PEER-REVIEWED PUBLICATION

2026

Tropoelastin enhances vascularization in printable protein hydrogels

A tensile test divider icon

Liu L, Xue N, et al.

Communications Materials

University of Sydney, Nanjing University of Chinese Medicine, University of Trento, University of Technology Sydney, University of New South Wales, Chulalongkorn University

RESEARCH SUMMARY
This study developed a printable, protein-based hydrogel platform composed of silk fibroin and tyramine-modified gelatin and investigated whether adding recombinant human tropoelastin could improve vascularization. Gelatin was chemically modified with tyramine to enable horseradish peroxidase-mediated enzymatic crosslinking, and silk fibroin was incorporated to tune hydrogel mechanics. The authors compared SF/GT ratios of S10G90, S40G60, and S80G20 and found that higher gelatin content shortened gelation and increased elastic character, while S40G60 provided a mechanically stable hydrogel with compression modulus around 4 kPa, a range considered favourable for endothelial migration and vascular network formation. Tropoelastin did not significantly alter bulk compression mechanics at the tested concentration, but it improved fibroblast growth in selected hydrogel formulations. In 3D co-culture, GFP-HUVECs formed more elongated and sprouting structures when neonatal human dermal fibroblasts were co-encapsulated, and tropoelastin further increased the number of larger fluorescent endothelial structures. In vivo subcutaneous implantation showed cellular infiltration into both S40G60 and S40G60+TE hydrogels, thin fibrous capsules under 100 micrometres, M2-like macrophage-associated host response, and significantly enhanced blood-vessel formation around tropoelastin-containing implants at day 14. The S40G60 formulation was also adapted for extrusion-based freeform bioprinting in an alginate support bath, producing stable square and hollow cylindrical constructs while maintaining fibroblast viability and spreading. Overall, the paper demonstrates that tropoelastin can enhance early vascularization in a printable silk-gelatin hydrogel platform with soft-tissue-like mechanics.
CellScale hexagons, without text

CELLSCALE INSTRUMENT USED

UniVert

Compression testing of cast SF/GT hydrogel cylinders was performed using a CellScale UniVert Mechanical Test Machine equipped with a 10 N load cell. Cylindrical hydrogels were cast in silicone molds, incubated in fibroblast growth medium at 37 °C and 5% CO2 for 1, 3, or 7 days, then removed from medium before measurement. Each test used a zero-stress initial condition and a compression speed of 0.1 mm/s. Diameter and thickness were measured before testing to calculate contact surface area, and force-displacement data recorded with CellScale software were converted into stress-strain curves in Microsoft Excel. Compression modulus was calculated from the slope of the initial linear region between 10% and 30% strain. The UniVert results showed that S10G90 and S40G60 hydrogels maintained relatively stable compression moduli over 7 days, approximately 7.8 to 8.5 kPa and 3.9 to 4.2 kPa respectively, while S80G20 hydrogels stiffened from day 1 to day 3 and then softened by day 7 due to structural instability. Tropoelastin incorporation did not significantly change the compression modulus, likely because it was added at a low concentration of 50 micrograms per mL. These UniVert data were important because they supported selection of the S40G60 formulation for vascularization and bioprinting experiments, showing that it had stable, tissue-mimicking mechanics suitable for fibroblast and endothelial cell studies.
AUTHORS

Linyang Liu, Nannan Xue, Ziyu Wang, Eugenia Spessot, Miao Zhang, Suzanne M. Mithieux, Iman Roohani, Jelena Rnjak-Kovacina, Antonella Motta, Yiwei Wang, Anthony S. Weiss.

PUBLICATION DETAILS
JOURNAL

Communications Materials

YEAR

2026

INSTITUTIONS

University of Sydney, Nanjing University of Chinese Medicine, University of Trento, University of Technology Sydney, University of New South Wales, Chulalongkorn University

COUNTRIES

Australia, China, Italy, Thailand

INSTRUMENT USED

UniVert

TESTING METHODS

Compression Testing

RESEARCH APPLICATIONS

3D Bioprinting & Bioink Materials TestingCell Laden HydrogelsHydrogel Mechanical TestingVascular Tissue Engineering & Mechanics

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