TxAgent: An AI Agent for Therapeutic Reasoning Across a Universe of Tools
Shanghua Gao, Richard Zhu, Zhenglun Kong, Ayush Noori, Xiaorui Su,, Curtis Ginder, Theodoros Tsiligkaridis, Marinka Zitnik

TL;DR
TxAgent is an AI system that uses multi-step reasoning and real-time biomedical knowledge retrieval from a large toolbox of tools to generate personalized, accurate therapeutic recommendations, outperforming existing models in multiple benchmarks.
Contribution
The paper introduces TxAgent, a novel AI agent that integrates multi-source biomedical knowledge, tool-based reasoning, and personalized treatment strategies for therapeutic decision-making.
Findings
Achieves 92.1% accuracy in drug reasoning tasks
Outperforms GPT-4o and DeepSeek-R1 in benchmarks
Generalizes across drug name variants and descriptions
Abstract
Precision therapeutics require multimodal adaptive models that generate personalized treatment recommendations. We introduce TxAgent, an AI agent that leverages multi-step reasoning and real-time biomedical knowledge retrieval across a toolbox of 211 tools to analyze drug interactions, contraindications, and patient-specific treatment strategies. TxAgent evaluates how drugs interact at molecular, pharmacokinetic, and clinical levels, identifies contraindications based on patient comorbidities and concurrent medications, and tailors treatment strategies to individual patient characteristics. It retrieves and synthesizes evidence from multiple biomedical sources, assesses interactions between drugs and patient conditions, and refines treatment recommendations through iterative reasoning. It selects tools based on task objectives and executes structured function calls to solve therapeutic…
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Code & Models
Videos
Taxonomy
TopicsMachine Learning in Healthcare · Biomedical Text Mining and Ontologies · Genomics and Rare Diseases
MethodsALIGN
