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Protein kinase C-mediated desmin phosphorylation is related to myofibril disarray in cardiomyopathic hamster heart
Xupei Huang1, Jian Li, Dalton Foster
1Department of Biomedical Science, Florida Atlantic University, Boca Raton, FL 33431, USA.
Insights
Cardiomyopathic hamsters show increased desmin phosphorylation, leading to myofibril disarray. Protein kinase C (PKC) activation in normal cells mimics this, suggesting desmin
Area of Science:
- Cardiovascular Biology
- Cell Biology
- Biochemistry
Background:
- Hereditary cardiomyopathy in Syrian golden hamsters (UM-X7.1 strain) leads to heart failure.
- Affected animals exhibit cardiac myofibril disarray and myocardial calcium overload.
- The role of desmin phosphorylation in this myofibril disarray is investigated.
Purpose of the Study:
- To examine the role of desmin phosphorylation in myofibril disarray in cardiomyopathic (CM) hamster hearts.
- To investigate the potential involvement of protein kinase C (PKC) in this process.
Main Methods:
- Skinned myofibril protein phosphorylation assays to assess desmin phosphorylation.
- Immunofluorescent microscopy and immunogold electron microscopy on cultured cardiac myocytes.
- Treatment of normal cardiac cells with a PKC activator (12-O-tetradecanylphorbol-13-acetate, TPA).
Main Results:
- Desmin can be phosphorylated by PKC.
- Desmin content is similar in CM and control hearts, but CM desmin shows higher phosphorylation.
- TPA treatment of normal cardiac cells causes desmin filament disassembly and myofibril disarray, mimicking CM.
- Desmin distribution and myofibril organization were analyzed.
Conclusions:
- PKC-mediated phosphorylation of desmin may cause its filament disassembly.
- Desmin filament disassembly is a potential factor in myofibril disarray in cardiomyopathic hearts.
- Desmin plays a crucial role in maintaining myofibril alignment in cardiac cells.
Abstract:
The cardiomyopathic (CM) Syrian golden hamster (strain UM-X7.1) exhibits a hereditary cardiomyopathy, which causes premature death resulting from congestive heart failure. The CM animals show extensive cardiac myofibril disarray and myocardial calcium overload. The present study has been undertaken to examine the role of desmin phosphorylation in myofibril disarray observed in CM hearts. The data from skinned myofibril protein phosphorylation assays have shown that desmin can be phosphorylated by protein kinase C (PKC). There is no significant difference in the content of desmin between CM and control hamster hearts. However, the desmin from CM hearts has a higher phosphorylation level than that of the normal hearts. Furthermore, we have examined the distribution of desmin and myofibril organization with immunofluorescent microscopy and immunogold electron microscopy in cultured cardiac myocytes after treatment with the PKC-activating phorbol ester, 12-O-tetradecanylphorbol-13-acetate (TPA). When the cultured normal hamster cardiac cells are treated with TPA, desmin filaments are disassembled and the myofibrils become disarrayed. The myofibril disarray closely mimics that observed in untreated CM cultures. These results suggest that disassembly of desmin filaments, which could be caused by PKC-mediated phosphorylation, may be a factor in myofibril disarray in cardiomyopathic cells and that the intermediate filament protein, desmin, plays an important role in maintaining myofibril alignment in cardiac cells.
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