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Nanoblades allow high-level genome editing in murine and human organoids

Genome engineering has become more accessible thanks to the CRISPR-Cas9 gene-editing system. However, using this technology in synthetic organs called “organoids” is still very inefficient. This is due to the delivery methods for the CRISPR-Cas9 machinery, which include electroporation of CRISPR-Cas...

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Autores principales: Tiroille, Victor, Krug, Adrien, Bokobza, Emma, Kahi, Michel, Bulcaen, Mattijs, Ensinck, Marjolein M., Geurts, Maarten H., Hendriks, Delilah, Vermeulen, François, Larbret, Frédéric, Gutierrez-Guerrero, Alejandra, Chen, Yu, Van Zundert, Indra, Rocha, Susana, Rios, Anne C., Medaer, Louise, Gijsbers, Rik, Mangeot, Philippe E., Clevers, Hans, Carlon, Marianne S., Bost, Frédéric, Verhoeyen, Els
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10331042/
https://www.ncbi.nlm.nih.gov/pubmed/37435135
http://dx.doi.org/10.1016/j.omtn.2023.06.004
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author Tiroille, Victor
Krug, Adrien
Bokobza, Emma
Kahi, Michel
Bulcaen, Mattijs
Ensinck, Marjolein M.
Geurts, Maarten H.
Hendriks, Delilah
Vermeulen, François
Larbret, Frédéric
Gutierrez-Guerrero, Alejandra
Chen, Yu
Van Zundert, Indra
Rocha, Susana
Rios, Anne C.
Medaer, Louise
Gijsbers, Rik
Mangeot, Philippe E.
Clevers, Hans
Carlon, Marianne S.
Bost, Frédéric
Verhoeyen, Els
author_facet Tiroille, Victor
Krug, Adrien
Bokobza, Emma
Kahi, Michel
Bulcaen, Mattijs
Ensinck, Marjolein M.
Geurts, Maarten H.
Hendriks, Delilah
Vermeulen, François
Larbret, Frédéric
Gutierrez-Guerrero, Alejandra
Chen, Yu
Van Zundert, Indra
Rocha, Susana
Rios, Anne C.
Medaer, Louise
Gijsbers, Rik
Mangeot, Philippe E.
Clevers, Hans
Carlon, Marianne S.
Bost, Frédéric
Verhoeyen, Els
author_sort Tiroille, Victor
collection PubMed
description Genome engineering has become more accessible thanks to the CRISPR-Cas9 gene-editing system. However, using this technology in synthetic organs called “organoids” is still very inefficient. This is due to the delivery methods for the CRISPR-Cas9 machinery, which include electroporation of CRISPR-Cas9 DNA, mRNA, or ribonucleoproteins containing the Cas9-gRNA complex. However, these procedures are quite toxic for the organoids. Here, we describe the use of the “nanoblade (NB)” technology, which outperformed by far gene-editing levels achieved to date for murine- and human tissue-derived organoids. We reached up to 75% of reporter gene knockout in organoids after treatment with NBs. Indeed, high-level NB-mediated knockout for the androgen receptor encoding gene and the cystic fibrosis transmembrane conductance regulator gene was achieved with single gRNA or dual gRNA containing NBs in murine prostate and colon organoids. Likewise, NBs achieved 20%–50% gene editing in human organoids. Most importantly, in contrast to other gene-editing methods, this was obtained without toxicity for the organoids. Only 4 weeks are required to obtain stable gene knockout in organoids and NBs simplify and allow rapid genome editing in organoids with little to no side effects including unwanted insertion/deletions in off-target sites thanks to transient Cas9/RNP expression.
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spelling pubmed-103310422023-07-11 Nanoblades allow high-level genome editing in murine and human organoids Tiroille, Victor Krug, Adrien Bokobza, Emma Kahi, Michel Bulcaen, Mattijs Ensinck, Marjolein M. Geurts, Maarten H. Hendriks, Delilah Vermeulen, François Larbret, Frédéric Gutierrez-Guerrero, Alejandra Chen, Yu Van Zundert, Indra Rocha, Susana Rios, Anne C. Medaer, Louise Gijsbers, Rik Mangeot, Philippe E. Clevers, Hans Carlon, Marianne S. Bost, Frédéric Verhoeyen, Els Mol Ther Nucleic Acids Original Article Genome engineering has become more accessible thanks to the CRISPR-Cas9 gene-editing system. However, using this technology in synthetic organs called “organoids” is still very inefficient. This is due to the delivery methods for the CRISPR-Cas9 machinery, which include electroporation of CRISPR-Cas9 DNA, mRNA, or ribonucleoproteins containing the Cas9-gRNA complex. However, these procedures are quite toxic for the organoids. Here, we describe the use of the “nanoblade (NB)” technology, which outperformed by far gene-editing levels achieved to date for murine- and human tissue-derived organoids. We reached up to 75% of reporter gene knockout in organoids after treatment with NBs. Indeed, high-level NB-mediated knockout for the androgen receptor encoding gene and the cystic fibrosis transmembrane conductance regulator gene was achieved with single gRNA or dual gRNA containing NBs in murine prostate and colon organoids. Likewise, NBs achieved 20%–50% gene editing in human organoids. Most importantly, in contrast to other gene-editing methods, this was obtained without toxicity for the organoids. Only 4 weeks are required to obtain stable gene knockout in organoids and NBs simplify and allow rapid genome editing in organoids with little to no side effects including unwanted insertion/deletions in off-target sites thanks to transient Cas9/RNP expression. American Society of Gene & Cell Therapy 2023-06-08 /pmc/articles/PMC10331042/ /pubmed/37435135 http://dx.doi.org/10.1016/j.omtn.2023.06.004 Text en © 2023 Institut national de la santé et de la recherche médicale https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Tiroille, Victor
Krug, Adrien
Bokobza, Emma
Kahi, Michel
Bulcaen, Mattijs
Ensinck, Marjolein M.
Geurts, Maarten H.
Hendriks, Delilah
Vermeulen, François
Larbret, Frédéric
Gutierrez-Guerrero, Alejandra
Chen, Yu
Van Zundert, Indra
Rocha, Susana
Rios, Anne C.
Medaer, Louise
Gijsbers, Rik
Mangeot, Philippe E.
Clevers, Hans
Carlon, Marianne S.
Bost, Frédéric
Verhoeyen, Els
Nanoblades allow high-level genome editing in murine and human organoids
title Nanoblades allow high-level genome editing in murine and human organoids
title_full Nanoblades allow high-level genome editing in murine and human organoids
title_fullStr Nanoblades allow high-level genome editing in murine and human organoids
title_full_unstemmed Nanoblades allow high-level genome editing in murine and human organoids
title_short Nanoblades allow high-level genome editing in murine and human organoids
title_sort nanoblades allow high-level genome editing in murine and human organoids
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10331042/
https://www.ncbi.nlm.nih.gov/pubmed/37435135
http://dx.doi.org/10.1016/j.omtn.2023.06.004
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