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A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair

Corneal transplantation is an effective clinical treatment for corneal diseases, which, however, is limited by donor corneas. It is of great clinical value to develop bioadhesive corneal patches with functions of “Transparency” and “Epithelium & Stroma generation”, as well as “Suturelessness” an...

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Autores principales: Li, Meiyan, Wei, Ruoyan, Liu, Chang, Fang, Haowei, Yang, Weiming, Wang, Yunzhe, Xian, Yiyong, Zhang, Kunxi, He, Yong, Zhou, Xingtao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9946819/
https://www.ncbi.nlm.nih.gov/pubmed/36844364
http://dx.doi.org/10.1016/j.bioactmat.2023.02.006
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author Li, Meiyan
Wei, Ruoyan
Liu, Chang
Fang, Haowei
Yang, Weiming
Wang, Yunzhe
Xian, Yiyong
Zhang, Kunxi
He, Yong
Zhou, Xingtao
author_facet Li, Meiyan
Wei, Ruoyan
Liu, Chang
Fang, Haowei
Yang, Weiming
Wang, Yunzhe
Xian, Yiyong
Zhang, Kunxi
He, Yong
Zhou, Xingtao
author_sort Li, Meiyan
collection PubMed
description Corneal transplantation is an effective clinical treatment for corneal diseases, which, however, is limited by donor corneas. It is of great clinical value to develop bioadhesive corneal patches with functions of “Transparency” and “Epithelium & Stroma generation”, as well as “Suturelessness” and “Toughness”. To simultaneously meet the “T.E.S.T.” requirements, a light-curable hydrogel is designed based on methacryloylated gelatin (GelMA), Pluronic F127 diacrylate (F127DA) & Aldehyded Pluronic F127 (AF127) co-assembled bi-functional micelles and collagen type I (COL I), combined with clinically applied corneal cross-linking (CXL) technology for repairing damaged cornea. The patch formed after 5 min of ultraviolet irradiation possesses transparent, highly tough, and strongly bio-adhesive performance. Multiple cross-linking makes the patch withstand deformation near 600% and exhibit a burst pressure larger than 400 mmHg, significantly higher than normal intraocular pressure (10–21 mmHg). Besides, the slower degradation than GelMA-F127DA&AF127 hydrogel without COL I makes hydrogel patch stable on stromal beds in vivo, supporting the regrowth of corneal epithelium and stroma. The hydrogel patch can replace deep corneal stromal defects and well bio-integrate into the corneal tissue in rabbit models within 4 weeks, showing great potential in surgeries for keratoconus and other corneal diseases by combining with CXL.
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spelling pubmed-99468192023-02-24 A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair Li, Meiyan Wei, Ruoyan Liu, Chang Fang, Haowei Yang, Weiming Wang, Yunzhe Xian, Yiyong Zhang, Kunxi He, Yong Zhou, Xingtao Bioact Mater Article Corneal transplantation is an effective clinical treatment for corneal diseases, which, however, is limited by donor corneas. It is of great clinical value to develop bioadhesive corneal patches with functions of “Transparency” and “Epithelium & Stroma generation”, as well as “Suturelessness” and “Toughness”. To simultaneously meet the “T.E.S.T.” requirements, a light-curable hydrogel is designed based on methacryloylated gelatin (GelMA), Pluronic F127 diacrylate (F127DA) & Aldehyded Pluronic F127 (AF127) co-assembled bi-functional micelles and collagen type I (COL I), combined with clinically applied corneal cross-linking (CXL) technology for repairing damaged cornea. The patch formed after 5 min of ultraviolet irradiation possesses transparent, highly tough, and strongly bio-adhesive performance. Multiple cross-linking makes the patch withstand deformation near 600% and exhibit a burst pressure larger than 400 mmHg, significantly higher than normal intraocular pressure (10–21 mmHg). Besides, the slower degradation than GelMA-F127DA&AF127 hydrogel without COL I makes hydrogel patch stable on stromal beds in vivo, supporting the regrowth of corneal epithelium and stroma. The hydrogel patch can replace deep corneal stromal defects and well bio-integrate into the corneal tissue in rabbit models within 4 weeks, showing great potential in surgeries for keratoconus and other corneal diseases by combining with CXL. KeAi Publishing 2023-02-11 /pmc/articles/PMC9946819/ /pubmed/36844364 http://dx.doi.org/10.1016/j.bioactmat.2023.02.006 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Li, Meiyan
Wei, Ruoyan
Liu, Chang
Fang, Haowei
Yang, Weiming
Wang, Yunzhe
Xian, Yiyong
Zhang, Kunxi
He, Yong
Zhou, Xingtao
A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair
title A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair
title_full A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair
title_fullStr A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair
title_full_unstemmed A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair
title_short A “T.E.S.T.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair
title_sort “t.e.s.t.” hydrogel bioadhesive assisted by corneal cross-linking for in situ sutureless corneal repair
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9946819/
https://www.ncbi.nlm.nih.gov/pubmed/36844364
http://dx.doi.org/10.1016/j.bioactmat.2023.02.006
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