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Structural modeling of hERG channel-drug interactions using Rosetta
Aiyana M Emigh Cortez1,2, Kevin R DeMarco1,2, Kazuharu Furutani2,3
1Biophysics Graduate Group, University of California, Davis, Davis, CA, United States.
Insights
Structural models reveal how drug interactions with the human ether-a-go-go-related gene (hERG) channel
Area of Science:
- Cardiovascular Pharmacology
- Molecular Biology
- Biophysics
Background:
- The human ether-a-go-go-related gene (hERG) channel is crucial for cardiac electrical activity but is also a common drug target.
- hERG channel dysfunction, due to genetic mutations or drug block, can lead to dangerous arrhythmias like long QT syndrome.
- The arrhythmogenic potential of hERG blockers varies, possibly due to differential drug binding to distinct channel states.
Purpose of the Study:
- To investigate the atomistic mechanisms underlying state-dependent drug interactions with the hERG channel.
- To differentiate between safe and harmful hERG-blocking drugs based on their binding affinities.
- To explain how certain drugs can facilitate hERG channel function through interactions with open-state pockets.
Main Methods:
- Utilized Rosetta electron density refinement and homology modeling to construct structural models of open and closed hERG channel states.
- Incorporated cryo-electron microscopy structures of hERG and EAG1 channels for model building.
- Employed molecular docking to simulate interactions between various drug forms (charged/neutral) and hERG channel models.
Main Results:
- Developed structural models for wild-type and mutant hERG channels in open and closed states.
- Docking studies revealed state-dependent drug-channel interactions at an atomistic level.
- Identified specific drug interactions with open-state hydrophobic pockets that correlate with hERG channel facilitation.
Conclusions:
- Drug interactions with discrete hERG channel conformational states are critical for determining arrhythmogenicity.
- Atomistic insights from structural modeling and docking can differentiate safe from harmful hERG blockers.
- Understanding these state-dependent interactions may guide the development of safer cardiac drugs.
Abstract:
The human ether-a-go-go-related gene (hERG) not only encodes a potassium-selective voltage-gated ion channel essential for normal electrical activity in the heart but is also a major drug anti-target. Genetic hERG mutations and blockage of the channel pore by drugs can cause long QT syndrome, which predisposes individuals to potentially deadly arrhythmias. However, not all hERG-blocking drugs are proarrhythmic, and their differential affinities to discrete channel conformational states have been suggested to contribute to arrhythmogenicity. We used Rosetta electron density refinement and homology modeling to build structural models of open-state hERG channel wild-type and mutant variants (Y652A, F656A, and Y652A/F656 A) and a closed-state wild-type channel based on cryo-electron microscopy structures of hERG and EAG1 channels. These models were used as protein targets for molecular docking of charged and neutral forms of amiodarone, nifekalant, dofetilide, d/l-sotalol, flecainide, and moxifloxacin. We selected these drugs based on their different arrhythmogenic potentials and abilities to facilitate hERG current. Our docking studies and clustering provided atomistic structural insights into state-dependent drug-channel interactions that play a key role in differentiating safe and harmful hERG blockers and can explain hERG channel facilitation through drug interactions with its open-state hydrophobic pockets.
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