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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Dysfunction in the βII spectrin-dependent cytoskeleton underlies human arrhythmia
Sakima A Smith1, Amy C Sturm1, Jerry Curran1
1From Dorothy M. Davis Heart and Lung Research Institute (S.A.S., A.C.S., J.C., C.F.K., S.C.L., I.M.B., V.P.L., M.M., I.P., L.D.H., T.R.W., P.W., R.W., P.F.B., P.M.J., A.K., R.S.H., M.S., J.M., C.A.C., T.J.H., P.J.M.), Department of Internal Medicine, Division of Cardiovascular Medicine (S.A.S., R.W., P.F.B., P.J.M.), Department of Internal Medicine, Division of Human Genetics (A.C.S., P.M.J.), Department of Physiology and Cell Biology (J.C., C.F.K., S.C.L., M.M., I.P., L.D.H., T.R.W., P.W., P.M.J., P.J.M.), and Department of Surgery (A.K., R.S.H., M.S., J.M.), The Ohio State University Wexner Medical Center; Columbus; College of Pharmacy (I.M.B., V.P.L., C.A.C.) and Department of Biomedical Engineering, College of Engineering (T.J.H.), The Ohio State University, Columbus; Division of Life Science and Institute for Advanced Study, Hong Kong University of Science and Technology, Clear Water Bay Kowloon, Hong Kong (Z.W., M.Z.); Department of Biology, South University of Science and Technology of China, Shenzhen, Guangdong, China (Z.W.); Institute of Pharmacology, Faculty of Medicine, University Duisburg-Essen, Essen, Germany (N.V., D.D.); Krannert Institute of Cardiology and Department of Medical and Molecular Genetics, Indiana University School of Medicine, Indianapolis (D.B., K.G.S., M.V.); and Department of Neuroscience, Baylor College of Medicine; Houston, TX (C.Z., M.N.R.).
Insights
Beta-II spectrin is crucial for heart electrical activity and protein localization. Mutations disrupt this, causing severe arrhythmias and heart failure, highlighting its role in cardiac health.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cellular Electrophysiology
Background:
- The cardiac cytoskeleton is vital for myocyte structure, with mutations linked to heart diseases.
- The role of cytoskeletal protein dysfunction in cardiac arrhythmias is poorly understood.
Purpose of the Study:
- To investigate the role of beta-II spectrin in cardiac membrane excitability and its link to arrhythmias.
- To uncover a novel mechanism regulating cardiac electrical activity.
Main Methods:
- Investigated beta-II spectrin's role in targeting membrane proteins in the heart.
- Analyzed a human mutation in ankyrin-B affecting the ankyrin-B/beta-II spectrin interaction.
- Studied mice lacking cardiac beta-II spectrin to assess electrical and calcium handling, protein localization, and heart failure phenotypes.
Main Results:
- Beta-II spectrin is essential for posttranslational targeting and localization of key membrane proteins in cardiomyocytes.
- A novel ankyrin-B mutation disrupts the ankyrin-B/beta-II spectrin interaction, causing severe human arrhythmias.
- Mice lacking cardiac beta-II spectrin exhibit lethal arrhythmias, abnormal electric and calcium handling, altered protein localization, and accelerated heart failure.
Conclusions:
- Beta-II spectrin is critical for normal myocyte electrical activity.
- This study links beta-II spectrin dysfunction to human cardiac disease.
- Provides new insights into cardiac myocyte biology and arrhythmia mechanisms.
Background:
The cardiac cytoskeleton plays key roles in maintaining myocyte structural integrity in health and disease. In fact, human mutations in cardiac cytoskeletal elements are tightly linked to cardiac pathologies, including myopathies, aortopathies, and dystrophies. Conversely, the link between cytoskeletal protein dysfunction and cardiac electric activity is not well understood and often overlooked in the cardiac arrhythmia field.
Methods And Results:
Here, we uncover a new mechanism for the regulation of cardiac membrane excitability. We report that βII spectrin, an actin-associated molecule, is essential for the posttranslational targeting and localization of critical membrane proteins in heart. βII spectrin recruits ankyrin-B to the cardiac dyad, and a novel human mutation in the ankyrin-B gene disrupts the ankyrin-B/βII spectrin interaction, leading to severe human arrhythmia phenotypes. Mice lacking cardiac βII spectrin display lethal arrhythmias, aberrant electric and calcium handling phenotypes, and abnormal expression/localization of cardiac membrane proteins. Mechanistically, βII spectrin regulates the localization of cytoskeletal and plasma membrane/sarcoplasmic reticulum protein complexes, including the Na/Ca exchanger, ryanodine receptor 2, ankyrin-B, actin, and αII spectrin. Finally, we observe accelerated heart failure phenotypes in βII spectrin-deficient mice.
Conclusions:
Our findings identify βII spectrin as critical for normal myocyte electric activity, link this molecule to human disease, and provide new insight into the mechanisms underlying cardiac myocyte biology.
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