首页> 外文期刊>Acta biomaterialia >Synthesis and characterization of collagen/hyaluronan/chitosan composite sponges for potential biomedical applications.
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Synthesis and characterization of collagen/hyaluronan/chitosan composite sponges for potential biomedical applications.

机译:胶原/透明质酸/壳聚糖复合海绵的合成和表征,可用于潜在的生物医学应用。

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摘要

Cells, scaffolds and growth factors are three main components of a tissue-engineered construct. Collagen type I, a major protein of the extracellular matrix (ECM) in mammals, is a suitable scaffold material for regeneration. Another important constituent of the ECM, hyaluronic acid (hyaluronan, HA), has been used for medical purposes due to its hydrogel properties and biodegradability. Chitosan is a linear polysaccharide comprised of beta1- to beta4-linked d-glucosamine residues, and its potential as a biomaterial is based on its cationic nature and high charge density in solution. This study was conducted to evaluate the characteristics of scaffolds composed of different ratios of type I comb collagen and chitosan with added HA in order to obtain the optimum conditions for the manufacture of collagen-hyaluronan-chitosan (Col-HA-Ch; comprising collagen, HA and chitosan mixed in different ratios: 10:1:0, Col10HACh0; 9:1:1, Col9HACh1; 8:1:2, Col8HACh2; 7:1:3, Col7HACh3; 6:1:4, Col6HACh4; and 5:1:5, Col5HACh5) composite porous scaffolds. Microstructural observation of the composite scaffolds was performed using scanning electron microscopy. The mean pore diameters ranged from 120 to 182microm and decreased as the chitosan composition increased. All scaffolds showed high pore interconnectivity. Swelling ratio measurements showed that all specimens could bind 35- to 40-fold of physiological fluid and still maintain their form and stability. For tensile strength, the optimal ratio of collagen and chitosan was 9:1. Thermal stability was investigated using a differential scanning calorimeter and showed that Col5HACh5 and Col6HACh4 were significantly more stable than the other groups. In enzymatic sensitivity, a steady increase in the biostability of the scaffolds was achieved as the chitosan concentration was increased. In biocompatibility testing, the proliferation of the fibroblasts cultured in Co-HA-Ch tri-copolymer scaffolds was high. Overall, we observed the 9:1:1 mixing ratio of collagen, hyaluronan and chitosan to be optimal for the manufacture of complex scaffolds. Furthermore, Col-HA-Ch tri-polymer scaffolds, especially Col9HACh1, could be developed as a suitable scaffold material for tissue engineering applications.
机译:细胞,支架和生长因子是组织工程构建体的三个主要组成部分。 I型胶原蛋白是哺乳动物细胞外基质(ECM)的主要蛋白质,是适合再生的支架材料。 ECM的另一个重要组成部分,透明质酸(透明质酸,HA)因其水凝胶特性和可生物降解性而被用于医疗目的。壳聚糖是由β1至β4连接的d-葡萄糖胺残基组成的线性多糖,其作为生物材料的潜力基于其阳离子性质和溶液中的高电荷密度。进行这项研究是为了评估由不同比例的I型梳状胶原蛋白和脱乙酰壳多糖加HA组成的支架的特性,从而为制造胶原蛋白-透明质酸-壳聚糖(Col-HA-Ch;包含胶原蛋白, HA和壳聚糖以不同的比例混合:10:1:0,Col10HACh0; 9:1:1,Col9HACh1; 8:1:2,Col8HACh2; 7:1:3,Col7HACh3; 6:1:4,Col6HACh4;和5 :1:5,Col5HACh5)复合多孔支架。使用扫描电子显微镜对复合支架进行微观结构观察。平均孔径为120至182微米,并随着壳聚糖组成的增加而减小。所有支架均显示出高的孔互连性。溶胀率测量表明,所有标本都可以结合35至40倍的生理液,并且仍保持其形态和稳定性。对于拉伸强度,胶原蛋白和壳聚糖的最佳比例为9:1。使用差示扫描量热仪对热稳定性进行了研究,结果表明Col5HACh5和Col6HACh4的稳定性明显高于其他组。在酶敏感性方面,随着壳聚糖浓度的增加,支架的生物稳定性稳定增加。在生物相容性测试中,在Co-HA-Ch三共聚物支架中培养的成纤维细胞的增殖很高。总体而言,我们观察到胶原蛋白,透明质酸和壳聚糖的9:1:1混合比例是制造复杂支架的最佳选择。此外,Col-HA-Ch三元聚合物支架,尤其是Col9HACh1,可以开发为适合组织工程应用的支架材料。

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