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Rapid and robust generation of long-term self-renewing human neural stem cells with the ability to generate mature astroglia

机译:快速而强大的长期自我更新人类神经干细胞的生成能力能够生成成熟的星形胶质细胞。

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摘要

Induced pluripotent stem cell bear the potential to differentiate into any desired cell type and hold large promise for disease-in-a-dish cell-modeling approaches. With the latest advances in the field of reprogramming technology, the generation of patient-specific cells has become a standard technology. However, directed and homogenous differentiation of human pluripotent stem cells into desired specific cell types remains an experimental challenge. Here, we report the development of a novel hiPSCs-based protocol enabling the generation of expandable homogenous human neural stem cells (hNSCs) that can be maintained under self-renewing conditions over high passage numbers. Our newly generated hNSCs retained differentiation potential as evidenced by the reliable generation of mature astrocytes that display typical properties as glutamate up-take and expression of aquaporin-4. The hNSC-derived astrocytes showed high activity of pyruvate carboxylase as assessed by stable isotope assisted metabolic profiling. Moreover, using a cell transplantation approach, we showed that grafted hNSCs were not only able to survive but also to differentiate into astroglial in vivo. Engraftments of pluripotent stem cells derived from somatic cells carry an inherent tumor formation potential. Our results demonstrate that hNSCs with self-renewing and differentiation potential may provide a safer alternative strategy, with promising applications especially for neurodegenerative disorders.
机译:诱导的多能干细胞具有分化为任何所需细胞类型的潜力,并有望为盘中疾病细胞建模方法提供广阔前景。随着重编程技术领域的最新进展,患者特异性细胞的生成已成为一种标准技术。然而,将人多能干细胞定向和同质分化成所需的特定细胞类型仍然是一项实验挑战。在这里,我们报告了一种新型的基于hiPSCs的协议的发展,该协议能够生成可扩展的同质人类神经干细胞(hNSCs),该细胞可以在自我更新条件下维持较高的传代次数。我们的新生成的hNSC保留了分化潜能,成熟的星形胶质细胞的可靠生成证明了这一点,这些星形胶质细胞具有谷氨酸吸收和aquaporin-4表达的典型特性。通过稳定的同位素辅助代谢谱分析,源自hNSC的星形胶质细胞显示出丙酮酸羧化酶的高活性。此外,使用细胞移植方法,我们显示嫁接的hNSCs不仅能够存活,而且在体内也可以分化为星形胶质细胞。来自体细胞的多能干细胞的移植具有固有的肿瘤形成潜能。我们的结果表明,具有自我更新和分化潜能的hNSC可能提供更安全的替代策略,尤其是在神经退行性疾病中具有广阔的应用前景。

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