Rapid and highly efficient mammalian cell engineering via Cas9 protein transfection

Быстрая и высокоэффективная инженерия клеток млекопитающих посредством трансфекции белком Cas9
Shantanu Kumar, Wen Chen, Xiquan Liang, Jason Potter, Yanfei Zou, Rene H. Quintanilla, Mahalakshmi Sridharan, Jason Carte, Natasha Roark, Sridhar Ranganathan, Namritha Ravinder, Jonathan D. Chesnut
2015-05-21

CRISPR-Cas9 genome editingCas9 protein transfectionCas9 ribonucleoprotein complexesMammalian cell engineeringMultiplexed genome engineering
CRISPR-Cas9 systems provide a platform for high efficiency genome editing that are enabling innovative applications of mammalian cell engineering. However, the delivery of Cas9 and synthesis of guide RNA (gRNA) remain as steps that can limit overall efficiency and ease of use. Here we describe methods for rapid synthesis of gRNA and for delivery of Cas9 protein/gRNA ribonucleoprotein complexes (Cas9 RNPs) into a variety of mammalian cells through liposome-mediated transfection or electroporation. Using these methods, we report nuclease-mediated indel rates of up to 94% in Jurkat T cells and 87% in induced pluripotent stem cells (iPSC) for a single target. When we used this approach for multigene targeting in Jurkat cells we found that two-locus and three-locus indels were achieved in approximately 93% and 65% of the resulting isolated cell lines, respectively. Further, we found that the off-target cleavage rate is reduced using Cas9 protein when compared to plasmid DNA transfection. Taken together, we present a streamlined cell engineering workflow that enables gRNA design to analysis of edited cells in as little as four days and results in highly efficient genome modulation in hard-to-transfect cells. The reagent preparation and delivery to cells is amenable to high throughput, multiplexed genome-wide cell engineering.
1
Cas9 RNP delivery achieved nuclease-mediated indel rates of up to 94% in Jurkat T cells and 87% in induced pluripotent stem cells for single targets.
2
Cas9 protein delivery reduced off-target cleavage compared with plasmid DNA transfection.
3
Multiplex targeting in Jurkat cells produced two-locus indels in approximately 93% and three-locus indels in approximately 65% of isolated cell lines.
4
The study establishes rapid gRNA synthesis and Cas9 RNP delivery by liposome transfection or electroporation across diverse mammalian cell types.
5
The workflow enables gRNA design through edited-cell analysis in as little as four days and supports high-throughput multiplexed engineering of hard-to-transfect cells.

Mammalian cells, including Jurkat T cells and induced pluripotent stem cells, engineered using Cas9 RNP transfection

The efficiency, multiplexing capability, speed, and off-target cleavage of Cas9 RNP-mediated genome editing

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2015-05-21
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Authors
Shantanu Kumar
Wen Chen
Xiquan Liang
Jason Potter
Yanfei Zou
Rene H. Quintanilla
Mahalakshmi Sridharan
Jason Carte
Natasha Roark
Sridhar Ranganathan
Namritha Ravinder
Jonathan D. Chesnut
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