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March 14, 2026Nature Methods8 citationsOpen Access

AF2BIND: predicting small-molecule binding sites using the pair representation of AlphaFold2

AGArtem GazizovALAnna LianCGCasper A. Goverde

Key Points

  • The aim is to develop AF2BIND, a model for predicting small-molecule binding sites without prior knowledge of ligands or homology.
  • Utilized features from a pretrained neural network (AlphaFold2).
  • Trained a logistic regression model for binding site prediction.
  • Applied the model on the human proteome to create a comprehensive database of binding sites.
  • Identified thousands of previously unseen binding sites in disease-relevant proteins.
  • Demonstrated accuracy in binding site prediction without relying on homology modeling.

Abstract

Identification of small-molecule binding sites in proteins is an important task for drug discovery. Despite previous homology- and machine-learning-based approaches to this problem, true de novo binding-site prediction remains a challenge. Here we use features from a pretrained neural network to train a logistic regression model, AF2BIND, for accurate prediction of de novo binding sites. AF2BIND identifies binding sites without relying on homology modeling, multiple sequence alignments or knowledge of a pocket-compatible ligand. Interpretable aspects of the model can be used to predict chemical properties of compatible ligands. We apply AF2BIND on the human proteome to produce a database that includes thousands of unseen binding sites in disease-relevant proteins. We anticipate AF2BIND will be used to focus drug discovery efforts and uncover functional sites in proteins across the tree of life.

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Cite This Study

Gazizov et al. (2026) studied this question.

synapsesocial.com/papers/69b4fac6b39f7826a300b61chttps://doi.org/10.1038/s41592-026-03011-2
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