InteracTor: Feature engineering and explainable AI for profiling protein structure-interaction-function relationships
Jose Cleydson F. Silva, Layla Schuster, Nick Sexson, Melissa Erdem, Ryan Hulke, Matias Kirst, Marcio F. R. Resende, Raquel Dias, Fei Guo, Fei Guo, Fei Guo

TL;DR
InteracTor is a new toolkit that uses 3D protein structure features and explainable AI to better understand protein function and improve classification accuracy.
Contribution
Introduces InteracTor, a novel toolkit that extracts 3D interaction features and integrates XAI for interpretable protein classification.
Findings
Tertiary structure features outperform primary/secondary structure features in protein family classification.
InteracTor provides interpretable insights into how structural interactions influence protein behavior.
The toolkit is adaptable for drug discovery and protein engineering applications.
Abstract
Characterizing protein families’ structural and functional diversity is essential for understanding their biological roles. Traditional analyses often focus on primary and secondary structures, which may not fully capture complex protein interactions. Here we introduce InteracTor, a novel toolkit that extracts multimodal features from protein three-dimensional (3D) structures, including interatomic interactions like hydrogen bonds, van der Waals forces, and hydrophobic contacts. By integrating eXplainable Artificial Intelligence (XAI) techniques, we quantified the importance of the extracted features in the classification of protein structural and functional families. InteracTor’s interpref features enable mechanistic insights into the determinants of protein structure, function, and dynamics, offering a transparent means to assess their predictive power within machine learning models.…
Genes, proteins, chemicals, diseases, species, mutations and cell lines named across the full text — each resolved to its canonical identifier and authoritative record.
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Taxonomy
TopicsComputational Drug Discovery Methods · Protein Structure and Dynamics · Bioinformatics and Genomic Networks
