Cell-derived lactate triggers local hydrogelation and phenotype remodelling

Abstract Many tumours release lactate as a major metabolic product and signalling molecule. Here we use lactate flux as an endogenous trigger for covalent hydrogel formation. Phenol-functionalised alginate remains soluble until cell-derived lactate is oxidised by lactate oxidase; the generated hydrogen peroxide is used by horseradish peroxidase to crosslink phenols and form a matrix at metabolically active sites. Hydrogels form within minutes and reach storage moduli from approximately 10 Pa to 5 kPa. In tumour-spheroid models, including a patient-derived glioblastoma spheroid model, local lactate production generates spatially confined gelation that extended up to around 1 mm from the spheroid surface. Nanoindentation and fluorescence correlation spectroscopy reveal radial stiffness and polymer-density gradients, while proteome profiling and imaging indicate reduced proliferative signalling and increased markers associated with migration and matrix remodelling. These findings establish metabolite-gated hydrogelation as a strategy to couple cellular metabolism to covalent matrix assembly, mechanics and transport, providing a bio-synthetic platform for modelling cell–matrix reciprocity and tumour confinement.

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Publication Details

Journal
Nature Communications
Published
2026-09-28
DOI
https://doi.org/10.1038/s41467-026-77702-x
Primary Topic
Supramolecular Self-Assembly in Materials
Type
article
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article

Cell-derived lactate triggers local hydrogelation and phenotype remodelling

Maximilian Schuler, Christopher V. Synatschke, Tanja Weil, Kaloian Koynov et al.
Nature Communications
Supramolecular Self-Assembly in Materials
article

Cell-derived lactate triggers local hydrogelation and phenotype remodelling

Maximilian Schuler, Christopher V. Synatschke, Tanja Weil, Kaloian Koynov, Anne Régnier‐Vigouroux, Laura De Laporte, Manfred Wagner, Marius G. Braun, Lisa Förch, Leon Driehaus-Ortiz, Sophie Gieß, David Y.W. Ng, Tom C. Schneider
article en

Abstract

Abstract Many tumours release lactate as a major metabolic product and signalling molecule. Here we use lactate flux as an endogenous trigger for covalent hydrogel formation. Phenol-functionalised alginate remains soluble until cell-derived lactate is oxidised by lactate oxidase; the generated hydrogen peroxide is used by horseradish peroxidase to crosslink phenols and form a matrix at metabolically active sites. Hydrogels form within minutes and reach storage moduli from approximately 10 Pa to 5 kPa. In tumour-spheroid models, including a patient-derived glioblastoma spheroid model, local lactate production generates spatially confined gelation that extended up to around 1 mm from the spheroid surface. Nanoindentation and fluorescence correlation spectroscopy reveal radial stiffness and polymer-density gradients, while proteome profiling and imaging indicate reduced proliferative signalling and increased markers associated with migration and matrix remodelling. These findings establish metabolite-gated hydrogelation as a strategy to couple cellular metabolism to covalent matrix assembly, mechanics and transport, providing a bio-synthetic platform for modelling cell–matrix reciprocity and tumour confinement.

Nature Communications
Johannes Gutenberg University Mainz (DE), Max Planck Institute for Polymer Research (DE), DWI – Leibniz Institute for Interactive Materials (DE), Universitätsklinikum Aachen (DE), Max Planck School Matter to Life, RWTH Aachen University (DE)
Openalex Percentile: Top 45%
Supramolecular Self-Assembly in Materials
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