新型鱿鱼角斗士角膜组织工程生物材料的研制。

IF 4.9 2区 医学 Q1 CHEMISTRY, MEDICINAL
Marine Drugs Pub Date : 2024-11-28 DOI:10.3390/md22120535
Ingrid Garzón, Juan Muñoz-Hurtado, Juan Pereira-Martínez, Ana M Ionescu, Juan de la Cruz Cardona, María Tejada-Casado, María Del Mar Pérez, Fernando Campos, Jesús Chato-Astrain, Miguel Alaminos
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引用次数: 0

摘要

角膜组织工程严格依赖于满足该器官严格的生物相容性、生物力学和光学要求的生物材料的发展。本文从剑乌贼(squid gladius, SG)中制备了新型生物材料,并对其在角膜组织工程中的应用进行了评价。结果显示,天然SG (N-SG)在实验动物中具有生物相容性,尽管该材料会引起局部炎症反应。细胞化生物材料(C-SG)表明,这种生物材料为细胞附着和生长提供了足够的底物,在这种生物材料上培养的角膜上皮细胞能够表达晶体蛋白α,这是这种类型细胞的标记物。生物力学分析表明,与对照天然角膜(CTR)相比,N-SG生物材料具有更高的杨氏模量和更低的牵引变形,而C-SG生物材料的杨氏模量与CTR相似。对样品的光学性质分析表明,N-SG和C-SG的漫射透过率高于CTR,而漫射反射率则相反。这些结果证实了人们所假定的这种丰富的海洋生物材料的有用性,这种材料可以作为渔业的副产品获得。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Novel Squid Gladius Biomaterials for Cornea Tissue Engineering.

Cornea tissue engineering is strictly dependent on the development of biomaterials that fulfill the strict biocompatibility, biomechanical, and optical requirements of this organ. In this work, we generated novel biomaterials from the squid gladius (SG), and their application in cornea tissue engineering was evaluated. Results revealed that the native SG (N-SG) was biocompatible in laboratory animals, although a local inflammatory reaction was driven by the material. Cellularized biomaterials (C-SG) demonstrated that the SG provides an adequate substrate for cell attachment and growth, and corneal epithelial cells cultured on this biomaterial were able to express crystallin alpha, a marker for this type of cells. Biomechanical analyses showed that N-SG biomaterials have higher Young modulus and lower traction deformation than control native corneas (CTR), and C-SG showed a similar Young modulus than CTR. Analysis of the optical properties of these samples revealed that the diffuse transmittance of N-SG and C-SG were higher than CTR, with the diffuse reflectance showing the opposite behavior. These results confirm the putative usefulness of this abundant marine-derived biomaterial that can be obtained as a byproduct of the fishing industry.

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来源期刊
Marine Drugs
Marine Drugs 医学-医药化学
CiteScore
9.60
自引率
14.80%
发文量
671
审稿时长
1 months
期刊介绍: Marine Drugs (ISSN 1660-3397) publishes reviews, regular research papers and short notes on the research, development and production of drugs from the sea. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible, particularly synthetic procedures and characterization information for bioactive compounds. There is no restriction on the length of the experimental section.
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