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Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids

Approaches based on genetic modification have been invaluable for investigating a wide array of biological processes, with gain- and loss-of-function approaches frequently used to investigate gene function. However, the presence of paralogues, and hence possible genetic compensation, for many genes...

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Autores principales: Andersson-Rolf, Amanda, Merenda, Alessandra, Mustata, Roxana C., Li, Taibo, Dietmann, Sabine, Koo, Bon-Kyoung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5161140/
https://www.ncbi.nlm.nih.gov/pubmed/27983963
http://dx.doi.org/10.1016/j.ydbio.2016.10.016
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author Andersson-Rolf, Amanda
Merenda, Alessandra
Mustata, Roxana C.
Li, Taibo
Dietmann, Sabine
Koo, Bon-Kyoung
author_facet Andersson-Rolf, Amanda
Merenda, Alessandra
Mustata, Roxana C.
Li, Taibo
Dietmann, Sabine
Koo, Bon-Kyoung
author_sort Andersson-Rolf, Amanda
collection PubMed
description Approaches based on genetic modification have been invaluable for investigating a wide array of biological processes, with gain- and loss-of-function approaches frequently used to investigate gene function. However, the presence of paralogues, and hence possible genetic compensation, for many genes necessitates the knockout (KO) of all paralogous genes in order to observe clear phenotypic change. CRISPR technology, the most recently described tool for gene editing, can generate KOs with unprecedented ease and speed and has been used in adult stem cell-derived organoids for single gene knockout, gene knock-in and gene correction. However, the simultaneous targeting of multiple genes in organoids by CRISPR technology has not previously been described. Here we describe a rapid, scalable and cost effective method for generating double knockouts in organoids. By concatemerizing multiple gRNA expression cassettes, we generated a ‘gRNA concatemer vector’. Our method allows the rapid assembly of annealed synthetic DNA oligos into the final vector in a single step. This approach facilitates simultaneous delivery of multiple gRNAs to allow up to 4 gene KO in one step, or potentially to increase the efficiency of gene knockout by providing multiple gRNAs targeting one gene. As a proof of concept, we knocked out negative regulators of the Wnt pathway in small intestinal organoids, thereby removing their growth dependence on the exogenous Wnt enhancer, R-spondin1.
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spelling pubmed-51611402016-12-21 Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids Andersson-Rolf, Amanda Merenda, Alessandra Mustata, Roxana C. Li, Taibo Dietmann, Sabine Koo, Bon-Kyoung Dev Biol Article Approaches based on genetic modification have been invaluable for investigating a wide array of biological processes, with gain- and loss-of-function approaches frequently used to investigate gene function. However, the presence of paralogues, and hence possible genetic compensation, for many genes necessitates the knockout (KO) of all paralogous genes in order to observe clear phenotypic change. CRISPR technology, the most recently described tool for gene editing, can generate KOs with unprecedented ease and speed and has been used in adult stem cell-derived organoids for single gene knockout, gene knock-in and gene correction. However, the simultaneous targeting of multiple genes in organoids by CRISPR technology has not previously been described. Here we describe a rapid, scalable and cost effective method for generating double knockouts in organoids. By concatemerizing multiple gRNA expression cassettes, we generated a ‘gRNA concatemer vector’. Our method allows the rapid assembly of annealed synthetic DNA oligos into the final vector in a single step. This approach facilitates simultaneous delivery of multiple gRNAs to allow up to 4 gene KO in one step, or potentially to increase the efficiency of gene knockout by providing multiple gRNAs targeting one gene. As a proof of concept, we knocked out negative regulators of the Wnt pathway in small intestinal organoids, thereby removing their growth dependence on the exogenous Wnt enhancer, R-spondin1. Elsevier 2016-12-15 /pmc/articles/PMC5161140/ /pubmed/27983963 http://dx.doi.org/10.1016/j.ydbio.2016.10.016 Text en © 2016 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Andersson-Rolf, Amanda
Merenda, Alessandra
Mustata, Roxana C.
Li, Taibo
Dietmann, Sabine
Koo, Bon-Kyoung
Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids
title Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids
title_full Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids
title_fullStr Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids
title_full_unstemmed Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids
title_short Simultaneous paralogue knockout using a CRISPR-concatemer in mouse small intestinal organoids
title_sort simultaneous paralogue knockout using a crispr-concatemer in mouse small intestinal organoids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5161140/
https://www.ncbi.nlm.nih.gov/pubmed/27983963
http://dx.doi.org/10.1016/j.ydbio.2016.10.016
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