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Method for Identifying Small Molecule Inhibitors of the Protein-protein Interaction Between HCN1 and TRIP8b
Published on: November 11, 2016
Molecular mechanism of cAMP modulation of HCN pacemaker channels
B J Wainger1, M DeGennaro, B Santoro
1Center for Neurobiology and Behavior, Columbia University, New York, NY 10032, USA.
Insights
The cyclic nucleotide-binding domain (CNBD) inhibits hyperpolarization-activated cyclic nucleotide-gated (HCN) channel activation. Cyclic AMP binding relieves this inhibition, explaining functional differences between HCN isoforms.
Area of Science:
- Molecular Biology
- Neuroscience
- Cardiology
Background:
- Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels are crucial for rhythmic activity in the heart and brain.
- HCN channels possess a core transmembrane domain and a cyclic nucleotide-binding domain (CNBD).
- Cyclic AMP (cAMP) binding accelerates HCN channel opening, influencing rhythmogenesis.
Purpose of the Study:
- To elucidate the mechanism by which cAMP modulates HCN channel gating.
- To understand the basis for functional differences among HCN isoforms.
Main Methods:
- Construction and analysis of HCN channel truncation mutants.
- Investigating the inhibitory role of the CNBD on the transmembrane domain.
Main Results:
- The CNBD was demonstrated to inhibit the activation of the core transmembrane domain of HCN channels.
- cAMP binding was shown to relieve this CNBD-mediated inhibition.
- Differences in cAMP modulation and activation gating between HCN1 and HCN2 isoforms are largely due to variations in CNBD inhibition efficacy.
Conclusions:
- The CNBD acts as a direct inhibitor of HCN channel activation.
- cAMP binding relieves CNBD-mediated inhibition, providing a mechanism for channel modulation.
- Differential CNBD inhibition efficacy underlies functional variations observed in HCN channel isoforms.
Abstract:
Hyperpolarization-activated cation channels of the HCN gene family contribute to spontaneous rhythmic activity in both heart and brain. All four family members contain both a core transmembrane segment domain, homologous to the S1-S6 regions of voltage-gated K+ channels, and a carboxy-terminal 120 amino-acid cyclic nucleotide-binding domain (CNBD) motif. Homologous CNBDs are responsible for the direct activation of cyclic nucleotide-gated channels and for modulation of the HERG voltage-gated K+ channel--important for visual and olfactory signalling and for cardiac repolarization, respectively. The direct binding of cyclic AMP to the cytoplasmic site on HCN channels permits the channels to open more rapidly and completely after repolarization of the action potential, thereby accelerating rhythmogenesis. However, the mechanism by which cAMP binding modulates HCN channel gating and the basis for functional differences between HCN isoforms remain unknown. Here we demonstrate by constructing truncation mutants that the CNBD inhibits activation of the core transmembrane domain. cAMP binding relieves this inhibition. Differences in activation gating and extent of cAMP modulation between the HCN1 and HCN2 isoforms result largely from differences in the efficacy of CNBD inhibition.
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