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Published on: November 11, 2022
hERG potassium channels and the structural basis of drug-induced arrhythmias
1Department of Cell Physiology and Pharmacology, University of Leicester, Medical Sciences Building, University Road, Leicester, LE1 9HN, United Kingdom. jm109@le.ac.uk
Insights
Blocking hERG channels can cause dangerous heart arrhythmias. Understanding the hERG channel structure and drug interactions is key to developing safer medications and preventing cardiac events.
Area of Science:
- Cardiovascular Pharmacology
- Molecular Cardiology
- Drug Safety
Background:
- hERG potassium channels are crucial for normal heart electrical activity.
- Blockage of hERG channels by drugs can lead to long QT syndrome, increasing the risk of fatal cardiac arrhythmias.
- Historically, hERG channel block has been a major cause of drug candidate failure in preclinical trials.
Purpose of the Study:
- To explore the structural basis of hERG channel block.
- To understand why hERG channels are uniquely susceptible to drug interactions.
- To inform the development of safer drugs with reduced cardiotoxic potential.
Main Methods:
- Utilized crystal structures of potassium channels to study hERG channel block.
- Employed site-directed mutagenesis to identify amino acids in the drug-binding site.
- Investigated the influence of channel gating on drug binding.
Main Results:
- Identified the inner cavity as the primary drug-binding site on hERG channels.
- Characterized specific amino acids involved in drug interactions.
- Gained insights into how channel gating mechanisms contribute to hERG channel drug sensitivity.
Conclusions:
- Structural knowledge of the hERG drug-binding site is essential for rational drug design.
- Understanding hERG channel gating provides reasons for its heightened susceptibility to block.
- This research facilitates the development of novel therapeutics that avoid hERG channel-mediated cardiotoxicity.
Abstract:
hERG potassium channels have a critical role in the normal electrical activity of the heart. The block of hERG channels can cause the drug-induced form of long QT syndrome, a cardiac disorder that carries an increased risk of cardiac arrhythmias and sudden death. hERG channels are extraordinarily sensitive to block by large numbers of structurally diverse drugs. In previous years, the risk of compounds causing this cardiotoxic side effect has been a common reason for the failure of compounds in preclinical safety trials. Pharmaceutical companies have successfully utilized and developed higher throughput techniques for the early detection of compounds that block hERG, and this has helped reduce the number of compounds that fail in the late stages of development. Nevertheless, this screening-based approach is expensive, consumes chemistry resources, and bypasses the problem rather than shedding light on it. Crystal structures of potassium channels have facilitated studies into the structural basis for the gating and block of hERG channels. Most drugs bind within the inner cavity, and the individual amino acids that form the drug binding site have been identified by site-directed mutagenesis approaches. Gating processes have an important influence on the drug-binding site. Recent advances in our understanding of channel activation and inactivation are providing insight into why hERG channels are more susceptible to block than other K (+) channels. Knowledge of the structure of the drug-binding site and precise nature of interactions with drug molecules should assist efforts to develop drugs without the propensity to cause cardiac arrhythmias.
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