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三维丝素-明胶/硫酸软骨素/透明质酸-芦荟支架支持骨髓间充质干细胞的体外软骨生成,并减少炎症作用。

Three-dimensional silk fibroin-gelatin/chondroitin sulfate/hyaluronic acid-aloe vera scaffold supports in vitro chondrogenesis of bone marrow mesenchymal stem cells and reduces inflammatory effect.

机构信息

Biomedical Sciences, Graduate School, Khon Kaen University, Khon Kaen, Thailand.

School of Medical Technology, Faculty of Associated Medical Sciences, Khon Kaen University, Khon Kaen, Thailand.

出版信息

J Biomed Mater Res B Appl Biomater. 2023 Aug;111(8):1557-1570. doi: 10.1002/jbm.b.35254. Epub 2023 Mar 29.

DOI:10.1002/jbm.b.35254
PMID:36988305
Abstract

A limited self-healing ability of injured articular cartilage results in osteoarthritis and a joint dysfunction afterward. Cartilage tissue engineering is a promising approach to increase the treatment efficiency. Moreover, host response to implanted biomaterial has been increasingly concerned. Thus, this study aimed to establish three-dimensional (3D) scaffold that could support cartilage tissue engineering and reduce inflammatory. The various ratios of silk fibroin (SF), gelatin (G), chondroitin sulfate (C), hyaluronic acid (H), and aloe vera (A) were used to fabricate 3D scaffolds by lyophilization, designated as SF, SF-A, SF-gelatin/chondroitin sulfate/hyaluronic acid (GCH)-A-411, and SF-GCH-A-111. The physical and biological characteristics of the scaffolds were investigated. All scaffolds possessed interconnected porous structures, which the highest pore size of 209 μm was found in SF and SF-GCH-A-411 scaffolds. Moreover, high porosity, high water uptake, and good mechanical strength were observed in the SF-GCH-A-411 scaffold. The SF, SF-A, and SF-GCH-A-411 scaffolds could retain their structures up to 21 days, while SF-GCH-A-111 was rapidly degraded. The proliferation of human bone marrow mesenchymal stem cells (BM-MSCs) was significantly higher in SF-A and SF-GCH-A-411 than in the SF scaffold. Besides, the SF-A and SF-GCH-A-411 revealed significantly lower expression of pro-inflammatory cytokine, interleukin-1 beta than the SF scaffold, suggesting the beneficial role of aloe vera in anti-inflammatory effect. Furthermore, the SF-GCH-A-411 scaffold could support chondrogenic differentiation of BM-MSCs. In conclusion, based on its superior physical and biological characteristics that support chondrogenesis of BM-MSCs, the SF-GCH-A-411 scaffold is recommended for cartilage tissue engineering.

摘要

受伤的关节软骨的自我修复能力有限,导致随后发生骨关节炎和关节功能障碍。软骨组织工程是一种提高治疗效率的有前途的方法。此外,宿主对植入生物材料的反应越来越受到关注。因此,本研究旨在建立一种能够支持软骨组织工程和减少炎症的三维(3D)支架。通过冷冻干燥,使用不同比例的丝素蛋白(SF)、明胶(G)、硫酸软骨素(C)、透明质酸(H)和芦荟(A)来制备 3D 支架,分别命名为 SF、SF-A、SF-明胶/硫酸软骨素/透明质酸(GCH)-A-411 和 SF-GCH-A-111。研究了支架的物理和生物学特性。所有支架都具有相互连接的多孔结构,其中 SF 和 SF-GCH-A-411 支架的最大孔径为 209μm。此外,SF-GCH-A-411 支架具有较高的孔隙率、较高的吸水率和良好的机械强度。SF、SF-A 和 SF-GCH-A-411 支架可以保持其结构长达 21 天,而 SF-GCH-A-111 支架则迅速降解。人骨髓间充质干细胞(BM-MSCs)在 SF-A 和 SF-GCH-A-411 支架中的增殖明显高于 SF 支架。此外,SF-A 和 SF-GCH-A-411 支架中促炎细胞因子白细胞介素-1β的表达明显低于 SF 支架,表明芦荟在抗炎作用中的有益作用。此外,SF-GCH-A-411 支架可以支持 BM-MSCs 的软骨分化。总之,基于其支持 BM-MSCs 软骨形成的优越物理和生物学特性,SF-GCH-A-411 支架被推荐用于软骨组织工程。

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