骨骼肌
再生(生物学)
细胞外基质
束
再生医学
组织工程
肌肉组织
材料科学
解剖
心肌细胞
生物医学工程
细胞生物学
生物
干细胞
医学
作者
Yoonhee Jin,Eun Je Jeon,Sohyeon Jeong,Sungjin Min,Yi Sun Choi,Kim Ys,Jung Seung Lee,Jisoo Shin,Ji Hea Yu,Da‐Hee Ahn,Yun‐Gon Kim,Hee Seok Yang,Taek Jin Kang,Sung‐Rae Cho,Nakwon Choi,Seung‐Woo Cho
标识
DOI:10.1002/adfm.202006227
摘要
Abstract Tissue engineering of skeletal muscle has been proposed as a potential regenerative treatment for extensive muscle damage. In this regard, the highly organized structure of skeletal muscles makes the alignment of cells especially indispensable in muscle tissue engineering. However, achieving the desired alignment continues to prove challenging, particularly in 3D engineered tissue constructs. In this study, a biomimetic approach for the generation of functional skeletal muscle fascicle‐like tissues by recapitulating 3D muscle‐like cellular and extracellular organization, is demonstrated. Anisotropic 3D alignment of muscle extracellular matrix (MEM) nanofibrils capable of providing a pro‐myogenic microenvironment by regulating the kinetics of fibrillogenesis in a stretchable elastomeric chip, is achieved. Reprogrammed muscle progenitor cells develop myofibers along the aligned MEM nanofibrils in a 3D configuration, culminating in the structural and functional maturation of skeletal muscle. The resultant 3D muscle fascicle‐like constructs support de novo muscle regeneration and induce functional restoration of injured muscles in animal models inflicted with volumetric muscle loss and congenital muscular dystrophy. This study not only highlights the fundamental roles of the muscle–mimetic structural guidance cues for 3D muscle tissue engineering, but also unveils the clinical potential of artificial muscle constructs in regenerative medicine.
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