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CENsible: Interpretable Insights into Small-Molecule Binding with Context Explanation Networks.
Roshni Bhatt1,2, David Ryan Koes1, Jacob D Durrant2
1Department of Computational and Systems Biology, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, United States.
We developed CENsible, an interpretable deep learning method to predict small-molecule binding affinity. This approach helps identify key factors influencing binding, aiding drug discovery and lead optimization.
Area of Science:
- Computational chemistry
- Structural biology
- Machine learning in drug discovery
Background:
- Accurate prediction of small-molecule binding affinity is crucial for drug discovery.
- Existing machine learning models often lack interpretability, hindering optimization efforts.
Purpose of the Study:
- To present CENsible, a novel and interpretable deep learning approach for assessing protein/ligand binding affinity.
- To demonstrate the ability of CENsible to distinguish active from inactive compounds.
Main Methods:
- Utilizing context explanation networks (CENs), a deep convolutional neural network architecture.
- Predicting contributions of precalculated terms to the overall binding affinity for protein/ligand complexes.
Main Results:
- CENsible effectively distinguishes active from inactive compounds across various systems.
- The model provides interpretability by identifying the contribution of each term to the final prediction.
Conclusions:
- CENsible offers an interpretable alternative to existing machine learning scoring functions.
- The interpretability of CENsible has direct implications for guiding lead optimization in drug development.
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