KIMMDY: a biomolecular reaction emulator

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Abstract

Molecular simulations have become indispensable in biological research. Their accuracy continues to improve, but directly modelling biochemical reactions – central to all life processes – remains computationally challenging. Here, we present a biomolecular reaction emulator that models reactions across conformational ensembles using kinetic Monte Carlo. Our method, KIMMDY, is capable of handling dynamic, large-scale systems with successive, competing reactions, even on the second timescale or slower. It leverages graph neural networks for large-scale prediction of reaction rates, while also being capable of using simpler physics-based or heuristic models. We validate our approach against experimental data and showcase its power and versatility through a series of applications, including radical reactions, nucleophilic substitutions, and photodimerization. Example systems span proteins and DNA. KIMMDY aids the understanding of biochemical reaction cascades in complex systems, helps to re-interpret experimental data, and can inspire future wet-lab experiments.

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Hartmann, E., Buhr, J., Riedmiller, K., Ulanov, E., Schüpp, B. N., Kiesewetter, D., … Gräter, F. (2026). KIMMDY: a biomolecular reaction emulator. Nature Communications , 17(1). https://doi.org/10.1038/s41467-026-71955-2

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