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Determining accurate conformational ensembles of intrinsically disordered proteins at atomic resolution

Kaushik Borthakur, Thomas R. Sisk, Francesco Paolo Panei, Massimiliano Bonomi, Paul Robustelli

2025Nature Communications17 citationsDOIOpen Access PDF

Abstract

Determining accurate atomic resolution conformational ensembles of intrinsically disordered proteins (IDPs) is extremely challenging. Molecular dynamics (MD) simulations provide atomistic conformational ensembles of IDPs, but their accuracy is highly dependent on the quality of physical models, or force fields, used. Here, we demonstrate how to determine accurate atomic resolution conformational ensembles of IDPs by integrating all-atom MD simulations with experimental data from nuclear magnetic resonance (NMR) spectroscopy and small-angle x-ray scattering (SAXS) with a simple, robust and fully automated maximum entropy reweighting procedure. We demonstrate that in favorable cases, where IDP ensembles obtained from different MD force fields are in reasonable initial agreement with experimental data, reweighted ensembles obtained with this approach converge to highly similar conformational distributions. The maximum entropy reweighting procedure presented here facilitates the integration of MD simulations with extensive experimental datasets and demonstrates progress towards the calculation of accurate, force-field independent conformational ensembles of IDPs at atomic resolution.

Topics & Concepts

Intrinsically disordered proteinsConformational ensemblesMolecular dynamicsEntropy (arrow of time)Resolution (logic)PhysicsConformational entropyPrinciple of maximum entropyChemical physicsChemistryStatistical physicsLow resolutionSpectroscopyMolecular conformationAtomic force microscopyExperimental dataMaterials scienceProtein structureScatteringNuclear magnetic resonance spectroscopyMolecular biophysicsCryo-electron microscopyHigh resolutionProtein Structure and DynamicsEnzyme Structure and FunctionAdvanced NMR Techniques and Applications
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