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Updated: Aug 6, 2026

Corneal Tissue Engineering: An In Vitro Model of the Stromal-nerve Interactions of the Human Cornea
Published on: January 24, 2018
Corneal Biomaterials in Regenerative Ophthalmology: Scaffolds, Bioprinting and Keratoprosthetic Technologies
Margarita Safir1, Clara C Chan2, Michael Mimouni3
1From the Ophthalmology Department (M.S.), Rabin Medical Center, Petah Tikva, Israel; Gray Faculty of Medical and Health Sciences (M.S.), Tel Aviv University, Tel Aviv, Israel.
Purpose:
To review current and emerging biomaterial-based strategies for corneal repair and replacement, with emphasis on biological scaffolds, biofabricated constructs, artificial stromal substitutes, and keratoprosthetic technologies.
Design:
Literature review.
Methods:
Review of experimental, translational, and clinical literature on biomaterial platforms for corneal reconstruction, including decellularized matrices, collagen-based and extracellular matrix-derived scaffolds, 3-dimensional printed and bioprinted constructs, endothelial carrier systems, and synthetic and biologic keratoprostheses, with particular attention to layer-specific applications.
Results:
Corneal biomaterials are progressing from passive substitutes to increasingly sophisticated regenerative and prosthetic platforms. Biological scaffolds such as decellularized cornea, collagen-based implants, and amniotic membrane derivatives may support epithelial, stromal, and endothelial repair, whereas 3-dimensional printing and bioprinting now enable more precise, layer-specific constructs. Endothelial tissue engineering appears particularly promising, with bioengineered grafts and synthetic barrier devices showing encouraging early results. Keratoprostheses remain the most clinically mature option for end-stage disease but continue to be limited by sequala of incomplete biointegration. Across platforms, key barriers to routine clinical use include long-term durability, optical stability, manufacturability, and regulatory complexity CONCLUSIONS: Biomaterial-based corneal reconstruction is entering a translational era in which layer-specific and hybrid approaches may expand therapeutic options beyond conventional keratoplasty. Continued progress will depend on improving biologic integration, long-term functional durability, and alignment of biomaterials innovation with surgical and regulatory realities.
