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March 16, 2026Journal of Chemical Information and Modeling0 citationsOpen Access

Efficient Binding Affinity Estimation for Fragment-Based Compounds Using a Separated Topologies Approach

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ACAna-Maria CaldaruseHBHannah M. BaumannDMDavid L. Mobley

Key Points

  • The study aims to improve predictions of binding affinities for fragment-based compounds using a new computational method.
  • Evaluated the Separated Topologies (SepTop) approach for fragment transformations.
  • Utilized retrospective data sets from Cyclophilin D and SARS-CoV-2 Macrodomain 1.
  • Assessed the accuracy of SepTop in predicting binding affinities for both fragment and lead-like compounds.
  • SepTop recovered experimental binding affinities with good accuracy.
  • Results support the suitability of SepTop for fragment optimization in drug discovery.
  • SepTop extends the capabilities of binding free-energy calculations in early drug development.

Abstract

Fragment-based drug discovery (FBDD) is a widely used strategy in early-stage drug development, but accurately predicting the binding affinities of fragments and their elaborated analogs poses unique computational challenges. These difficulties arise from weak binding affinities, diverse chemical scaffolds, and limited structural overlap between fragments and their optimized derivatives. While several free-energy methods exist, few are tailored to the specific requirements of FBDD. In this study, we evaluate the Separated Topologies (SepTop) approach for modeling fragment-based transformations, including fragment merging and linking. Using retrospective data sets from Cyclophilin D and SARS-CoV-2 Macrodomain 1, we demonstrate that SepTop can recover experimental binding affinities with good accuracy across both fragment and lead-like compounds. These results support SepTop's suitability for fragment optimization and highlight its potential to extend the reach of binding free-energy calculations into earlier stages of drug discovery.

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Cite This Study

Caldaruse et al. (2026) studied this question.

synapsesocial.com/papers/69b79da78166e15b153aaf19https://doi.org/10.1021/acs.jcim.5c03091
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