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arXiv AI

Automating Biomedical Research via LLMs

By Advanced AI EditorJune 6, 2025No Comments2 Mins Read
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[Submitted on 12 Dec 2024 (v1), last revised 5 Jun 2025 (this version, v4)]

View a PDF of the paper titled From Intention To Implementation: Automating Biomedical Research via LLMs, by Yi Luo and 6 other authors

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Abstract:Conventional biomedical research is increasingly labor-intensive due to the exponential growth of scientific literature and datasets. Artificial intelligence (AI), particularly Large Language Models (LLMs), has the potential to revolutionize this process by automating various steps. Still, significant challenges remain, including the need for multidisciplinary expertise, logicality of experimental design, and performance measurements. This paper introduces BioResearcher, the first end-to-end automated system designed to streamline the entire biomedical research process involving dry lab experiments. BioResearcher employs a modular multi-agent architecture, integrating specialized agents for search, literature processing, experimental design, and programming. By decomposing complex tasks into logically related sub-tasks and utilizing a hierarchical learning approach, BioResearcher effectively addresses the challenges of multidisciplinary requirements and logical complexity. Furthermore, BioResearcher incorporates an LLM-based reviewer for in-process quality control and introduces novel evaluation metrics to assess the quality and automation of experimental protocols. BioResearcher successfully achieves an average execution success rate of 63.07% across eight previously unmet research objectives. The generated protocols, on average, outperform typical agent systems by 22.0% on five quality metrics. The system demonstrates significant potential to reduce researchers’ workloads and accelerate biomedical discoveries, paving the way for future innovations in automated research systems.

Submission history

From: Yi Luo [view email]
[v1]
Thu, 12 Dec 2024 16:35:05 UTC (4,249 KB)
[v2]
Sun, 22 Dec 2024 05:34:46 UTC (4,554 KB)
[v3]
Wed, 4 Jun 2025 06:48:06 UTC (1 KB) (withdrawn)
[v4]
Thu, 5 Jun 2025 05:44:18 UTC (2,168 KB)



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