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◆ Molecular Cell2026-04-10· Cytoplasm

Condition-dependent amorphous protein agglomerates control cytoplasmic rheology

José Losa, François Simon, Dmitrii Linnik, S. Kaya, Marc C. A. Stuart, Artem Stetsenko, Rinse de Boer, Fanny Ho, Danny Incarnato, Jan A. Stevens, Jan van Eck, Marco W. Fraaije, Lucien E. Weiss, Sven van Teeffelen, Sanne Abeln, Albert Guskov, ‪Siewert J. Marrink, Bert Poolman, Matthias Heinemann

原始摘要(英文原文)· Original abstract
Summary Molecular crowding in the bacterial cytoplasm restricts the diffusion of large molecules, impacting cellular processes. However, how nutrient availability influences cytoplasmic rheology is not well understood. With single-particle tracking in Escherichia coli , we observed a threefold variation in the diffusion of a 40-nm particle across exponential growth conditions. Previously suggested determinants of rheology did not account for this variation; instead, we found a strong anticorrelation between the diffusion coefficient and the abundance of amino acid metabolism proteins, persisting upon genetic perturbations and showing that lower diffusion is associated with increased viscoelasticity. Photoactivated light microscopy revealed that some amino acid metabolism proteins form clusters. Electron microscopy showed that these proteins could form amorphous agglomerates at physiological concentrations in vitro, likely driven by their low intrinsic disorder, high compactness and hydropathy score. These findings show that protein agglomerates regulate cytoplasmic rheology in a condition-dependent manner, suggesting an underappreciated level of cytoplasmic organization. Highlights Diffusion of 40-nm particles varies threefold across growth conditions in E. coli Cytoplasmic diffusion inversely correlates with COG-E protein abundance COG-E proteins form agglomerates that increase cytoplasmic viscoelasticity Protein compactness and hydrophobicity predict condition-dependent crowding effects
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Condition-dependent amorphous protein agglomerates control cytoplasmic rheology — 科研速览 Science Skim