Improving the bioactivity and mechanical properties of poly(ethylene glycol)-based hydrogels through a supramolecular support network

Abstract

Most synthetic hydrogels are formed through radical polymerization to yield a homogenous covalent meshwork. In contrast, natural hydrogels form through mechanisms involving both covalent assembly and supramolecular interactions. In this communication, we expand the capabilities of covalent poly(ethylene glycol) (PEG) networks through co-assembly of supramolecular peptide nanofibers. Using a peptide hydrogelator derived from the tryptophan zipper (Trpzip) motif, we show how in situ formation of an interpenetrating nanofiber network can tune the stiffness of PEG-based hydrogels, while also providing shear thinning, stress relaxation and self-healing properties. The hybrid networks show enhanced toughness and durability under tension, providing scope for use in load bearing applications. A small quantity of Trpzip peptide renders the non-adhesive PEG network adhesive, supporting adipose derived stromal cell adhesion, elongation and growth. The integration of supramolecular networks into covalent meshworks expands the versatility of these materials, opening up new avenues for applications in biotechnology and medicine

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Article information

Article type
Communication
Submitted
06 sep 2024
Accepted
24 dec 2024
First published
27 dec 2024

J. Mater. Chem. B, 2025, Accepted Manuscript

Improving the bioactivity and mechanical properties of poly(ethylene glycol)-based hydrogels through a supramolecular support network

Y. Liu, S. Islam, A. Bakker, Z. Li, A. Ajam, J. J. Kruzic and K. Kilian, J. Mater. Chem. B, 2025, Accepted Manuscript , DOI: 10.1039/D4TB02002B

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