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Updated: Sep 2, 2026

Protein Target Prediction and Validation of Small Molecule Compound
Published on: February 23, 2024
PCIM-DTA: Pairwise Conditional Interaction Modeling for Drug-Target Affinity Prediction under Cold-Start Scenarios
Ziyou Zhou1,2, Min Chen1, Wenjian Zhou1
1School of Computer Science and Engineering, Hunan Institute of Technology, Hengyang 421002, Hunan, China.
Motivation:
Cold-start drug-target affinity prediction remains challenging because static interaction mechanisms cannot adapt to individual drug-target pairs.
Results:
We propose PCIM-DTA, which constructs pair-level interaction representations and derives a pair-specific condition vector from global drug and target features. The condition vector modulates attention, pair-token features, distribution-aware recalibration, and regression parameters, while graph message passing captures higher-order dependencies. Experiments on Davis and BindingDB-Kd show that PCIM-DTA achieves competitive or superior performance under Warm, Cold-drug, Cold-target, Cold-both, and Scaffold-drug settings. Ablation studies support the contribution of each component.
Availability And Implementation:
The datasets used in this study are publicly available, including the Davis and BindingDB-Kd datasets. The implementation code of PCIM-DTA is publicly available at https://github.com/1322469934/PCIM-DTA.
Supplementary Information:
Supplementary data are available at Bioinformatics online.
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