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鱼鳞胶原层状基质作为人工角膜的初步研究

Preliminary Study on Fish Scale Collagen Lamellar Matrix as Artificial Cornea.

作者信息

Cheng Guoping, Chen Liang, Feng Huanhuan, Jiang Bo, Ding Yi

机构信息

Department of Periodontics, West China College of Stomatology, Sichuan University, Chengdu 610041, China.

State Key Laboratory of Oral Diseases, Sichuan University, Chengdu 610041, China.

出版信息

Membranes (Basel). 2021 Sep 28;11(10):737. doi: 10.3390/membranes11100737.

Abstract

To construct a novel artificial cornea biomaterial, a method to prepare collagen lamellar matrix was developed in this study using grass carp scales as raw materials. The relationship between the structure of fish scale collagen lamellar matrix and the optical and mechanical properties was analyzed, and co-culture of it and rat bone marrow mesenchymal stem cells (BMSCs) was performed to preliminarily analyze the cellular compatibility of fish scale collagen lamellar matrix. The results show that the grass carp scales could be divided into base region, lateral region and parietal region according to the surface morphology. The inorganic calcium in the surface layer could be effectively removed by decalcification, and the decalcification rate could reach 99%. After etching treatment, homogeneous collagen lamellar matrix could be obtained. With the decalcification and etching treatment, the water content of the sample increased gradually, but the cross-linking treatment had no obvious effect on the water content of fish scale collagen lamellar matrix. Fish scale collagen lamellar matrix has good transparency, refractive index, mechanical properties and cellular compatibility, which may represent a prospect for the construction of cornea tissue engineering products.

摘要

为构建一种新型人工角膜生物材料,本研究开发了一种以草鱼鳞片为原料制备胶原层状基质的方法。分析了鱼鳞胶原层状基质的结构与光学和力学性能之间的关系,并将其与大鼠骨髓间充质干细胞(BMSCs)进行共培养,以初步分析鱼鳞胶原层状基质的细胞相容性。结果表明,草鱼鳞片根据表面形态可分为基部区域、侧面区域和顶部区域。通过脱钙可有效去除表层的无机钙,脱钙率可达99%。经过蚀刻处理后,可获得均匀的胶原层状基质。随着脱钙和蚀刻处理,样品的含水量逐渐增加,但交联处理对鱼鳞胶原层状基质的含水量没有明显影响。鱼鳞胶原层状基质具有良好的透明度、折射率、力学性能和细胞相容性,这可能为角膜组织工程产品的构建提供前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/564f/8540030/1db8a033b3f0/membranes-11-00737-g001.jpg

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