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October 5, 20250 citationsOpen Access

Integrative modelling of biomolecular dynamics

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DGDaria GusewCHCarl G. Henning HansenKLKresten Lindorff‐Larsen

Key Points

  • Dynamic behavior of biomolecules is revealed through advanced simulations and experimental methods, and integration of these approaches enhances mechanistic understanding.
  • Combining simulations with time-resolved experiments showcases improvements in capturing the dynamic nature of biomolecules at femtosecond timescales.
  • Integration of structural and dynamical models supports interpretations of experimental results, leading to more comprehensive insights into biomolecular functions.
  • Advancements in experimental techniques enable higher spatial and temporal resolutions, allowing better representation of biomolecular dynamics.

Abstract

Much of our mechanistic understanding of the functions of biological macromolecules is based on static structural experiments, which can be modelled either as single structures or conformational ensembles. While these provide us with invaluable insights, they do not directly reveal that molecules are inherently dynamic. Advances in time-dependent and time-resolved experimental methods have made it possible to capture the dynamics of biomolecules at increasingly higher spatial and temporal resolutions. To complement these, computational models can represent the structural and dynamical behaviour of biomolecules at atomistic resolution and femtosecond timescale, and are therefore useful to interpret these experiments. Here, we review the progress in integrating simulations with dynamical experiments, focusing on the combination of simulations with time-resolved and time-dependent experimental data.

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Cite This Study

Gusew et al. (2025) studied this question.

synapsesocial.com/papers/68e2537cd6d66a53c247444dhttps://doi.org/10.48550/arxiv.2510.01108
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