Photo-triggered Hyaluronic Acid Hydrogel for 3D Culture and Cell Recovery

Publication date

2025-11-17

Authors

Palmieri, FrancescoISNI 000000051256680X
Gueye, Marième
Vicario Del Rio, Lucía
Bunschuh, Saskia
Chopra, PradeepISNI 0000000518029431
Mihăilă, Silvia MISNI 0000000492912639
Vermonden, TinaISNI 0000000357250265
Levato, RiccardoISNI 0000000492906546
Boons, Geert-JanORCID 0000-0003-3111-5954ISNI 0000000120249047

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by_nc_nd

Abstract

Properties of semisynthetic hydrogels can be fine-tuned, making these attractive for various applications in regenerative medicine. Herein, a hydrogel platform based on hyaluronic acid (HA) modified by (1R, 8S,9S)-bicycle[6.1.0]non-4-yn-9-ylmethanol (BCN) and a cross-linker composed of light-sensitive o-nitrobenzyl and polyethylene glycol (PEG) chains terminating in azides is described. The two components can undergo strain-promoted azide–alkyne cycloaddition resulting in rapid gel formation. First, adipose-derived mesenchymal stromal cells (MSCs) are incorporated in the hydrogel and it is demonstrated that the cells can be easily retrieved by UV light-mediated degradation, maintaining viability and retaining spindle-like shape when the cells are replated. Next, a proof-of-concept of inducing light-mediated softening of the hydrogel to modulate the morphology of the encapsulated cells is provided. A co-culture of endothelial cells (cord blood-derived endothelial colony forming cells and bone marrow-derived MSCs), which is commonly studied for their ability to form capillary-like vascular networks, is cultured in the regular and light-induced softened hydrogels. Nonphotoexposed hydrogels show cells with a prevalently rounded morphology, whereas stretched cells connecting into a primitive capillary network are observed in the light-softened hydrogels. Photo-induced softening offers potential to locally control cell shape and self-organization capacity.

Keywords

hyaluronic acid, hydrogels, photosensitivity, polymeric biomaterials, synthetic methods, Biochemistry, Molecular Medicine, Molecular Biology, Organic Chemistry

Citation

Palmieri, F, Gueye, M, Vicario Del Rio, L, Bunschuh, S, Chopra, P, Mihăilă, S, Vermonden, T, Levato, R & Boons, G-J 2025, 'Photo-triggered Hyaluronic Acid Hydrogel for 3D Culture and Cell Recovery', ChemBioChem, vol. 26, no. 22, e202500310. https://doi.org/10.1002/cbic.202500310