纤维软骨
自愈水凝胶
材料科学
组织工程
琼脂糖
生物医学工程
弯月面
3D生物打印
3d打印
糖胺聚糖
脚手架
Ⅰ型胶原
甲基丙烯酸酯
细胞外基质
软骨
化学工程
化学
3D打印
明胶
解剖
生物加工
生物物理学
复合材料
三维细胞培养
生物材料
关节软骨
高分子化学
聚合物
骨关节炎
色谱法
光学
生物
病理
替代医学
内分泌学
物理
医学
入射(几何)
共聚物
作者
Gökhan Bahçecioğlu,Nesrin Hasırcı,Bahar Bilgen,Vasıf Hasirci
出处
期刊:Biofabrication
[IOP Publishing]
日期:2019-01-16
卷期号:11 (2): 025002-025002
被引量:84
标识
DOI:10.1088/1758-5090/aaf707
摘要
Engineering the meniscus is challenging due to its bizonal structure; the tissue is cartilaginous at the inner portion and fibrous at the outer portion. Here, we constructed an artificial meniscus mimicking the biochemical organization of the native tissue by 3D printing a meniscus shaped PCL scaffold and then impregnating it with agarose (Ag) and gelatin methacrylate (GelMA) hydrogels in the inner and outer regions, respectively. After incubating the constructs loaded with porcine fibrochondrocytes for 8 weeks, we demonstrated that presence of Ag enhanced glycosaminoglycan (GAG) production by about 4 fold (p < 0.001), while GelMA enhanced collagen production by about 50 fold (p < 0.001). In order to mimic the physiological loading environment, meniscus shaped PCL/hydrogel constructs were dynamically stimulated at strain levels gradually increasing from the outer region (2% of initial thickness) towards the inner region (10%). Incorporation of hydrogels protected the cells from the mechanical damage caused by dynamic stress. Dynamic stimulation resulted in increased ratio of collagen type II (COL 2) in the Ag-impregnated inner region (from 50% to 60% of total collagen), and increased ratio of collagen type I (COL 1) in the GelMA-impregnated outer region (from 60% to 70%). We were able to engineer a meniscus, which is cartilage-like at the inner portion and fibrocartilage-like at the outer portion. Our construct has a potential for use as a substitute for total meniscus replacement.
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