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Scientific discovery is pushed by the iterative means of remark, speculation era, experimentation, and knowledge evaluation. Despite current developments in making use of synthetic intelligence to biology, no system has but automated all these levels [1, 2, 3]. Here, we introduce Robin, the primary multi-agent system able to absolutely automating each speculation era and knowledge evaluation for experimental biology. By integrating literature search brokers with knowledge evaluation brokers, Robin can generate hypotheses, suggest experiments, interpret experimental outcomes, and generate up to date hypotheses, attaining a semi-autonomous strategy to scientific discovery. By making use of this technique, we have been in a position to establish promising therapeutic candidates for dry age-related macular degeneration (dAMD), the key explanation for blindness within the developed world [4, 5]. Robin proposed enhancing retinal pigment epithelium phagocytosis as a therapeutic technique, and recognized and confirmed in vitro efficacy for ripasudil and KL001. Ripasudil is a clinically-used Rho kinase (ROCK) inhibitor that has by no means beforehand been proposed for treating dAMD. To elucidate the mechanism of ripasudil-induced upregulation of phagocytosis, Robin then proposed and analyzed a follow-up RNA-seq experiment, which revealed upregulation of ABCA1, a lipid efflux pump and doable novel goal. All hypotheses, experimental instructions, knowledge analyses, and knowledge figures in the principle textual content of this report have been produced by Robin. As the primary AI system to autonomously uncover and validate novel therapeutic candidates inside an iterative lab-in-the-loop framework, Robin establishes a brand new paradigm for AI-driven scientific discovery.
This web page was created programmatically, to learn the article in its unique location you possibly can go to the hyperlink bellow:
https://www.nature.com/articles/s41586-026-10652-y
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