediate filaments of the non-sarcomeric cytoskeleton are not essential for development but important for maintenance of myofibrils. Myofibrils consist of contractile proteins involved in force generation and the muscle cytoskeleton framework. The latter is essential for proper assembly and maintenance as well as for interaction with other cardiomyocytes or the extracellular matrix, thus being involved in force transmission. The information for sarcomere assembly is encoded in the proteins and some domains essential for faithful incorporation have been identified by epitope tagging experiments. Many KO mutations result in embryonic lethal phenotypes and new techniques e.g. using cardiomyocytes derived from ES cell-lines will have to be developed that allow to study such mutations in cardiomyocytes rather than whole organisms. Alterations in the expression levels of several proteins of the muscle cytoskeleton or impairment of their function by point mutations can result in increased mechanical stress in the cardiomyocytes which finally leads to cellular responses such as the development of dilated cardiomyopathy (DCM). MLP (muscle-LIM-protein) deficient mice develop DCM and changes in the mechanical coupling of cardiomyocytes result in alterations at the intercalated disks and enhanced accumulation of adherens junction proteins. Therefore, controlled interactions between proteins of the muscle cytoskeleton and contractile proteins are essential to ensure proper cardiac function and a more detailed insight in these processes might provide new tools to improve the contractile efficiency of the cardiomyocytes and thus working output in cardiomyopathies.
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