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Updated: Jan 17, 2026

Diagonal Method to Measure Synergy Among Any Number of Drugs
Published on: June 21, 2018
DGSS: A Dynamic Interaction Graph Neural Network with Specific Substructure Awareness for Drug Synergy Prediction
Jingyang Ge1, Peifu Han2, Ruiqi Xu3
1Qingdao Institute of Software, College of Computer Science and Technology, Shandong Key Laboratory of Intelligent Oil & Gas Industrial Software, China University of Petroleum (East China), Qingdao 266580, China.
None:
Combination therapy presents a transformative approach to treating complex diseases such as cancer by mitigating toxicity and resistance challenges inherent to monotherapy. A critical gap in current computational methods, however, lies in their inability to model cell-specific drug responses and dynamic drug-cell interactions, which are key factors in accurately predicting synergistic drug pairs. To address this, we propose DGSS, a novel Dynamic Interaction Graph Neural Network with Cell-Specific Drug Substructure Awareness, designed to explicitly capture two pivotal aspects: (1) drug substructures that drive efficacy in specific cellular environments, and (2) dynamic, context-dependent interactions between drugs and cell lines. Our framework introduces two technical innovations: a hierarchical attention mechanism that identifies cell-line-specific drug substructures by correlating molecular subgraphs with genomic features, and a dynamic graph network that models evolving cell-line states during drug exposure. Extensive experiments under three data partitioning strategies across 12 datasets demonstrate DGSS's robustness, consistently outperforming all state-of-the-art baseline models. On the Loewe Synergy dataset, the model achieved AUROC and AUPRC of 96.0% and 85.5%, respectively, and exhibited good stability. By bridging molecular substructure dynamics with cellular context, DGSS advances precision in synergy prediction, offering a data-driven framework to optimize combination therapies in personalized oncology.
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