deepFPlearn1: enhancing toxicity prediction across the chemical universe using graph neural networks

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Abstract

Sophisticated approaches for the in silico prediction of toxicity are required to support the risk assessment of chemicals. The number of chemicals on the global chemical market and the speed of chemical innovation stand in massive contrast to the capacity for regularizing chemical use. We recently proved our ready-to-use application deepFPlearn as a suitable approach for this task. Here, we present its extension deepFPlearnþ incorporating (i) a graph neural network to feed our AI with a more sophisticated molecular structure representation and (ii) alternative train-test splitting strategies that involve scaffold structures and the molecular weights of chemicals. We show that the GNNs outperform the previous model substantially and that our models can generalize on unseen data even with a more robust and challenging test set. Therefore, we highly recommend the application of deepFPlearnþ on the chemical inventory to prioritize chemicals for experimental testing or any chemical subset of interest in monitoring studies.

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Soulios, K., Scheibe, P., Bernt, M., Hackermüller, J., & Schor, J. (2023). deepFPlearn1: enhancing toxicity prediction across the chemical universe using graph neural networks. Bioinformatics, 39(12). https://doi.org/10.1093/bioinformatics/btad713

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