PRISM: protocol refinement through intelligent simulation modeling

Abstract

Automating experimental protocol design and execution remains as a fundamental bottleneck in realizing self-driving laboratories. We introduce PRISM (Protocol Refinement through Intelligent Simulation Modeling), a framework that automates the design, validation, and execution of experimental protocols on a laboratory platform composed of off-the-shelf robotic instruments. PRISM uses a set of language-model-based agents that work together to generate and refine experimental steps. The process begins with automatically gathering relevant procedures from web-based sources describing experimental workflows. These are converted into structured experimental steps (e.g., liquid handling steps, deck layout and other related operations) through a planning, critique, and validation loop. The finalized steps are translated into the Argonne MADSci protocol format, which provides a unified interface for coordinating multiple robotic instruments (Opentrons OT-2 liquid handler, PF400 arm, Azenta plate sealer and peeler) without requiring human intervention between steps. To evaluate protocol-generation performance, we benchmarked both single reasoning models and multi-agent workflow across constrained and open-ended prompting paradigms. The resulting protocols were validated in a digital-twin environment built in NVIDIA Omniverse to detect physical or sequencing errors before execution. Using Luna qPCR amplification and Cell Painting as case studies, we demonstrate PRISM as a practical end-to-end workflow that bridges language-based protocol generation, simulation-based validation, and automated robotic execution.

Graphical abstract: PRISM: protocol refinement through intelligent simulation modeling

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Article information

Article type
Paper
Submitted
06 Jan 2026
Accepted
28 Apr 2026
First published
20 May 2026
This article is Open Access
Creative Commons BY-NC license

Digital Discovery, 2026, Advance Article

PRISM: protocol refinement through intelligent simulation modeling

B. Hsu, P. V. Setty, R. M. Butler, R. Lewis, C. Stone, R. Weinberg, T. Brettin, R. Stevens, I. Foster and A. Ramanathan, Digital Discovery, 2026, Advance Article , DOI: 10.1039/D6DD00004E

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