English

End-to-End Reverse Screening Identifies Protein Targets of Small Molecules Using HelixFold3

Biomolecules 2026-01-21 v1 Artificial Intelligence

Abstract

Identifying protein targets for small molecules, or reverse screening, is essential for understanding drug action, guiding compound repurposing, predicting off-target effects, and elucidating the molecular mechanisms of bioactive compounds. Despite its critical role, reverse screening remains challenging because accurately capturing interactions between a small molecule and structurally diverse proteins is inherently complex, and conventional step-wise workflows often propagate errors across decoupled steps such as target structure modeling, pocket identification, docking, and scoring. Here, we present an end-to-end reverse screening strategy leveraging HelixFold3, a high-accuracy biomolecular structure prediction model akin to AlphaFold3, which simultaneously models the folding of proteins from a protein library and the docking of small-molecule ligands within a unified framework. We validate this approach on a diverse and representative set of approximately one hundred small molecules. Compared with conventional reverse docking, our method improves screening accuracy and demonstrates enhanced structural fidelity, binding-site precision, and target prioritization. By systematically linking small molecules to their protein targets, this framework establishes a scalable and straightforward platform for dissecting molecular mechanisms, exploring off-target interactions, and supporting rational drug discovery.

Keywords

Cite

@article{arxiv.2601.13693,
  title  = {End-to-End Reverse Screening Identifies Protein Targets of Small Molecules Using HelixFold3},
  author = {Shengjie Xu and Xianbin Ye and Mengran Zhu and Xiaonan Zhang and Shanzhuo Zhang and Xiaomin Fang},
  journal= {arXiv preprint arXiv:2601.13693},
  year   = {2026}
}