4.8 Article

Highly efficient genome editing via CRISPR-Cas9 in human pluripotent stem cells is achieved by transient BCL-XL overexpression

Journal

NUCLEIC ACIDS RESEARCH
Volume 46, Issue 19, Pages 10195-10215

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/nar/gky804

Keywords

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Funding

  1. Ministry of Science and Technology of China [2015CB964902, 2015CB964400]
  2. National Natural Science Foundation of China [81700183, 81770198, 81500148, 81570164, 81421002, 81870149, 8170018]
  3. CAMS Initiative for Innovative Medicine [2017-I2M-BR-04, 2017-I2M-1-015, 2016-I2M-1-017]
  4. Non-profit Central Research Institute Fund of Chinese Academy of Medical Sciences [2018PT31004, 2016ZX310184-3]
  5. CAMS Key Laboratory of Gene Therapy for Blood Diseases [2017PT31047, 2018PT31038]
  6. Fundamental Research Funds for Central Universities [DUT18ZD301]
  7. Open Research Fund of State Key Laboratory of Bioelectronics, Southeast University [ZX20180025]
  8. Loma Linda University School of Medicine GCAT-2017 [681171-2967]

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Genome editing of human induced pluripotent stem cells (iPSCs) is instrumental for functional genomics, disease modeling, and regenerative medicine. However, low editing efficiency has hampered the applications of CRISPR-Cas9 technology in creating knockin (KI) or knockout (KO) iPSC lines, which is largely due to massive cell death after electroporation with editing plasmids. Here, we report that the transient delivery of BCL-XL increases iPSC survival by similar to 10-fold after plasmid transfection, leading to a 20- to 100-fold increase in homology-directed repair (HDR) KI efficiency and a 5-fold increase in non-homologous end joining (NHEJ) KO efficiency. Treatment with a BCL inhibitor ABT-263 further improves HDR efficiency by 70% and KO efficiency by 40%. The increased genome editing efficiency is attributed to higher expressions of Cas9 and sgRNA in surviving cells after electroporation. HDR or NHEJ efficiency reaches 95% with dual editing followed by selection of cells with HDR insertion of a selective gene. Moreover, KO efficiency of 100% can be achieved in a bulk population of cells with biallelic HDR KO followed by double selection, abrogating the necessity for single cell cloning. Taken together, these simple yet highly efficient editing strategies provide useful tools for applications ranging from manipulating human iPSC genomes to creating gene-modified animal models.

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