Coherent X-rays reveal anomalous molecular diffusion and cage effects in crowded protein solutions
Abstract
Understanding protein motion within the cell is crucial for predicting reaction rates and macromolecular transport in the cytoplasm. A key question is how crowded environments affect protein dynamics through hydrodynamic and direct interactions at molecular length scales. Using megahertz X-ray Photon Correlation Spectroscopy (MHz-XPCS) at the European X-ray Free Electron Laser (EuXFEL), we investigate ferritin diffusion at microsecond time scales. Our results reveal anomalous diffusion, indicated by the non-exponential decay of the intensity autocorrelation function at high concentrations. This behavior is consistent with the presence of cage-trapping in between the short- and long-time protein diffusion regimes. Modeling with the -theory of hydrodynamically interacting colloidal spheres successfully reproduces the experimental data by including a scaling factor linked to the protein direct interactions. These findings offer new insights into the complex molecular motion in crowded protein solutions, with potential applications for optimizing ferritin-based drug delivery, where protein diffusion is the rate-limiting step.
Keywords
Cite
@article{arxiv.2410.08873,
title = {Coherent X-rays reveal anomalous molecular diffusion and cage effects in crowded protein solutions},
author = {Anita Girelli and Maddalena Bin and Mariia Filianina and Michelle Dargasz and Nimmi Das Anthuparambil and Johannes Möller and Alexey Zozulya and Iason Andronis and Sonja Timmermann and Sharon Berkowicz and Sebastian Retzbach and Mario Reiser and Agha Mohammad Raza and Marvin Kowalski and Mohammad Sayed Akhundzadeh and Jenny Schrage and Chang Hee Woo and Maximilian D. Senft and Lara Franziska Reichart and Aliaksandr Leonau and Prince Prabhu Rajaiah and William Chèvremont and Tilo Seydel and Jörg Hallmann and Angel Rodriguez-Fernandez and Jan-Etienne Pudell and Felix Brausse and Ulrike Boesenberg and James Wrigley and Mohamed Youssef and Wei Lu and Wonhyuk Jo and Roman Shayduk and Trey Guest and Anders Madsen and Felix Lehmkühler and Michael Paulus and Fajun Zhang and Frank Schreiber and Christian Gutt and Fivos Perakis},
journal= {arXiv preprint arXiv:2410.08873},
year = {2025}
}
Comments
This version of the article has been accepted for publication after peer review, but is not the Version of Record and does not reflect post-acceptance improvements or any corrections. The Version of Record is available online at: https://doi.org/10.1038/s41467-025-66972-6