材料科学
弯月面
去细胞化
生物相容性
生物医学工程
组织工程
脚手架
细胞外基质
医学
化学
生物化学
入射(几何)
光学
物理
冶金
作者
Suhun Chae,Sung‐Sahn Lee,Yeong‐Jin Choi,Da Hee Hong,Ge Gao,Joon Ho Wang,Dong‐Woo Cho
出处
期刊:Biomaterials
[Elsevier]
日期:2020-10-20
卷期号:267: 120466-120466
被引量:103
标识
DOI:10.1016/j.biomaterials.2020.120466
摘要
Meniscus injuries are prevalent in orthopedic diagnosis. The reconstruction of the structural inhomogeneity and anisotropy of the meniscus is a major challenge in clinical practice. Meniscal tissue engineering has emerged as a potential alternative for the treatment of various meniscal diseases and injuries. In this study, we developed three-dimensional (3D) cell-printed meniscus constructs using a mixture of polyurethane and polycaprolactone polymers and cell-laden decellularized meniscal extracellular matrix (me-dECM) bioink with high controllability and durable architectural integrity. The me-dECM bioink provided 3D cell-printed meniscus constructs with a conducive biochemical environment that supported growth and promoted the proliferation and differentiation of encapsulated stem cells toward fibrochondrogenic commitment. In addition, we investigated the in vivo performance of the 3D cell-printed meniscus constructs, which exhibited biocompatibility, excellent mechanical properties, and improved biological functionality. These attributes were similar to those of the native meniscus. Collectively, the 3D cell-printing technology and me-dECM bioink facilitate the recapitulation of meniscus tissue specificity in the aspect of the shape and microenvironment for meniscus regeneration. Further, the developed constructs can potentially be applied in clinical practice.
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