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Updated: Jan 7, 2026

Author Spotlight: A Computational Approach to Decipher Amino Acid Preferences in Multispecific Protein-Protein Interactions
Published on: January 26, 2024
Structure-Aware Heterogeneous Information Fusion Framework for Protein-Ligand Binding Affinity Prediction
Yan Zhu1,2, Chunyu Wang1, Junjie Wang3
1Faculty of Computing, Harbin Institute of Technology, Harbin 150001, China.
Abstract:
Accurate prediction of protein-ligand binding affinities (PLAs) is essential for drug discovery and development. Recent advancements suggest that transforming protein-ligand complexes into heterogeneous graph representations may offer a viable solution. However, existing methods ignore the importance of heterogeneous graph augmentation and the complementary information provided by sequence and protein-ligand complex structure modalities, which are crucial for enhancing generalization and robustness. In this study, we propose a multimodal data fusion approach GIF-PLA (meta-path-based enhanced heterogeneous information fusion framework for protein-ligand binding affinity prediction). Protein-ligand binding complexes are represented as heterogeneous graphs with meta-paths, in parallel with protein sequences and ligand simplified molecular input line entry system (SMILES) strings, which are fed into cascaded deep neural networks, respectively. GIF-PLA effectively captures structure-oriented information, encompassing topological interactions and high-order nonlinear relationships, as well as sequence-oriented information. Finally, a late fusion module is used to integrate multilevel information. Comprehensive evaluations demonstrate that GIF-PLA surpasses state-of-the-art methods, achieving a Pearson's correlation coefficient (Rp) of 0.784 and a root-mean-square error (RMSE) of 1.157 on benchmark data sets. Ablation studies highlight the critical contributions of meta-paths and multimodal fusion. Overall, GIF-PLA shows significant promise in predicting protein-ligand interactions with enhanced reliability.
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