Integrated mechanisms of CaMKII-dependent ventricular remodeling
Michael M Kreusser1, Johannes Backs1
1Research Unit Cardiac Epigenetics, Department of Cardiology, University of Heidelberg Heidelberg, Germany ; German Center for Cardiovascular Research (DZHK) Partner Site Heidelberg/Mannheim, Germany.
Insights
Calcium/calmodulin-dependent protein kinase II (CaMKII) activation in the heart influences gene expression and epigenetic changes during cardiac remodeling. Targeting CaMKII offers potential for novel transcriptional therapies in heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Epigenetics
Background:
- Calcium/calmodulin-dependent protein kinase II (CaMKII) is activated during cardiac stress and contributes to heart failure.
- CaMKII activation has both acute effects via protein phosphorylation and long-term effects on gene expression.
Purpose of the Study:
- This review focuses on the transcriptional and epigenetic mechanisms of CaMKII activation in chronic cardiac remodeling.
- To explore CaMKII's role in regulating cardiac gene expression and its therapeutic potential.
Main Methods:
- Review of existing literature on CaMKII signaling in cardiac remodeling.
- Analysis of CaMKII's interactions with transcription factors, histone deacetylases (HDACs), and histones.
Main Results:
- CaMKII directly phosphorylates transcription factors like CREB, influencing gene programs.
- CaMKII indirectly regulates transcription by phosphorylating HDAC4, affecting genes driving hypertrophy, fibrosis, and dysfunction.
- CaMKII can directly phosphorylate histones, contributing to altered gene expression.
Conclusions:
- CaMKII-dependent gene regulation plays a critical role in pathological cardiac remodeling.
- Targeting CaMKII offers promising therapeutic strategies for controlling cardiac gene expression and function in heart failure.
Abstract:
CaMKII has been shown to be activated during different cardiac pathological processes, and CaMKII-dependent mechanisms contribute to pathological cardiac remodeling, cardiac arrhythmias, and contractile dysfunction during heart failure. Activation of CaMKII during cardiac stress results in a broad number of biological effects such as, on the one hand, acute effects due to phosphorylation of distinct cellular proteins as ion channels and calcium handling proteins and, on the other hand, integrative mechanisms by changing gene expression. This review focuses on transcriptional and epigenetic effects of CaMKII activation during chronic cardiac remodeling. Multiple mechanisms have been described how CaMKII mediates changes in cardiac gene expression. CaMKII has been shown to directly phosphorylate components of the cardiac gene regulation machinery. CaMKII phosphorylates several transcription factors such as CREB that induces the activation of specific gene programs. CaMKII activates transcriptional regulators also indirectly by phosphorylating histone deacetylases, especially HDAC4, which in turn inhibits transcription factors that drive cardiac hypertrophy, fibrosis, and dysfunction. Recent studies demonstrate that CaMKII also phosphorylate directly histones, which may contribute to changes in gene expression. These findings of CaMKII-dependent gene regulation during cardiac remodeling processes suggest novel strategies for CaMKII-dependent "transcriptional or epigenetic therapies" to control cardiac gene expression and function. Manipulation of CaMKII-dependent signaling pathways in the settings of pathological cardiac growth, remodeling, and heart failure represents an auspicious therapeutic approach.
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