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Published on: November 11, 2016
Identification of the molecular site of ivabradine binding to HCN4 channels
Annalisa Bucchi1, Mirko Baruscotti, Marco Nardini
1The PaceLab, Department of Life Sciences, Università degli Studi di Milano, Milano, Italy.
Insights
Ivabradine selectively blocks HCN4 channels by binding to a cavity below the pore. Specific residues Y506, F509, and I510 are crucial for this interaction, explaining ivabradine
Area of Science:
- Cardiovascular Pharmacology
- Molecular Cardiology
- Ion Channel Physiology
Background:
- Ivabradine is a heart rate-lowering drug used for stable angina.
- Its mechanism involves blocking sinoatrial "funny" (f)-channels (HCN channels).
- The precise molecular binding site of ivabradine in HCN channels remains undefined.
Purpose of the Study:
- To identify specific residues in the HCN4 channel involved in ivabradine binding.
- To elucidate the molecular details of ivabradine interaction with HCN4 channels.
Main Methods:
- Homology modeling to visualize the HCN4 channel structure and identify potential binding sites.
- Site-directed mutagenesis of identified residues (Y506, F509, I510) within the HCN4 channel.
- Functional characterization of wild-type and mutant channels using patch-clamp electrophysiology.
- In silico molecular docking simulations to assess ivabradine binding affinity to mutant channels.
Main Results:
- Homology modeling revealed an inner cavity below the HCN4 channel pore.
- Mutagenesis and patch-clamp experiments identified residues Y506, F509, and I510 as critical for ivabradine binding.
- Mutations in these residues significantly reduced ivabradine's blocking efficiency.
- Docking simulations correlated reduced binding efficiency with decreased affinity for ivabradine.
Conclusions:
- Ivabradine binds within an inner cavity of the HCN4 channel, below the pore.
- Residues Y506, F509, and I510 directly interact with and stabilize ivabradine.
- This interaction explains key properties of ivabradine block, including open channel block and drug trapping.
Abstract:
Ivabradine is a specific heart rate-reducing agent approved as a treatment of chronic stable angina. Its mode of action involves a selective and specific block of HCN channels, the molecular components of sinoatrial "funny" (f)-channels. Different studies suggest that the binding site of ivabradine is located in the inner vestibule of HCN channels, but the molecular details of ivabradine binding are unknown. We thus sought to investigate by mutagenesis and in silico analysis which residues of the HCN4 channel, the HCN isoform expressed in the sinoatrial node, are involved in the binding of ivabradine. Using homology modeling, we verified the presence of an inner cavity below the channel pore and identified residues lining the cavity; these residues were replaced with alanine (or valine) either alone or in combination, and WT and mutant channels were expressed in HEK293 cells. Comparison of the block efficiency of mutant vs WT channels, measured by patch-clamp, revealed that residues Y506, F509 and I510 are involved in ivabradine binding. For each mutant channel, docking simulations correctly explain the reduced block efficiency in terms of proportionally reduced affinity for ivabradine binding. In summary our study shows that ivabradine occupies a cavity below the channel pore, and identifies specific residues facing this cavity that interact and stabilize the ivabradine molecule. This study provides an interpretation of known properties of f/HCN4 channel block by ivabradine such as the "open channel block", the current-dependence of block and the property of "trapping" of drug molecules in the closed configuration.
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