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3D 生物打印与原代骨骼肌祖细胞的分化。

3D Bioprinting and Differentiation of Primary Skeletal Muscle Progenitor Cells.

机构信息

Department of Surgery, St Vincent's Hospital Melbourne, The University of Melbourne, Melbourne, VIC, Australia.

@BioFab3D Facility, St Vincent's Hospital Melbourne, Melbourne, VIC, Australia.

出版信息

Methods Mol Biol. 2020;2140:229-242. doi: 10.1007/978-1-0716-0520-2_15.

Abstract

Volumetric loss of skeletal muscle can occur through sports injuries, surgical ablation, trauma, motor or industrial accident, and war-related injury. Likewise, massive and ultimately catastrophic muscle cell loss occurs over time with progressive degenerative muscle diseases, such as the muscular dystrophies. Repair of volumetric loss of skeletal muscle requires replacement of large volumes of tissue to restore function. Repair of larger lesions cannot be achieved by injection of stem cells or muscle progenitor cells into the lesion in absence of a supportive scaffold that (1) provides trophic support for the cells and the recipient tissue environment, (2) appropriate differentiational cues, and (3) structural geometry for defining critical organ/tissue components/niches necessary or a functional outcome. 3D bioprinting technologies offer the possibility of printing orientated 3D structures that support skeletal muscle regeneration with provision for appropriately compartmentalized components ranging across regenerative to functional niches. This chapter includes protocols that provide for the generation of robust skeletal muscle cell precursors and methods for their inclusion into methacrylated gelatin (GelMa) constructs using 3D bioprinting.

摘要

骨骼肌体积的损失可能由运动损伤、手术消融、创伤、运动或工业事故以及与战争相关的损伤引起。同样,随着进行性退行性肌肉疾病(如肌肉营养不良症)的发展,大量且最终灾难性的肌肉细胞损失会逐渐发生。骨骼肌体积损失的修复需要替换大量组织以恢复功能。如果没有支持性支架,仅将干细胞或肌肉祖细胞注射到病变部位,是无法修复较大的病变的,这种支架(1)为细胞和受区组织环境提供营养支持,(2)提供适当的分化线索,以及(3)为定义对功能性结果至关重要的器官/组织成分/小生境的结构几何形状。3D 生物打印技术提供了打印定向 3D 结构的可能性,这些结构支持骨骼肌再生,并为从再生到功能小生境的适当分区组件提供了条件。本章包括生成健壮的骨骼肌细胞前体的方案,并提供了使用 3D 生物打印将其纳入甲基丙烯酰化明胶(GelMa)构建体的方法。

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