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Updated: Jul 18, 2026

Primary Culture of Adult Rat Heart Myocytes
Published on: June 16, 2009
Protein kinase Cepsilon-dependent MARCKS phosphorylation in neonatal and adult rat ventricular myocytes
Maria C Heidkamp1, Rekha Iyengar, Erika L Szotek
1The Cardiovascular Institute, Loyola University Chicago Stritch School of Medicine, 2160 South First Avenue, Maywood, IL 60153, USA.
Abstract:
The myristoylated, alanine-rich protein kinase C substrate (MARCKS) is a cytoskeletal protein implicated in the regulation of cell spreading, stress fiber formation, and focal adhesion assembly in nonmuscle cells. However, its precise role in cardiomyocyte growth, and its PKC-dependent regulation have not been fully explored. In this report, we show that MARCKS is expressed and phosphorylated under basal conditions in cultured neonatal and adult rat ventricular myocytes (NRVM and ARVM, respectively). The PKC activators phenylephrine, angiotensin II, and endothelin-1 (ET) further increased MARCKS phosphorylation, with ET inducing the greatest response. To determine which PKC isoenzyme was responsible for agonist-induced MARCKS phosphorylation, NRVM and ARVM were infected with replication-defective adenoviruses (Adv) encoding wildtype (wt) and constitutively active (ca) mutants of PKCepsilon, PKCdelta, and PKCalpha. Only PKCepsilon increased phosphorylated MARCKS (pMARCKS). In contrast, Adv-mediated overexpression of a dominant-negative (dn) mutant of PKCepsilon reduced basal and ET-stimulated pMARCKS. dnPKCepsilon overexpression also prevented ET-induced, apparent co-localization of pMARCKS with f-actin staining structures. Adv-mediated overexpression of GFP-tagged, wtMARCKS (wtMARCKS-GFP) increased phosphorylation of focal adhesion kinase (FAK) and also increased NRVM surface area. In contrast, overexpression of a GFP-tagged, non-phosphorylatable (np) MARCKS mutant (npMARCKS-GFP) decreased basal and ET-induced endogenous MARCKS and FAK phosphorylation, and blocked the ET-induced increase in NRVM surface area. We conclude that MARCKS is expressed in cardiomyocytes, is phosphorylated by PKCepsilon, and participates in the regulation of FAK phosphorylation and cell spreading.
Insights
Myristoylated, alanine-rich protein kinase C substrate (MARCKS) is expressed in cardiomyocytes and phosphorylated by PKCepsilon. This process regulates focal adhesion kinase (FAK) phosphorylation and cardiomyocyte cell spreading.
Area of Science:
- Cardiovascular Biology
- Cellular Signaling
- Molecular Cardiology
Background:
- The myristoylated, alanine-rich protein kinase C substrate (MARCKS) is a key cytoskeletal regulator in nonmuscle cells.
- Its specific function and regulation by protein kinase C (PKC) in cardiomyocytes remain largely uncharacterized.
Purpose of the Study:
- To investigate the role and PKC-dependent regulation of MARCKS in cardiomyocyte growth and function.
- To identify the specific PKC isoenzyme involved in MARCKS phosphorylation in cardiomyocytes.
Main Methods:
- Utilized cultured neonatal and adult rat ventricular myocytes (NRVMs and ARVMs).
- Employed PKC activators (phenylephrine, angiotensin II, endothelin-1) and replication-defective adenoviruses (Adv) for gene manipulation (overexpression and dominant-negative mutants of PKC isoenzymes, wildtype MARCKS, and non-phosphorylatable MARCKS mutant).
- Assessed MARCKS phosphorylation (pMARCKS), focal adhesion kinase (FAK) phosphorylation, and cell surface area.
Main Results:
- MARCKS is expressed and phosphorylated in cardiomyocytes under basal conditions, with increased phosphorylation induced by PKC activators, notably endothelin-1.
- PKCepsilon was identified as the specific isoenzyme responsible for agonist-induced MARCKS phosphorylation.
- Overexpression of wildtype MARCKS increased FAK phosphorylation and cardiomyocyte size, while a non-phosphorylatable mutant blocked these effects, indicating MARCKS's role in cell spreading and growth regulation.
Conclusions:
- MARCKS is expressed in cardiomyocytes and its phosphorylation, mediated by PKCepsilon, is crucial for regulating FAK phosphorylation and cardiomyocyte cell spreading.
- MARCKS plays a significant role in cardiomyocyte growth and cytoskeletal dynamics, modulated by PKC signaling pathways.
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