Differentiation of physical and chemical cross-linking in gelatin methacryloyl hydrogels
Lisa Rebers, Raffael Reichsöllner, Sophia Regett, Günter E. M. Tovar, Kirsten Borchers, Stefan Baudis, Alexander Southan

TL;DR
This paper investigates how physical and chemical cross-linking affect the strength of gelatin methacryloyl hydrogels used in biomedical applications.
Contribution
The study reveals how sequential cross-linking impacts hydrogel stiffness through physical and chemical mechanisms.
Findings
Sequential cross-linking increases hydrogel stiffness through gelation and conformation changes.
Total cross-link density determines hydrogel stiffness regardless of cross-link type.
Different GM(A) derivatives showed varied physical and chemical cross-linking abilities based on modification degrees.
Abstract
Gelatin methacryloyl (GM) hydrogels have been investigated for almost 20 years, especially for biomedical applications. Recently, strengthening effects of a sequential cross-linking procedure, whereby GM hydrogel precursor solutions are cooled before chemical cross-linking, were reported. It was hypothesized that physical and enhanced chemical cross-linking of the GM hydrogels contribute to the observed strengthening effects. However, a detailed investigation is missing so far. In this contribution, we aimed to reveal the impact of physical and chemical cross-linking on strengthening of sequentially cross-linked GM and gelatin methacryloyl acetyl (GMA) hydrogels. We investigated physical and chemical cross-linking of three different GM(A) derivatives (GM10, GM2A8 and GM2), which provided systematically varied ratios of side-group modifications. GM10 contained the highest…
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Taxonomy
Topics3D Printing in Biomedical Research · Additive Manufacturing and 3D Printing Technologies · Hydrogels: synthesis, properties, applications
