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Published on: June 3, 2018
TGF-beta1 induces cardiac hypertrophic responses via PKC-dependent ATF-2 activation
Joong-Yeon Lim1, Sung Joon Park, Ha-Young Hwang
1Division of Cardiovascular Diseases, Department of Biomedical Sciences, National Institute of Health, 5 Nokbun-Dong, Eunpyung-Gu, Seoul 122-701, South Korea.
Abstract:
Several reports have suggested that the TAK1-MKK3/6-p38MAPK signaling axis is important for TGF-beta-related cardiac hypertrophy. Despite this, the effects of exogenous TGF-beta on cardiac hypertrophy and associated signaling mechanisms have not been demonstrated directly. Moreover, the roles of the signaling mechanisms involved in cardiac hypertrophy (TAK1 upstream and p38MAPK downstream) remain unclear. In this study, we investigated the potential involvement of protein kinase C and activating transcription factor-2 in TGF-beta1-induced cardiac hypertrophic responses in cultured neonatal rat ventricular cardiomyocytes. TGF-beta1 treatment resulted in upregulation of mRNA expression or promoter activities of beta-myosin heavy chain, atrial natriuretic factor, and brain natriuretic peptide, and increased myocyte protein content, cell size, and sarcomeric organization. These are all characteristic hallmarks of cardiac hypertrophy. PKC was found to be involved throughout the signaling system, and it was shown that it acts by mediating upstream TAK1 activation and leads to ATF-2 activation. PKC-dependent ATF-2 activation was shown to be involved in TGF-beta1-induced cardiac hypertrophic responses. The PKC inhibitors, GO6976 and GF109203X, completely blocked TGF-beta1-induced TAK1 kinase activity and subsequent downstream signaling pathways including ATF-2 phosphorylation, leading to suppression of ATF-2 transcriptional activity. This inhibitory effect was reflected in cardiac hypertrophic responses such as inhibitions of beta-MHC gene induction and ANF promoter activity. Our results suggest that PKC is involved in TGF-beta1-induced cardiac hypertrophic responses in our cell culture system and that ATF-2 activation plays a role.
Insights
Protein kinase C (PKC) mediates transforming growth factor-beta1 (TGF-beta1)-induced cardiac hypertrophy by activating TAK1 and ATF-2. Inhibiting PKC blocks these pathways, suppressing hypertrophic responses in cardiomyocytes.
Area of Science:
- Cardiovascular Biology
- Molecular Cell Biology
- Signal Transduction
Background:
- The TAK1-MKK3/6-p38MAPK signaling axis is implicated in TGF-beta-related cardiac hypertrophy.
- Direct evidence for exogenous TGF-beta effects and upstream/downstream signaling in cardiac hypertrophy remains limited.
Purpose of the Study:
- To investigate the roles of protein kinase C (PKC) and activating transcription factor-2 (ATF-2) in TGF-beta1-induced cardiac hypertrophy.
- To elucidate the signaling mechanisms linking TGF-beta1 to hypertrophic responses in cardiomyocytes.
Main Methods:
- Utilized cultured neonatal rat ventricular cardiomyocytes treated with TGF-beta1.
- Assessed cardiac hypertrophy markers (gene expression, protein content, cell size).
- Investigated the involvement of PKC and ATF-2 using specific inhibitors (GO6976, GF109203X) and kinase activity assays.
Main Results:
- TGF-beta1 induced cardiac hypertrophy hallmarks, including upregulated beta-myosin heavy chain, atrial natriuretic factor, and brain natriuretic peptide.
- PKC activation was essential, mediating upstream TAK1 activation and downstream ATF-2 activation.
- PKC inhibitors blocked TGF-beta1-induced TAK1 activity, ATF-2 phosphorylation, and transcriptional activity, suppressing hypertrophic markers.
Conclusions:
- PKC plays a critical role in TGF-beta1-induced cardiac hypertrophy in cultured cardiomyocytes.
- PKC-dependent ATF-2 activation is a key mechanism in these hypertrophic responses.
- Targeting the PKC-TAK1-ATF-2 pathway may offer therapeutic strategies for cardiac hypertrophy.
Related Concept Videos
TGF - β Signaling Pathway
cAMP-dependent Protein Kinase Pathways
Cellular Adaptation II: Hypertrophy
MAPK Signaling Cascades
Activation and Inactivation of G Proteins
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