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Structural determinants of HERG channel block by clofilium and ibutilide
Matthew Perry1, Marcel J de Groot, Ray Helliwell
1University of Leicester, Department of Cell Physiology and Pharmacology, United Kingdom.
Insights
Drug block of human ether-a-go-go related gene (HERG) potassium channels can cause dangerous heart rhythms. This study reveals pore helix residues are crucial components of the HERG drug binding site, influencing drug recovery.
Area of Science:
- Pharmacology
- Molecular Biology
- Cardiology
Background:
- Drug block of human ether-a-go-go related gene (HERG) K(+) channels is linked to acquired long QT syndrome and lethal arrhythmias.
- The drug-binding site within HERG channels involves S6 domain residues (Tyr652, Phe656), but the role of pore helix residues is less understood.
Purpose of the Study:
- To compare the pharmacological properties of ibutilide and clofilium, two related HERG channel blockers.
- To investigate the role of pore helix residues in the drug-binding site and recovery from block.
Main Methods:
- Comparative analysis of ibutilide and clofilium block kinetics.
- Alanine-scanning mutagenesis of S6 domain and pore helix residues in HERG channels.
- Assessment of drug recovery using D540K HERG mutant channels.
Main Results:
- Clofilium exhibits a slower recovery from HERG channel block compared to ibutilide, attributed to drug trapping.
- Mutagenesis identified S624A at the pore helix base as critical for rapid clofilium recovery.
- Binding site residues were similar for both compounds, but pore helix residues influenced recovery rates.
Conclusions:
- Pore helix residues are integral to the HERG drug-binding site.
- These residues play a significant role in modulating recovery from block, particularly for drugs with polar substituents like clofilium and ibutilide.
Abstract:
Block of human ether-a-go-go related gene (HERG) K(+) channels by a variety of medications has been linked to acquired long QT syndrome, a disorder of cardiac repolarization that predisposes to lethal arrhythmias. The drug-binding site is composed of residues that face into the central cavity of the channel. Two aromatic residues located on the S6 domain (Tyr652 and Phe656) are particularly important structural determinants of drug block. The role of pore helix residues (Thr623, Ser624, Val625) is less clear. In this study, we compared the pharmacological properties of two structurally related compounds, ibutilide and clofilium. Both compounds are charged amines with a single phenyl ring. Clofilium, a chlorobenzene derivative, is a potent blocker of HERG channels, but has a remarkably slower time course for recovery from block than ibutilide, a methanesulfonanilide. The difference in the rate of recovery from block can be explained simply by variation in drug trapping. There is little recovery from clofilium block with D540K HERG channels that permit untrapping at hyperpolarized potentials. Alanine-scanning mutagenesis of the S6 domain and a portion of the pore helix revealed that the binding site residues were the same for both compounds. However, S624A, located at the base of the pore helix, was the only HERG mutation that enabled rapid recovery from clofilium block. In summary, the pore helix residues are important components of the HERG drug binding site, and may be particularly important for drugs with polar substituents, such as a halogen (e.g., clofilium) or a methanesulfonamide (e.g., ibutilide).
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