Aug 2026· Cell Reports Physical Science· Vol 7, pp. 103457· 0 citations· 74 references
TL;DR
A modular bioconjugation system using polyphenol radical crosslinking, where gallic acid (GA)-modified glycosaminoglycans rapidly crosslink with diverse biomolecules under blue light and riboflavin enables the creation of customizable, cell-compatible matrices for tissue engineering and 3D cell culture.
Abstract
SUMMARY Hydrogels are promising for biomedical applications due to their tunable properties and extracellular matrix (ECM)-mimicking capabilities, but available chemistries limit customization potential. We present a modular bioconjugation system using polyphenol radical crosslinking, where gallic acid (GA)-modified glycosaminoglycans rapidly crosslink with diverse biomolecules under blue light and riboflavin. This method enables the creation of customizable, cell-compatible matrices. We validate conjugation chemistry using 1 H NMR, size-exclusion chromatography, and gel electrophoresis. As proof-of-concept, we have created injectable hydrogels from GA-modified hyaluronic acid (HA-GA) crosslinked with various proteins. Mechanical properties are tunable via riboflavin concentration and light exposure. HCT116 colon cancer cells form spheroids in HA-GA-BSA, while other protein-containing hydrogels support dispersed growth, indicating enhanced cell adhesion. HA-GA hydrogels upregulate stemness markers compared to 2D culture, while protein incorporation reduces this effect. Matrix-activated Wnt signaling confirms functional biomolecule integration using HA-GA-Wnt3A matrices. This strategy enables tailored ECM design for tissue engineering and 3D cell culture.
Hydrogels that recapitulate the biochemical and mechanical complexity of the extracellular matrix (ECM) are critical for advanced cell culture and tissue engineering. Here, we develop spider silk protein (spidroin)-based hydrogels from the recombinant miniature spidroin NT2RepCT mixed with VN-NT, a vitronectin peptide...
S. Korpela, U. Chatterjee, G. Greco et al.· Small· 0 citations
We report the development of an injectable hyaluronic acid (HA)-based hydrogel using native chemical ligation (NCL) as a biocompatible and chemoselective crosslinking strategy for potential biomedical applications. High-molecular-weight HA was pre-modified with a glycinyl thioester derivative, while a bis-cysteine pe...
Hydrogels are widely used in tissue engineering (TE) for their ability to replicate the extracellular matrix, providing a supportive environment for cell proliferation and tissue regeneration. However, their inherently low mechanical strength often restricts their use in load-bearing biomedical applications. To address...
João A. Pereira, João M. M. Rodrigues, Maria C. Mendes et al.· ACS Applied Materials and In...· 0 citations
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Ting-Yu Xu, Jia Wei, Zi-Han Zhang et al.· Colloids and Surfaces B: Bio...· 0 citations
HRP/Eo crosslinking method is identified as a favorable strategy for engineering dECM particle–THA hydrogels for cartilage regeneration and improved mechanical performance and chondrocyte redifferentiation effect compared to SPS/Ru, attributed to the difference in hydrogel morphology.
Jiang-Yao Xu, Jacek K. Wychowaniec, M. D’Este et al.· RSC Advances· 0 citations
Three-dimensional, interconnected hydrogel networks are central to tissue engineering and disease modeling, where tailored pore architecture and mechanical robustness are essential for supporting cellular functions. However, the limited ability to engineer microstructural features in vat polymerization 3D-printed natur...
Liwei Liu, Liwen Zhang, Xumin Huang et al.· Small Methods· 0 citations
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