Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplasts

Canola (Brassica napus L.) is a valuable oilseed crop worldwide. However, trait improvement by breeding has been limited by its low genetic diversity and polyploid genetics. Whilst offering many potential benefits, the application of transgenic technology is challenged by the stringent and expensive...

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Published in:Frontiers in Plant Science
Main Authors: Sareena Sahab, Fatima Runa, Mahilini Ponnampalam, Pippa T. Kay, Elizabeth Jaya, Katerina Viduka, Stephen Panter, Josquin Tibbits, Matthew J. Hayden
Format: Article
Language:English
Published: Frontiers Media S.A. 2024-11-01
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Online Access:https://www.frontiersin.org/articles/10.3389/fpls.2024.1397632/full
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author Sareena Sahab
Fatima Runa
Mahilini Ponnampalam
Pippa T. Kay
Elizabeth Jaya
Katerina Viduka
Stephen Panter
Josquin Tibbits
Josquin Tibbits
Matthew J. Hayden
Matthew J. Hayden
author_facet Sareena Sahab
Fatima Runa
Mahilini Ponnampalam
Pippa T. Kay
Elizabeth Jaya
Katerina Viduka
Stephen Panter
Josquin Tibbits
Josquin Tibbits
Matthew J. Hayden
Matthew J. Hayden
author_sort Sareena Sahab
collection DOAJ
container_title Frontiers in Plant Science
description Canola (Brassica napus L.) is a valuable oilseed crop worldwide. However, trait improvement by breeding has been limited by its low genetic diversity and polyploid genetics. Whilst offering many potential benefits, the application of transgenic technology is challenged by the stringent and expensive regulatory processes associated with the commercialisation of genetically modified organisms, coupled with a prevailing low public acceptance of such modifications. DNA-free genome editing using Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)–Cas9 ribonucleoproteins (RNPs) offers a promising way to achieve trait improvements without the limitations of transgenic methods. Here, we present a method for DNA-free genome editing via the direct delivery of RNPs to canola mesophyll protoplasts. This method allows high-throughput in vivo testing of the efficacy of gRNA design as part of the transformation process to facilitate the selection of optimal designs prior to the generation of edited events. Of the 525 shoots regenerated via tissue culture from RNP-transfected protoplasts and screened for the presence of mutations in the targeted gene, 62% had one or more mutated target alleles, and 50% had biallelic mutations at both targeted loci. This high editing efficiency compares favourably with similar CRISPR–Cas9 approaches used in other crop plants.
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spelling doaj-art-3dde57105da54ddba767bb62c86fb6202025-08-20T01:22:04ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2024-11-011510.3389/fpls.2024.13976321397632Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplastsSareena Sahab0Fatima Runa1Mahilini Ponnampalam2Pippa T. Kay3Elizabeth Jaya4Katerina Viduka5Stephen Panter6Josquin Tibbits7Josquin Tibbits8Matthew J. Hayden9Matthew J. Hayden10Agriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaSchool of Applied Systems Biology, La Trobe University, Melbourne, VIC, AustraliaAgriculture Victoria, AgriBio, Centre for AgriBioscience, Melbourne, VIC, AustraliaSchool of Applied Systems Biology, La Trobe University, Melbourne, VIC, AustraliaCanola (Brassica napus L.) is a valuable oilseed crop worldwide. However, trait improvement by breeding has been limited by its low genetic diversity and polyploid genetics. Whilst offering many potential benefits, the application of transgenic technology is challenged by the stringent and expensive regulatory processes associated with the commercialisation of genetically modified organisms, coupled with a prevailing low public acceptance of such modifications. DNA-free genome editing using Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)–Cas9 ribonucleoproteins (RNPs) offers a promising way to achieve trait improvements without the limitations of transgenic methods. Here, we present a method for DNA-free genome editing via the direct delivery of RNPs to canola mesophyll protoplasts. This method allows high-throughput in vivo testing of the efficacy of gRNA design as part of the transformation process to facilitate the selection of optimal designs prior to the generation of edited events. Of the 525 shoots regenerated via tissue culture from RNP-transfected protoplasts and screened for the presence of mutations in the targeted gene, 62% had one or more mutated target alleles, and 50% had biallelic mutations at both targeted loci. This high editing efficiency compares favourably with similar CRISPR–Cas9 approaches used in other crop plants.https://www.frontiersin.org/articles/10.3389/fpls.2024.1397632/fullcanolagenome editingCRISPRCas9ribonucleoproteinprotoplasts
spellingShingle Sareena Sahab
Fatima Runa
Mahilini Ponnampalam
Pippa T. Kay
Elizabeth Jaya
Katerina Viduka
Stephen Panter
Josquin Tibbits
Josquin Tibbits
Matthew J. Hayden
Matthew J. Hayden
Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplasts
canola
genome editing
CRISPR
Cas9
ribonucleoprotein
protoplasts
title Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplasts
title_full Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplasts
title_fullStr Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplasts
title_full_unstemmed Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplasts
title_short Efficient multi-allelic genome editing via CRISPR–Cas9 ribonucleoprotein-based delivery to Brassica napus mesophyll protoplasts
title_sort efficient multi allelic genome editing via crispr cas9 ribonucleoprotein based delivery to brassica napus mesophyll protoplasts
topic canola
genome editing
CRISPR
Cas9
ribonucleoprotein
protoplasts
url https://www.frontiersin.org/articles/10.3389/fpls.2024.1397632/full
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