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Published on: November 11, 2016
HCN channels--modulators of cardiac and neuronal excitability
Stefan Herrmann1, Sabine Schnorr2, Andreas Ludwig3
1Institut für Experimentelle und Klinische Pharmakologie und Toxikologie, Friedrich-Alexander-Universität Erlangen-Nürnberg, 91054 Erlangen, Germany. Stefan.Herrmann@pharmakologie.uni-erlangen.de.
Insights
Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels are crucial for cellular excitability, especially in cardiac and nervous systems. Their role in conditions like ventricular hypertrophy and neuropathy suggests potential as therapeutic drug targets.
Area of Science:
- Molecular Biology
- Neuroscience
- Cardiology
Background:
- Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels (HCN1-4) are critical ion channels.
- These channels are activated by hyperpolarized membrane potentials and cyclic nucleotides.
- HCN isoforms exhibit distinct biophysical properties and tissue-specific expression.
Purpose of the Study:
- To review recent insights into the functional roles of HCN channels beyond their pacemaker function.
- To discuss the significance of HCN channels in the cardiac ventricle, ventricular hypertrophy, peripheral nervous system, and nociception.
Main Methods:
- Review of studies, primarily utilizing transgenic mouse models.
- Analysis of data on cellular excitability and pathophysiological conditions.
Main Results:
- HCN channels significantly contribute to cellular excitability in various tissues.
- Their impact is more pronounced in pathophysiological states like ventricular hypertrophy, neural inflammation, and neuropathy.
Conclusions:
- HCN channels play a vital role in cellular excitability, particularly in disease states.
- HCN channels represent promising drug targets for treating conditions such as ventricular hypertrophy and neuropathy.
- The therapeutic use of HCN blockers is also considered.
Abstract:
Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels comprise a family of cation channels activated by hyperpolarized membrane potentials and stimulated by intracellular cyclic nucleotides. The four members of this family, HCN1-4, show distinct biophysical properties which are most evident in the kinetics of activation and deactivation, the sensitivity towards cyclic nucleotides and the modulation by tyrosine phosphorylation. The four isoforms are differentially expressed in various excitable tissues. This review will mainly focus on recent insights into the functional role of the channels apart from their classic role as pacemakers. The importance of HCN channels in the cardiac ventricle and ventricular hypertrophy will be discussed. In addition, their functional significance in the peripheral nervous system and nociception will be examined. The data, which are mainly derived from studies using transgenic mice, suggest that HCN channels contribute significantly to cellular excitability in these tissues. Remarkably, the impact of the channels is clearly more pronounced in pathophysiological states including ventricular hypertrophy as well as neural inflammation and neuropathy suggesting that HCN channels may constitute promising drug targets in the treatment of these conditions. This perspective as well as the current therapeutic use of HCN blockers will also be addressed.
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