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May 13, 2026Journal of Chemical Theory and Computation3 citations

Cryo-Electron Microscopy Structural Ensemble Optimization Using Individual Particles

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DSDavid Silva-SánchezABAlison Berezuk祝祝星

Key Points

  • To optimize sets of conformations from cryo-EM images using a Bayesian approach, focusing on flexible biomolecules.
  • Utilized Bayesian optimization techniques to iteratively refine structures and their weights from cryo-EM particle images.
  • Applied a likelihood function based on actual images rather than reconstructions.
  • Tested on models ranging from a four-atom toy to large protein systems with real cryo-EM data.
  • Successfully recovered structures and associated weights even with mismatches in the number of actual metastable states.
  • Demonstrated robustness across various experimental conditions, highlighting flexibility in modeling complex conformations.

Abstract

that directly infers the optimal set of conformations and their associated population weights from cryo-EM images using Bayesian optimization techniques. Our method iterates between optimizing the structures and weights using a likelihood defined in terms of cryo-EM particle images (not reconstructions) and projecting onto the domain of a physical prior through an approach inspired by projected gradient descent. We test the method on several systems, ranging from a four-atom toy model to two large protein systems with real cryo-EM data. We find that our approach successfully recovers the structures and their associated weights across a wide range of experimental conditions, even when the number of structures does not match the actual number of metastable states. Our method paves the way for cryo-EM structural ensemble optimization of flexible biomolecules exhibiting complex, multimodal conformational landscapes.

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Cite This Study

Silva-Sánchez et al. (2026) studied this question.

synapsesocial.com/papers/6a0415f879e20c90b44457a4https://doi.org/10.1021/acs.jctc.6c00053
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