从骨骼肌干细胞和诱导多能干细胞衍生的心脏细胞中工程化人类肌肉组织。

Jason Tchao, Jong Jin Kim, Bo Lin, Guy Salama, Cecilia W Lo, Lei Yang, Kimimasa Tobita
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引用次数: 12

摘要

在发育过程中,心肌和骨骼肌共享主要的转录因子和肌节蛋白,这些转录因子和肌节蛋白通常被认为是心肌或骨骼肌所特有的,但在终末分化的成人心肌或骨骼肌中并非都是如此。在这里,我们研究了由人类骨骼肌来源干细胞(MDSCs)构建的人造肌肉是否再现了心脏和骨骼肌之间的发育相似性。我们利用诱导多能干细胞(iPS)衍生的心肌细胞(iPS-EMT)构建了三维胶原基工程肌肉组织(EMT),并与EMT的生化和收缩特性进行了比较。MDSC-EMT和iPS-EMT均表达心肌特异性肌钙蛋白、快速骨骼肌肌球蛋白重链和连接蛋白43,模拟心肌或骨骼肌的发育。在转录水平上,MDSC-EMT和iPS-EMT上调了心脏和骨骼肌特异性基因,表达了Nkx2.5和Myo-D蛋白。MDSC-EMT显示细胞内钙离子瞬态和对异丙肾上腺素的反应。MDSC-EMT的收缩力测量显示了两种组织中未成熟心肌和骨骼肌的功能特性。结果表明,来自MDSCs的EMT模拟了心脏和骨骼肌的发育,可以作为一种有用的体外功能横纹肌模型,用于研究干细胞分化和MDSCs用于心脏修复的治疗选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Engineered Human Muscle Tissue from Skeletal Muscle Derived Stem Cells and Induced Pluripotent Stem Cell Derived Cardiac Cells.

Engineered Human Muscle Tissue from Skeletal Muscle Derived Stem Cells and Induced Pluripotent Stem Cell Derived Cardiac Cells.

Engineered Human Muscle Tissue from Skeletal Muscle Derived Stem Cells and Induced Pluripotent Stem Cell Derived Cardiac Cells.

Engineered Human Muscle Tissue from Skeletal Muscle Derived Stem Cells and Induced Pluripotent Stem Cell Derived Cardiac Cells.

During development, cardiac and skeletal muscle share major transcription factors and sarcomere proteins which were generally regarded as specific to either cardiac or skeletal muscle but not both in terminally differentiated adult cardiac or skeletal muscle. Here, we investigated whether artificial muscle constructed from human skeletal muscle derived stem cells (MDSCs) recapitulates developmental similarities between cardiac and skeletal muscle. We constructed 3-dimensional collagen-based engineered muscle tissue (EMT) using MDSCs (MDSC-EMT) and compared the biochemical and contractile properties with EMT using induced pluripotent stem (iPS) cell-derived cardiac cells (iPS-EMT). Both MDSC-EMT and iPS-EMT expressed cardiac specific troponins, fast skeletal muscle myosin heavy chain, and connexin-43 mimicking developing cardiac or skeletal muscle. At the transcriptional level, MDSC-EMT and iPS-EMT upregulated both cardiac and skeletal muscle-specific genes and expressed Nkx2.5 and Myo-D proteins. MDSC-EMT displayed intracellular calcium ion transients and responses to isoproterenol. Contractile force measurements of MDSC-EMT demonstrated functional properties of immature cardiac and skeletal muscle in both tissues. Results suggest that the EMT from MDSCs mimics developing cardiac and skeletal muscle and can serve as a useful in vitro functioning striated muscle model for investigation of stem cell differentiation and therapeutic options of MDSCs for cardiac repair.

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