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Published on: March 24, 2023
Computational determination of hERG-related cardiotoxicity of drug candidates
Hyang-Mi Lee1, Myeong-Sang Yu1, Sayada Reemsha Kazmi1
1School of integrative engineering, Chung-Ang University, Seoul, Republic of Korea.
Insights
A new computational model accurately predicts drug-induced hERG cardiotoxicity, aiding drug discovery by identifying compounds that block the human ether-a-go-go-related gene (hERG) potassium channel and cause long QT syndrome (LQTS).
Area of Science:
- Computational chemistry
- Cardiovascular pharmacology
- Drug discovery
Background:
- Drug candidates can block the human ether-a-go-go-related gene (hERG) potassium channel.
- This blockage leads to life-threatening long QT syndrome (LQTS), a severe cardiac side effect.
- Predicting hERG-related cardiotoxicity early can improve drug safety and facilitate discovery.
Purpose of the Study:
- To develop a reliable computational model for predicting drug-induced hERG cardiotoxicity.
- To create a robust dataset for training and validating the prediction model.
- To provide a tool for virtual screening of drug candidates to mitigate cardiac risks.
Main Methods:
- Generated a dataset of 2130 compounds to assess hERG-related cardiotoxicity.
- Developed a neural network model for predicting cardiotoxicity based on the dataset.
- Validated the model using ten drug compounds tested in guinea pigs.
Main Results:
- The neural network model achieved an AUC of 0.764, 90.1% accuracy, and 0.967 specificity in cross-validation.
- External validation showed 80.0% accuracy, 0.655 MCC, and 1.000 specificity.
- Performance metrics surpassed existing hERG-toxicity prediction models.
Conclusions:
- The developed neural network model accurately predicts hERG-related cardiotoxicity.
- This model can be utilized for virtual high-throughput screening to identify safer drug candidates.
- A web-tool for this prediction model is publicly available.
Background:
Drug candidates often cause an unwanted blockage of the potassium ion channel of the human ether-a-go-go-related gene (hERG). The blockage leads to long QT syndrome (LQTS), which is a severe life-threatening cardiac side effect. Therefore, a virtual screening method to predict drug-induced hERG-related cardiotoxicity could facilitate drug discovery by filtering out toxic drug candidates.
Result:
In this study, we generated a reliable hERG-related cardiotoxicity dataset composed of 2130 compounds, which were carried out under constant conditions. Based on our dataset, we developed a computational hERG-related cardiotoxicity prediction model. The neural network model achieved an area under the receiver operating characteristic curve (AUC) of 0.764, with an accuracy of 90.1%, a Matthews correlation coefficient (MCC) of 0.368, a sensitivity of 0.321, and a specificity of 0.967, when ten-fold cross-validation was performed. The model was further evaluated using ten drug compounds tested on guinea pigs and showed an accuracy of 80.0%, an MCC of 0.655, a sensitivity of 0.600, and a specificity of 1.000, which were better than the performances of existing hERG-toxicity prediction models.
Conclusion:
The neural network model can predict hERG-related cardiotoxicity of chemical compounds with a high accuracy. Therefore, the model can be applied to virtual high-throughput screening for drug candidates that do not cause cardiotoxicity. The prediction tool is available as a web-tool at http://ssbio.cau.ac.kr/CardPred .
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