TY - JOUR
T1 - Efficient and error-free fluorescent gene tagging in human organoids without double-strand DNA cleavage
AU - Bollen, Yannik
AU - Hageman, Joris H
AU - van Leenen, Petra
AU - Derks, Lucca L M
AU - Ponsioen, Bas
AU - Buissant des Amorie, Julian R
AU - Verlaan-Klink, Ingrid
AU - van den Bos, Myrna
AU - Terstappen, Leon W M M
AU - van Boxtel, Ruben
AU - Snippert, Hugo J G
N1 - Funding Information:
This work is part of the Oncode Institute, which is partly financed by the Dutch Cancer Society. HGJS received European Research Council (ERC) starting grant (IntratumoralNiche), project number 803608 (https://erc.europa.eu/funding/starting-grants) and NWO TOP. YB was supported by a strategic alliance between University of Twente and UMC Utrecht on Advanced Biomanufacturing (to LWMMT and HJGS). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript. We thank members of the Snippert laboratory for reagents, suggestions, and discussions. We thank Markus J. van Roosmalen for advice on the WGS analysis.
Publisher Copyright:
Copyright: © 2022 Bollen et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
PY - 2022/1/28
Y1 - 2022/1/28
N2 - AU CRISPR-associated: Pleaseconfirmthatallheadinglevelsarerepresentedcorrectly nucleases are powerful tools for precise : genome editing of model systems, including human organoids. Current methods describing fluorescent gene tagging in organoids rely on the generation of DNA double-strand breaks (DSBs) to stimulate homology-directed repair (HDR) or nonhomologous end joining (NHEJ)-mediated integration of the desired knock-in. A major downside associated with DSB-mediated genome editing is the required clonal selection and expansion of candidate organoids to verify the genomic integrity of the targeted locus and to confirm the absence of off-target indels. By contrast, concurrent nicking of the genomic locus and targeting vector, known as in-trans paired nicking (ITPN), stimulates efficient HDR-mediated genome editing to generate large knock-ins without introducing DSBs. Here, we show that ITPN allows for fast, highly efficient, and indel-free fluorescent gene tagging in human normal and cancer organoids. Highlighting the ease and efficiency of ITPN, we generate triple fluorescent knock-in organoids where 3 genomic loci were simultaneously modified in a single round of targeting. In addition, we generated model systems with allele-specific readouts by differentially modifying maternal and paternal alleles in one step. ITPN using our palette of targeting vectors, publicly available from Addgene, is ideally suited for generating error-free heterozygous knock-ins in human organoids.
AB - AU CRISPR-associated: Pleaseconfirmthatallheadinglevelsarerepresentedcorrectly nucleases are powerful tools for precise : genome editing of model systems, including human organoids. Current methods describing fluorescent gene tagging in organoids rely on the generation of DNA double-strand breaks (DSBs) to stimulate homology-directed repair (HDR) or nonhomologous end joining (NHEJ)-mediated integration of the desired knock-in. A major downside associated with DSB-mediated genome editing is the required clonal selection and expansion of candidate organoids to verify the genomic integrity of the targeted locus and to confirm the absence of off-target indels. By contrast, concurrent nicking of the genomic locus and targeting vector, known as in-trans paired nicking (ITPN), stimulates efficient HDR-mediated genome editing to generate large knock-ins without introducing DSBs. Here, we show that ITPN allows for fast, highly efficient, and indel-free fluorescent gene tagging in human normal and cancer organoids. Highlighting the ease and efficiency of ITPN, we generate triple fluorescent knock-in organoids where 3 genomic loci were simultaneously modified in a single round of targeting. In addition, we generated model systems with allele-specific readouts by differentially modifying maternal and paternal alleles in one step. ITPN using our palette of targeting vectors, publicly available from Addgene, is ideally suited for generating error-free heterozygous knock-ins in human organoids.
UR - https://www.scopus.com/pages/publications/85124001670
U2 - 10.1371/journal.pbio.3001527
DO - 10.1371/journal.pbio.3001527
M3 - Article
C2 - 35089911
SN - 1544-9173
VL - 20
SP - 1
EP - 16
JO - PLoS Biology
JF - PLoS Biology
IS - 1
M1 - e3001527
ER -