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3DReact: Geometric Deep Learning for Chemical Reactions.
Puck van Gerwen1,2, Ksenia R Briling1, Charlotte Bunne2,3
1Laboratory for Computational Molecular Design, Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland.
We developed 3DReact, a geometric deep learning model for predicting molecular reaction properties using 3D structures. It shows strong performance across various datasets and tasks, offering a flexible framework for chemical reaction prediction.
Area of Science:
- Computational Chemistry
- Machine Learning
- Chemical Informatics
Background:
- Geometric deep learning models enhance molecular property prediction by integrating molecular symmetries.
- Accurate prediction of chemical reaction properties is crucial for drug discovery and materials science.
Purpose of the Study:
- To introduce 3DReact, a novel geometric deep learning model for predicting chemical reaction properties.
- To evaluate 3DReact's performance on predicting activation barriers using 3D molecular structures.
Main Methods:
- Developed 3DReact, a geometric deep learning model utilizing 3D reactant and product structures.
- Employed invariant and equivariant neural network architectures.
- Tested on GDB7-22-TS, Cyclo-23-TS, and Proparg-21-TS datasets across different atom-mapping regimes.
Main Results:
- The invariant version of 3DReact demonstrated sufficient performance for existing reaction datasets.
- Achieved competitive accuracy in predicting activation barriers.
- Showcased robust performance across diverse datasets, atom-mapping strategies, and prediction tasks (interpolation/extrapolation).
Conclusions:
- 3DReact provides a flexible and effective framework for predicting chemical reaction properties.
- The model successfully leverages 3D structural information and atom-mapping data.
- Demonstrates systematic and strong performance, outperforming existing models in reaction property prediction.
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