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Published on: November 11, 2022
Kv1.5 blockers preferentially inhibit TASK-1 channels: TASK-1 as a target against atrial fibrillation and obstructive
Aytug K Kiper1, Susanne Rinné, Caroline Rolfes
1Institute for Physiology and Pathophysiology, Vegetative Physiology, Philipps-University of Marburg, Deutschhausstraße 2, Marburg, 35037, Germany.
Insights
Known Kv1.5 channel blockers, used for atrial fibrillation and sleep apnea, are also potent TASK-1 blockers. These drugs may work by targeting TASK-1 channels, suggesting it
Area of Science:
- Cardiovascular Pharmacology
- Sleep Medicine
- Ion Channel Research
Background:
- Atrial fibrillation and obstructive sleep apnea cause significant health issues.
- Kv1.5 channels are promising drug targets for these conditions.
- TASK-1 channels are expressed in the atrium and hypoglossal nucleus.
Purpose of the Study:
- To investigate if known Kv1.5 channel blockers modulate TASK-1 channels.
- To determine the efficacy of Kv1.5 blockers on TASK-1.
- To explore the molecular basis for any observed interactions.
Main Methods:
- Two-electrode voltage clamp (TEVC) recordings in Xenopus oocytes.
- Testing various Kv1.5 blockers with different chemical structures.
- In silico modeling to analyze drug binding sites.
Main Results:
- All tested Kv1.5 blockers were more effective on TASK-1 channels than Kv1.5 channels.
- IC50 values for AVE0118 and AVE1231 were 10- and 43-fold lower on TASK-1.
- In silico models revealed unexpected structural similarities in drug binding sites.
Conclusions:
- Kv1.5 blockers are potent TASK-1 blockers.
- TASK-1 channel blockade may contribute to the clinical efficacy of these drugs.
- TASK-1 is a potential unrecognized molecular target for atrial fibrillation and sleep apnea therapies.
Abstract:
Atrial fibrillation and obstructive sleep apnea are responsible for significant morbidity and mortality in the industrialized world. There is a high medical need for novel drugs against both diseases, and here, Kv1.5 channels have emerged as promising drug targets. In humans, TASK-1 has an atrium-specific expression and TASK-1 is also abundantly expressed in the hypoglossal motor nucleus. We asked whether known Kv1.5 channel blockers, effective against atrial fibrillation and/or obstructive sleep apnea, modulate TASK-1 channels. Therefore, we tested Kv1.5 blockers with different chemical structures for their TASK-1 affinity, utilizing two-electrode voltage clamp (TEVC) recordings in Xenopus oocytes. Despite the low structural conservation of Kv1.5 and TASK-1 channels, we found all Kv1.5 blockers analyzed to be even more effective on TASK-1 than on Kv1.5. For instance, the half-maximal inhibitory concentration (IC50) values of AVE0118 and AVE1231 (A293) were 10- and 43-fold lower on TASK-1. Also for MSD-D, ICAGEN-4, S20951 (A1899), and S9947, the IC50 values were 1.4- to 70-fold lower than for Kv1.5. To describe this phenomenon on a molecular level, we used in silico models and identified unexpected structural similarities between the two drug binding sites. Kv1.5 blockers, like AVE0118 and AVE1231, which are promising drugs against atrial fibrillation or obstructive sleep apnea, are in fact potent TASK-1 blockers. Accordingly, block of TASK-1 channels by these compounds might contribute to the clinical effectiveness of these drugs. The higher affinity of these blockers for TASK-1 channels suggests that TASK-1 might be an unrecognized molecular target of Kv1.5 blockers effective in atrial fibrillation or obstructive sleep apnea.
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