# Differentiation of physical and chemical cross-linking in gelatin methacryloyl hydrogels

**Authors:** Lisa Rebers, Raffael Reichsöllner, Sophia Regett, Günter E. M. Tovar, Kirsten Borchers, Stefan Baudis, Alexander Southan

PMC · DOI: 10.1038/s41598-021-82393-z · 2021-02-05

## 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.

## Key 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 methacryloylation degree (DM), reducing its ability to cross-link physically. GM2 had the lowest DM and showed physical cross-linking. The total modification degree, determining the physical cross-linking ability, of GM2A8 was comparable to that of GM10, but the chemical cross-linking ability was comparable to GM2. At first, we measured the double bond conversion (DBC) kinetics during chemical GM(A) cross-linking quantitatively in real-time via near infrared spectroscopy-photorheology and showed that the DBC decreased due to sequential cross-linking. Furthermore, results of circular dichroism spectroscopy and differential scanning calorimetry indicated gelation and conformation changes, which increased storage moduli of all GM(A) hydrogels due to sequential cross-linking. The data suggested that the total cross-link density determines hydrogel stiffness, regardless of the physical or chemical nature of the cross-links.

## Full-text entities

- **Genes:** LAP (lingual antimicrobial peptide) [NCBI Gene 403090]
- **Chemicals:** caesium chloride (MESH:C028019), hydrogen (MESH:D006859), water (MESH:D014867), 3H (MESH:D014316), lithium phenyl-2,4,6-trimethylbenzoylphosphinate (MESH:C546776), 2H (MESH:D003903), PBS (MESH:D007854), GM hydrogel (-), D2O (MESH:D017666), zinc (MESH:D015032), CaCl2 (MESH:D002122), Irgacure 2959 (MESH:C499598), GMs (MESH:C009032), MgCl2 (MESH:D015636), bismuth (MESH:D001729), poly-proline (MESH:C011083), AcAnh (MESH:C031800), NaOH (MESH:D012972), tin (MESH:D014001), paraffin (MESH:D010232), C (MESH:D002244), indium (MESH:D007204), DBCs (MESH:C000913), aluminium (MESH:D000535)
- **Mutations:** Ala-Pro, C instead of 37, C 4  C, Gly-Pro, C at 5
- **Cell lines:** S2 — Drosophila melanogaster (Fruit fly), Spontaneously immortalized cell line (CVCL_Z232)

## Figures

5 figures with captions in the complete paper: https://tomesphere.com/paper/PMC7864981/full.md

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Source: https://tomesphere.com/paper/PMC7864981