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CRISPR-Cas9 cytidine and adenosine base editing of splice-sites mediates highly-efficient disruption of proteins in primary cells

View ORCID ProfileMitchell G. Kluesner, View ORCID ProfileWalker S. Lahr, Cara-Lin Lonetree, View ORCID ProfileBranden A. Smeester, View ORCID ProfilePatricia N. Claudio-Vázquez, View ORCID ProfileSamuel P. Pitzen, Madison J. Vignes, Samantha C. Lee, View ORCID ProfileSamuel P. Bingea, Aneesha A. Andrews, View ORCID ProfileBeau R. Webber, View ORCID ProfileBranden S. Moriarity
doi: https://doi.org/10.1101/2020.04.16.045336
Mitchell G. Kluesner
1Department of Pediatrics, University of Minnesota, Minneapolis, MN, USA
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Walker S. Lahr
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Cara-Lin Lonetree
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Branden A. Smeester
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Patricia N. Claudio-Vázquez
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Samuel P. Pitzen
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Madison J. Vignes
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Samantha C. Lee
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Samuel P. Bingea
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Aneesha A. Andrews
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Beau R. Webber
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Branden S. Moriarity
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  • For correspondence: mori0164{at}umn.edu
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ABSTRACT

Base editors allow for precise nucleotide editing without the need for genotoxic double-stranded breaks. Prior work has used base editors to knockout genes by introducing premature stop codons or by disrupting conserved splice-sites, but no direct comparison exists between these methods. Additionally, while base editor mediated disruption of splice sites has been used to shift the functional isoform pool, its utility for gene knockout requires further validation. To address these needs, we developed the program SpliceR (z.umn.edu/spliceR) to design cytidine-deaminase base editor (CBE) and adenosine-deaminase base editor (ABE) splice-site targeting guides. We compared the splice-site targeting and premature stop codon introduction in a knockout screen against the TCR-CD3 immune synapse in primary human T-cells. Our data suggests that 1) the CBE, BE4 is more reliable than the ABE, ABE7.10 for splice-site targeting knockout and 2) for both CBEs and ABEs, splice-donor targeting is the most reliable approach for base editing induced knockout.

Competing Interest Statement

B.R.W. and B.S.M. are consultants for Beam Therapeutics. B.R.W and B.S.M. have financial interests in Beam Therapeutics. Both B.R.W. and B.S.M.’s interests were reviewed and are managed by the University of Minnesota in accordance with their conflict of interest policies. Patents have also been filed on the findings and concepts of utilizing base editors for gene knockout and gene correction.

Footnotes

  • http://z.umn.edu/splicer

  • https://github.com/MoriarityLab/SpliceR

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted April 18, 2020.
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CRISPR-Cas9 cytidine and adenosine base editing of splice-sites mediates highly-efficient disruption of proteins in primary cells
Mitchell G. Kluesner, Walker S. Lahr, Cara-Lin Lonetree, Branden A. Smeester, Patricia N. Claudio-Vázquez, Samuel P. Pitzen, Madison J. Vignes, Samantha C. Lee, Samuel P. Bingea, Aneesha A. Andrews, Beau R. Webber, Branden S. Moriarity
bioRxiv 2020.04.16.045336; doi: https://doi.org/10.1101/2020.04.16.045336
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CRISPR-Cas9 cytidine and adenosine base editing of splice-sites mediates highly-efficient disruption of proteins in primary cells
Mitchell G. Kluesner, Walker S. Lahr, Cara-Lin Lonetree, Branden A. Smeester, Patricia N. Claudio-Vázquez, Samuel P. Pitzen, Madison J. Vignes, Samantha C. Lee, Samuel P. Bingea, Aneesha A. Andrews, Beau R. Webber, Branden S. Moriarity
bioRxiv 2020.04.16.045336; doi: https://doi.org/10.1101/2020.04.16.045336

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