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Updated: Jun 2, 2026

Solubility of Hydrophobic Compounds in Aqueous Solution Using Combinations of Self-assembling Peptide and Amino Acid
Published on: September 20, 2017
Deciphering Molecular and Solvent Effects on Aqueous and Organic Solubility through Interpretable Machine Learning
Boinapalli Gopichand1, Gopika S Nair1, Bipin G Nair1
1Amrita School of Biotechnology, Amrita Vishwa Vidyapeetham, Amrithapuri, Kerala 690525, India.
Predicting chemical compound solubility is complex. This study developed an interpretable machine learning framework to accurately forecast solubility in aqueous and organic solvents, improving drug discovery efficiency.
Area of Science:
- Computational Chemistry
- Machine Learning
- Drug Discovery
Background:
- Solubility prediction is crucial for drug development but challenging due to complex structure-property relationships.
- Accurate solubility data across diverse media (aqueous and organic) is essential for compound screening and optimization.
Purpose of the Study:
- To develop an interpretable machine learning (ML) framework for predicting drug-like compound solubility.
- To achieve accurate solubility predictions in both aqueous and organic solvents.
- To gain mechanistic insights into the factors governing solubility.
Main Methods:
- Utilized large-scale curated datasets (AqSolDB, AqSolDBc, BigSolDB, BigSolDB 2.0).
- Trained and validated CatBoost ML models using repeated 5-fold cross-validation with appropriate data splitting strategies.
- Performed feature selection, hyperparameter optimization, and SHAP analysis for interpretability.
Main Results:
- Optimized ML models showed significant performance improvements over baseline.
- Hyperparameter optimization was key to enhancing model accuracy.
- SHAP analysis revealed key drivers: polarity/H-bonding for aqueous, solvent/temperature/topology for organic solubility.
Conclusions:
- The developed ML framework provides robust and transferable solubility predictions.
- The approach is applicable to real-world solubility prediction tasks in drug discovery.
- Understanding structure-property relationships enhances predictive model reliability.
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