Distilling and Adapting: A Topology-Aware Framework for Zero-Shot Interaction Prediction in Multiplex Biological Networks
Alana Deng, Sugitha Janarthanan, Yan Sun, Zihao Jing, Pingzhao Hu
摘要
Multiplex Biological Networks (MBNs), which represent multiple interaction types between entities, are crucial for understanding complex biological systems. Yet, existing methods often inadequately model multiplexity, struggle to integrate structural and sequence information, and face difficulties in zero-shot prediction for unseen entities with no prior neighbourhood information. To address these limitations, we propose a novel framework for zero-shot interaction prediction in MBNs by leveraging context-aware representation learning and knowledge distillation. Our approach leverages domain-specific foundation models to generate enriched embeddings, introduces a topology-aware graph tokenizer to capture multiplexity and higher-order connectivity, and employs contrastive learning to align embeddings across modalities. A teacher–student distillation strategy further enables robust zero-shot generalization. Experimental results demonstrate that our framework outperforms state-of-the-art methods in interaction prediction for MBNs, providing a powerful tool for exploring various biological interactions and advancing personalized therapeutics.
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- Unsupervised Attributed Multiplex Network EmbeddingChanyoung Park, Donghyun Kim, Jiawei Han, Hwanjo YuAAAI 2020 · 被引用 333 次
- How to Find Your Friendly Neighborhood: Graph Attention Design with Self-SupervisionDongkwan Kim, Alice OhICLR 2021 · 被引用 309 次
- HDMI: High-order Deep Multiplex InfomaxBaoyu Jing, Chanyoung Park, Hanghang TongWWW 2021 · 被引用 199 次
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