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3D 人诱导多能干细胞衍生的生物工程化骨骼肌用于组织、疾病和治疗建模。

3D human induced pluripotent stem cell-derived bioengineered skeletal muscles for tissue, disease and therapy modeling.

机构信息

Department of Cell and Developmental Biology, University College London, London, UK.

The Francis Crick Institute, London, UK.

出版信息

Nat Protoc. 2023 Apr;18(4):1337-1376. doi: 10.1038/s41596-022-00790-8. Epub 2023 Feb 15.

DOI:10.1038/s41596-022-00790-8
PMID:36792780
Abstract

Skeletal muscle is a complex tissue composed of multinucleated myofibers responsible for force generation that are supported by multiple cell types. Many severe and lethal disorders affect skeletal muscle; therefore, engineering models to reproduce such cellular complexity and function are instrumental for investigating muscle pathophysiology and developing therapies. Here, we detail the modular 3D bioengineering of multilineage skeletal muscles from human induced pluripotent stem cells, which are first differentiated into myogenic, neural and vascular progenitor cells and then combined within 3D hydrogels under tension to generate an aligned myofiber scaffold containing vascular networks and motor neurons. 3D bioengineered muscles recapitulate morphological and functional features of human skeletal muscle, including establishment of a pool of cells expressing muscle stem cell markers. Importantly, bioengineered muscles provide a high-fidelity platform to study muscle pathology, such as emergence of dysmorphic nuclei in muscular dystrophies caused by mutant lamins. The protocol is easy to follow for operators with cell culture experience and takes between 9 and 30 d, depending on the number of cell lineages in the construct. We also provide examples of applications of this advanced platform for testing gene and cell therapies in vitro, as well as for in vivo studies, providing proof of principle of its potential as a tool to develop next-generation neuromuscular or musculoskeletal therapies.

摘要

骨骼肌是一种由负责产生力量的多核肌纤维组成的复杂组织,这些肌纤维由多种细胞类型支持。许多严重和致命的疾病都会影响骨骼肌;因此,构建能够再现这种细胞复杂性和功能的工程模型对于研究肌肉病理生理学和开发治疗方法至关重要。在这里,我们详细介绍了从人诱导多能干细胞中模块化 3D 生物工程构建多谱系骨骼肌的方法,首先将其分化为肌源性、神经源性和血管祖细胞,然后在张力下将它们组合在 3D 水凝胶中,以生成包含血管网络和运动神经元的排列整齐的肌纤维支架。3D 生物工程化的肌肉再现了人类骨骼肌的形态和功能特征,包括建立表达肌肉干细胞标志物的细胞池。重要的是,生物工程化的肌肉为研究肌肉病理学提供了一个高保真度的平台,例如由突变层粘连蛋白引起的肌肉营养不良症中出现畸形核。对于有细胞培养经验的操作人员来说,该方案易于遵循,并且根据构建体中细胞谱系的数量,需要 9 到 30 天的时间。我们还提供了该先进平台在体外测试基因和细胞治疗以及体内研究中的应用示例,为其作为开发下一代神经肌肉或肌肉骨骼治疗方法的工具的潜力提供了原理证明。

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