Molecular Image-Based Prediction Models of Nuclear Receptor Agonists and Antagonists Using the DeepSnap-Deep Learning

Yasunari Matsuzaka1, Yoshihiro Uesawa1

  • 1Department of Medical Molecular Informatics, Meiji Pharmaceutical University, Tokyo 204-8588, Japan.

Insights

Deep learning models accurately predict nuclear receptor (NR) ligands, aiding toxicity assessment. This computational approach accelerates the identification of chemicals interacting with endocrine pathways, reducing experimental costs.

Area of Science:

  • Toxicology
  • Computational Chemistry
  • Machine Learning

Background:

  • Nuclear receptors (NRs) regulate endocrine signaling; their dysregulation by chemical compounds can lead to adverse health effects.
  • Identifying NR ligands is vital for understanding toxicity pathways and drug development.
  • Experimental ligand identification is costly and time-consuming, necessitating in silico methods.

Purpose of the Study:

  • To develop and validate a deep learning (DL) model for predicting NR ligands.
  • To assess the efficacy of the DeepSnap-DL method for NR ligand prediction.

Main Methods:

  • Utilized the DeepSnap-DL method, a molecular image-based deep learning approach.
  • Constructed prediction models for 35 NR agonist and antagonist allosteric modulators.
  • Applied the models to chemicals from the Tox21 10K library.

Main Results:

  • Demonstrated high performance of DeepSnap-DL in constructing NR ligand prediction models.
  • Successfully predicted modulators for 35 NR types.

Conclusions:

  • DeepSnap-DL is a high-performing computational tool for predicting NR ligands.
  • Findings support the use of machine learning in identifying environmental chemicals that interact with NR signaling pathways.
  • This approach aids in understanding toxicity mechanisms and developing safer chemicals.

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