GelMA-glycol chitosan hydrogels for cartilage regeneration: The role of uniaxial mechanical stimulation in enhancing mechanical, adhesive, and biochemical properties

Author:

Paul Sattwikesh123ORCID,Schrobback Karsten4ORCID,Tran Phong Anh12ORCID,Meinert Christoph5ORCID,Davern Jordan William1256ORCID,Weekes Angus125ORCID,Nedunchezhiyan Udhaya12ORCID,Klein Travis Jacob126ORCID

Affiliation:

1. Centre for Biomedical Technologies, Queensland University of Technology (QUT) 1 , 60 Musk Ave., Kelvin Grove, Brisbane, QLD 4059, Australia

2. School of Mechanical, Medical and Process Engineering, Faculty of Engineering, Queensland University of Technology (QUT) 2 , 2 George Street, Brisbane, QLD 4000, Australia

3. Department of Surgery and Radiology, Faculty of Veterinary Medicine and Animal Science (FVMAS), Bangabandhu Sheikh Mujibur Rahman Agricultural University (BSMRAU), BSMRAU Road 3 , Gazipur 1706, Bangladesh

4. School of Biomedical Sciences, Centre for Genomics and Personalised Health, Translational Research Institute, Queensland University of Technology (QUT) 4 , 37 Kent Street, Woolloongabba, QLD 4102, Australia

5. Gelomics Pty Ltd. 5 , Brisbane, QLD 4059, Australia

6. ARC Training Centre for Cell and Tissue Engineering Technologies, Queensland University of Technology (QUT) 6 , Brisbane, QLD 4059, Australia

Abstract

Untreated osteochondral defects are a leading cause of osteoarthritis, a condition that places a heavy burden on both patients and orthopedic surgeons. Although tissue engineering has shown promise for creating mechanically similar cartilage-like constructs, their integration with cartilage remains elusive. Therefore, a formulation of biodegradable, biocompatible biomaterial with sufficient mechanical and adhesive properties for cartilage repair is required. To accomplish this, we prepared biocompatible, photo-curable, mechanically robust, and highly adhesive GelMA-glycol chitosan (GelMA-GC) hydrogels. GelMA-GC hydrogels had a modulus of 283 kPa and provided a biocompatible environment (>70% viability of embedded chondrocytes) in long-term culture within a bovine cartilage ring. The adhesive strength of bovine chondrocyte-laden GelMA-GC hydrogel to bovine cartilage increased from 38 to 52 kPa over four weeks of culture. Moreover, intermittent uniaxial mechanical stimulation enhanced the adhesive strength to ∼60 kPa, indicating that the cartilage-hydrogel integration could remain secure and functional under dynamic loading conditions. Furthermore, gene expression data and immunofluorescence staining revealed the capacity of chondrocytes in GelMA-GC hydrogel to synthesize chondrogenic markers (COL2A1 and ACAN), suggesting the potential for tissue regeneration. The promising in vitro results of this work motivate further exploration of the potential of photo-curable GelMA-GC bioadhesive hydrogels for cartilage repair and regeneration.

Funder

Australian Government Research Stipend Scholarship

Publisher

AIP Publishing

Subject

Biomedical Engineering,Biomaterials,Biophysics,Bioengineering

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