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Combining CRISPR/Cas9-mediated knockout with genetic complementation for in-depth mechanistic studies in human ES cells

机译:将CRISPR / CAS9介导的敲除与遗传互补进行人ES细胞的深入机械研究

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摘要

Gene regulatory networks that control pluripotency of human embryonic stem cells (hESCs) are of considerable interest for regenerative medicine. RNAi and CRISPR/Cas9 technologies have allowed the identification of hESC regulators on a genome-wide scale. However, these technologies are ill-suited for mechanistic studies because knockdown/knockout clones of essential genes do not grow in culture. We have developed a genetic rescue strategy that combines CRISPR/Cas9-mediated knockout with TALEN-mediated integration of a doxycycline-inducible rescue transgene into a constitutive AASV1 locus. The resulting rescue clones are stable in culture, allow modulation of the rescue transgene dosage by titration of doxycycline in the media and can be combined with various molecular assays, thus providing mechanistic insights into gene function in a variety of cellular contexts.
机译:对人胚胎干细胞(HESC)控制多能性的基因调节网络对再生医学具有相当大的兴趣。 RNAI和CRISPR / CAS9技术允许在全基因组规模上识别HESC调节因子。 然而,这些技术对机械研究不适合,因为基本基因的敲低/敲除克隆不会在培养中生长。 我们开发了一种遗传救援策略,将CRISPR / CAS9介导的敲除与TALEN介导的十氧化霉素诱导救援转基因的晶胞型诱导转基因集成到组成型AASV1基因座中。 所得到的救援克隆在培养中稳定,允许通过在培养基中滴定强霉素的救援转基因剂量,并可以与各种分子测定结合,从而在各种细胞环境中向基因函数提供机械洞察力。

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