cs.AI updates on arXiv.org 10月07日
冷启动药物靶标交互预测新框架ColdDTI
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本文提出一种基于蛋白质多级结构的冷启动药物靶标交互预测新框架ColdDTI,通过层级注意力机制挖掘药物和蛋白质多级结构的交互,并在多个数据集上实现优于现有方法的预测效果。

arXiv:2510.04126v1 Announce Type: cross Abstract: Cold-start drug-target interaction (DTI) prediction focuses on interaction between novel drugs and proteins. Previous methods typically learn transferable interaction patterns between structures of drug and proteins to tackle it. However, insight from proteomics suggest that protein have multi-level structures and they all influence the DTI. Existing works usually represent protein with only primary structures, limiting their ability to capture interactions involving higher-level structures. Inspired by this insight, we propose ColdDTI, a framework attending on protein multi-level structure for cold-start DTI prediction. We employ hierarchical attention mechanism to mine interaction between multi-level protein structures (from primary to quaternary) and drug structures at both local and global granularities. Then, we leverage mined interactions to fuse structure representations of different levels for final prediction. Our design captures biologically transferable priors, avoiding the risk of overfitting caused by excessive reliance on representation learning. Experiments on benchmark datasets demonstrate that ColdDTI consistently outperforms previous methods in cold-start settings.

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药物靶标交互预测 多级结构 ColdDTI 注意力机制 冷启动
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