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首页> 外文期刊>Stem cell research >A human iPS cell myogenic differentiation system permitting high-throughput drug screening - ScienceDirect
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A human iPS cell myogenic differentiation system permitting high-throughput drug screening - ScienceDirect

机译:允许高通量药物筛选的人iPS细胞肌原性分化系统-ScienceDirect

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Muscular dystrophy is a disease characterized by progressive muscle weakness and degeneration. There are currently no available treatments for most muscular diseases, such as muscular dystrophy. Moreover, current therapeutics are focused on improving the quality of life of patients by relieving the symptoms or stress caused by the disease. Although the causative genes for many muscular diseases have been identified, the mechanisms underlying their pathogenesis remain unclear. Patient-derived induced pluripotent stem cells (iPSCs) have become a powerful tool for understanding the pathogenesis of intractable diseases, as well as for phenotype screening, which can serve as the basis for developing new drugs. However, it is necessary to develop an efficient and reproducible myogenic differentiation system. Previously, we reported a tetracycline-inducible MyoD overexpression model of myogenic differentiation using human iPSCs (hiPSCs). However, this model has certain disadvantages that limit its use in various applications, such as a drug screening. In this study, we developed an efficient and reproducible myogenic differentiation system by further modifying our previous protocol. The new protocol achieves efficient differentiation of feeder-free hiPSCs to myogenic cells via small-scale culture in six-well microplates to large-scale culture in 384-well microplates for high-throughput applications.
机译:肌营养不良是一种以进行性肌无力和变性为特征的疾病。当前没有针对大多数肌肉疾病例如肌肉营养不良的可用疗法。此外,当前的疗法集中在通过减轻由疾病引起的症状或压力来改善患者的生活质量。尽管已经确定了许多肌肉疾病的致病基因,但其发病机理仍不清楚。患者来源的诱导性多能干细胞(iPSC)已成为了解顽固性疾病的发病机理以及进行表型筛选的有力工具,可作为开发新药的基础。但是,有必要开发一种有效且可重现的成肌分化系统。以前,我们报告了使用人iPSC(hiPSC)进行成肌分化的四环素诱导型MyoD过表达模型。但是,该模型具有某些缺点,限制了其在各种应用中的使用,例如药物筛选。在这项研究中,我们通过进一步修改我们以前的协议,开发了一种高效且可重现的肌原性分化系统。新协议通过六孔微孔板中的小规模培养到384孔微孔板中的大批量培养以实现高通量应用,实现了无饲养层的hiPSC高效分化为成肌细胞。

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