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Published on: March 12, 2013
Molecular determinants of dofetilide block of HERG K+ channels
E Ficker1, W Jarolimek, J Kiehn
1Rammelkamp Center for Education and Research, MetroHealth Campus, Case Western Reserve University, School of Medicine, Cleveland, Ohio 44109-1998, USA. eficker@research.mhmc.org
Insights
Researchers identified key sites in the human ether-a-go-go-related gene (HERG) potassium channel responsible for dofetilide binding. These findings are crucial for developing safer antiarrhythmic drugs targeting cardiac IKr channels.
Area of Science:
- Cardiovascular Pharmacology
- Molecular Biology
- Ion Channel Physiology
Background:
- The human ether-a-go-go-related gene (HERG) encodes a potassium channel (IKr) vital for cardiac repolarization.
- HERG channels are targeted by Class III antiarrhythmic drugs like dofetilide.
- Significant differences in dofetilide sensitivity exist between HERG and bovine (BEAG) channels.
Purpose of the Study:
- To pinpoint the molecular determinants of dofetilide block in HERG channels.
- To understand the structural basis for differential drug sensitivity between HERG and BEAG channels.
Main Methods:
- Engineering HERG-BEAG chimeras to map drug-binding domains.
- Site-directed mutagenesis to identify specific amino acid residues involved in dofetilide interaction.
- Heterologous expression in Xenopus oocytes for functional and binding assays.
Main Results:
- Transplantation of the BEAG S5-S6 linker into HERG abolished high-affinity dofetilide block.
- A single point mutation (HERG S620T) in the S5-S6 linker eliminated dofetilide block and impaired C-type inactivation.
- Reverse mutation in BEAG (T432S) increased dofetilide affinity but did not restore C-type inactivation.
Conclusions:
- The S5-S6 linker region of HERG channels contains critical determinants for dofetilide binding.
- Dofetilide binding affinity is closely linked to the channel's C-type inactivation process.
- HERG residue 620 (Serine) may directly participate in dofetilide interaction, but intact inactivation is essential for high-affinity binding.
Abstract:
The human ether-a-go-go-related gene (HERG) encodes a K+ channel with biophysical properties nearly identical to the rapid component of the cardiac delayed rectifier K+ current (IKr). HERG/IKr channels are a prime target for the pharmacological management of arrhythmias and are selectively blocked by class III antiarrhythmic methanesulfonanilide drugs, such as dofetilide, E4031, and MK-499, at submicromolar concentrations. By contrast, the closely related bovine ether-a-go-go channel (BEAG) is 100-fold less sensitive to dofetilide. To identify the molecular determinants for dofetilide block, we first engineered chimeras between HERG and BEAG and then used site-directed mutagenesis to localize single amino acid residues responsible for block. Using constructs heterologously expressed in Xenopus oocytes, we found that transplantation of the S5-S6 linker from BEAG into HERG removed high-affinity block by dofetilide. A point mutation in the S5-S6 linker region, HERG S620T, abolished high-affinity block and interfered with C-type inactivation. Thus, our results indicate that important determinants of dofetilide binding are localized to the pore region of HERG. Since the loss of high-affinity drug binding was always correlated with a loss of C-type inactivation, it is possible that the changes observed in drug binding are due to indirect allosteric modifications in the structure of the channel protein and not to the direct interaction of dofetilide with the respective mutated site chains. However, the chimeric approach was not able to identify domains outside the S5-S6 linker region of the HERG channel as putative candidates involved in drug binding. Moreover, the reverse mutation BEAG T432S increased the affinity of BEAG K+ channels for dofetilide, whereas C-type inactivation could not be recovered. Thus, the serine in position HERG 620 may participate directly in dofetilide binding; however, an intact C-type inactivation process seems to be crucial for high-affinity drug binding.
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