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通过核黄素光活化交联胶原凝胶修复和再生角膜缺损。

Collagen Gels Crosslinked by Photoactivation of Riboflavin for the Repair and Regeneration of Corneal Defects.

机构信息

Ophthalmology, Byers Eye Institute at Stanford University School of Medicine, Palo Alto, California 94303, United States.

Chemical Engineering, Stanford University, Stanford, California 94305, United States.

出版信息

ACS Appl Bio Mater. 2023 May 15;6(5):1787-1797. doi: 10.1021/acsabm.3c00015. Epub 2023 May 1.

Abstract

Bioengineered corneal tissue is a promising therapeutic modality for the treatment of corneal blindness as a substitute for cadaveric graft tissue. In this study, we fabricated a collagen gel using ultraviolet-A (UV-A) light and riboflavin as a photosensitizer (PhotoCol-RB) as an -forming matrix to fill corneal wounds and create a cohesive interface between the crosslinked gel and adjacent collagen. The PhotoCol-RB gels supported corneal epithelialization and exhibited higher transparency compared to physically crosslinked collagen. We showed that different riboflavin concentrations yielded gels with different mechanical and biological properties. experiments using human corneal epithelial cells (hCECs) showed that hCECs are able to proliferate on the gel and express corneal cell markers such as cytokeratin 12 (CK12) and tight junctions (ZO-1). Using an burst assay, we also showed that the PhotoCol-RB gels are able to seal corneal perforations. organ culture of the gels filling lamellar keratectomy wounds showed that the epithelium that regenerated over the PhotoCol-RB gels formed a multilayer compared to just a double layer for those that grew over physically cross-linked collagen. These gels can be formed either directly on the wound site to conform to the geometry of a defect, or can be preformed and then applied to the corneal wound. Our results indicate that PhotoCol-RB gels merit further investigation as a way to stabilize and repair deep and perforating corneal wounds.

摘要

生物工程角膜组织是一种很有前途的治疗方法,可作为尸体移植物的替代品,用于治疗角膜盲。在这项研究中,我们使用紫外线-A(UV-A)光和核黄素作为光敏剂(PhotoCol-RB)制造了胶原凝胶,作为一种形成基质,用于填充角膜伤口,并在交联凝胶和相邻胶原之间形成有凝聚力的界面。PhotoCol-RB 凝胶支持角膜上皮化,并且与物理交联的胶原相比具有更高的透明度。我们表明,不同的核黄素浓度会产生具有不同机械和生物学特性的凝胶。使用人角膜上皮细胞(hCEC)的实验表明,hCEC 能够在凝胶上增殖,并表达角膜细胞标志物,如细胞角蛋白 12(CK12)和紧密连接(ZO-1)。使用 爆发测定,我们还表明,PhotoCol-RB 凝胶能够密封角膜穿孔。凝胶对板层角膜切除术伤口的器官培养表明,在 PhotoCol-RB 凝胶上再生的上皮形成了多层,而在物理交联胶原上生长的上皮仅形成了双层。这些凝胶可以直接在伤口部位形成,以适应缺陷的几何形状,也可以预先形成,然后应用于角膜伤口。我们的结果表明,PhotoCol-RB 凝胶值得进一步研究,作为一种稳定和修复深层和穿孔性角膜伤口的方法。

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