Issue 10, 2024

3D printed fibroblast-loaded hydrogel for scleral remodeling to prevent the progression of myopia

Abstract

Pathologic myopia has seriously jeopardized the visual health of adolescents in the past decades. The progression of high myopia is associated with a decrease in collagen aggregation and thinning of the sclera, which ultimately leads to longer eye axis length and image formation in front of the retina. Herein, we report a fibroblast-loaded hydrogel as a posterior scleral reinforcement (PSR) surgery implant for the prevention of myopia progression. The fibroblast-loaded gelatin methacrylate (GelMA)-poly(ethylene glycol) diacrylate (PEGDA) hydrogel was prepared through bioprinting with digital light processing (DLP). The introduction of the PEGDA component endowed the GelMA-PEGDA hydrogel with a high compression modulus for PRS surgery. The encapsulated fibroblasts could consistently maintain a high survival rate during 7 days of in vitro incubation, and could normally secrete collagen type I. Eventually, both the hydrogel and fibroblast-loaded hydrogel demonstrated an effective shortening of the myopic eye axis length in a guinea pig model of visual deprivation over three weeks after implantation, and the sclera thickness of myopic guinea pigs became significantly thicker after 4 weeks, verifying the success of sclera remodeling and showing that myopic progression was effectively controlled. In particular, the fibroblast-loaded hydrogel demonstrated the best therapeutic effect through the synergistic effect of cell therapy and PSR surgery.

Graphical abstract: 3D printed fibroblast-loaded hydrogel for scleral remodeling to prevent the progression of myopia

Supplementary files

Article information

Article type
Paper
Submitted
27 Oct 2023
Accepted
29 Jan 2024
First published
01 Feb 2024

J. Mater. Chem. B, 2024,12, 2559-2570

3D printed fibroblast-loaded hydrogel for scleral remodeling to prevent the progression of myopia

J. Hui, X. Nie, P. Wei, J. Deng, Y. Kang, K. Tang, G. Han, L. Wang, W. Liu and Q. Han, J. Mater. Chem. B, 2024, 12, 2559 DOI: 10.1039/D3TB02548A

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