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Keeping the rhythm: hERG and beyond in cardiovascular safety pharmacology
1Evotec AG, Discovery Alliances, Schnackenburgallee 114, Hamburg, Germany. clemens.moeller@evotec.com
Insights
The hERG channel is crucial in drug discovery due to its link to cardiac arrhythmias like TdP. Understanding hERG data interpretation is vital for safety, though not all channel blockers cause TdP.
Area of Science:
- Pharmacology
- Cardiology
- Drug Discovery
Background:
- The human ether-á-go-go-related gene (hERG) channel is implicated in life-threatening cardiac arrhythmias.
- Blockade of the hERG channel can prolong the QT interval, increasing the risk of torsades de pointes (TdP).
- hERG channel liability is a significant concern throughout drug discovery projects.
Purpose of the Study:
- To review TdP, cardiac action potentials, and involved ion channels.
- To clarify the relevance and interpretation of in vitro hERG channel data in drug discovery.
- To discuss novel cardiac safety testing methods beyond hERG screening.
Main Methods:
- Review of existing literature on hERG channel function, TdP, and drug safety.
- Analysis of the correlation between hERG blockade and TdP occurrence.
- Discussion of regulatory aspects and good laboratory practice for hERG testing.
Main Results:
- hERG channel blockade is a key factor in TdP risk assessment during drug development.
- Misinterpretation of hERG data can occur, as some drugs block hERG without causing TdP, and vice versa.
- The withdrawal of clobutinol highlights the continued importance of hERG channel safety.
Conclusions:
- Accurate interpretation of hERG data is essential for mitigating cardiac risks in drug discovery.
- Beyond in vitro hERG screening, advanced cardiac safety assessment methods are needed.
- This review provides a comprehensive guide to hERG channel relevance in pharmaceutical development.
Abstract:
Following its involvement in life-threatening cardiac arrhythmias, the catchword 'hERG' has become infamous in the drug discovery community. The blockade of the ion channel coded by the human ether-á-go-go-related gene (hERG) has been correlated to a prolongation of the QT interval in the ECG, which again is correlated to a potential risk of a life-threatening polymorphic ventricular tachycardia - torsades de pointes (TdP). Therefore, in vitro investigations for blockade of this ion channel have become a standard, starting early in most drug discovery projects and often accompanying the whole project; at some stage, scientists in many medicinal chemistry programs have to deal with hERG channel liabilities. Data for the compound effects on hERG channel activity are generally part of the safety pharmacology risk assessment in regulatory submissions and, at this stage, are ideally conducted in compliance with good laboratory practice. With the withdrawal of clobutinol from the market, owing to its perceived risk of introducing TdP, the importance of the hERG channel has very recently been reconfirmed. Despite being of such importance for drug discovery, the relevance and impact of hERG data are sometimes misinterpreted, as there are drugs that block the hERG-coded ion channel but do not cause TdP, and drugs that cause TdP but do not block the hERG channel. This review aims to provide an overview of TdP, including the cardiac action potential and the ion channels involved in it, as well as on the relevance and interpretation of in vitro hERG channel data and their impact for drug discovery projects. Finally, novel cardiac safety test systems beyond in vitro hERG channel screening are discussed.
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