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首页> 外文期刊>Stem Cells >Novel hyperactive transposons for genetic modification of induced pluripotent and adult stem cells: a nonviral paradigm for coaxed differentiation.
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Novel hyperactive transposons for genetic modification of induced pluripotent and adult stem cells: a nonviral paradigm for coaxed differentiation.

机译:用于诱导多能干细胞和成体干细胞的基因修饰的新型高活性转座子:同轴分化的非病毒范式。

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Adult stem cells and induced pluripotent stem cells (iPS) hold great promise for regenerative medicine. The development of robust nonviral approaches for stem cell gene transfer would facilitate functional studies and potential clinical applications. We have previously generated hyperactive transposases derived from Sleeping Beauty, using an in vitro molecular evolution and selection paradigm. We now demonstrate that these hyperactive transposases resulted in superior gene transfer efficiencies and expression in mesenchymal and muscle stem/progenitor cells, consistent with higher expression levels of therapeutically relevant proteins including coagulation factor IX. Their differentiation potential and karyotype was not affected. Moreover, stable transposition could also be achieved in iPS, which retained their ability to differentiate along neuronal, cardiac, and hepatic lineages without causing cytogenetic abnormalities. Most importantly, transposon-mediated delivery of the myogenic PAX3 transcription factor into iPS coaxed their differentiation into MYOD(+) myogenic progenitors and multinucleated myofibers, suggesting that PAX3 may serve as a myogenic "molecular switch" in iPS. Hence, this hyperactive transposon system represents an attractive nonviral gene transfer platform with broad implications for regenerative medicine, cell and gene therapy.
机译:成人干细胞和诱导性多能干细胞(iPS)对于再生医学具有广阔的前景。用于干细胞基因转移的可靠的非病毒方法的发展将促进功能研究和潜在的临床应用。我们以前使用体外分子进化和选择范例,产生了源自《睡美人》的高活性转座酶。我们现在证明,这些过度活跃的转座酶在间充质和肌肉干/祖细胞中产生了优异的基因转移效率和表达,与治疗相关蛋白(包括凝血因子factor)的更高表达水平相一致。它们的分化潜力和核型不受影响。此外,在iPS中也可以实现稳定的转座,iPS保留了它们沿神经元,心脏和肝脏谱系分化的能力,而不会引起细胞遗传学异常。最重要的是,转座子介导的成肌PAX3转录因子向iPS的传递诱使它们分化为MYOD(+)成肌祖细胞和多核肌纤维,这表明PAX3可能在iPS中充当成肌“分子开关”。因此,这种过度活跃的转座子系统代表了一个有吸引力的非病毒基因转移平台,对再生医学,细胞和基因治疗具有广泛的意义。

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