Combining multiplex gene editing and doubled haploid technology in maize

Author:

Impens Lennert12ORCID,Lorenzo Christian D.12ORCID,Vandeputte Wout12ORCID,Wytynck Pieter12ORCID,Debray Kevin12ORCID,Haeghebaert Jari12ORCID,Herwegh Denia12ORCID,Jacobs Thomas B.12ORCID,Ruttink Tom13ORCID,Nelissen Hilde12ORCID,Inzé Dirk12ORCID,Pauwels Laurens12ORCID

Affiliation:

1. Department of Plant Biotechnology and Bioinformatics Ghent University B‐9052 Ghent Belgium

2. Center for Plant Systems Biology, VIB B‐9052 Ghent Belgium

3. Flanders Research Institute for Agriculture, Fisheries and Food (ILVO) B‐9820 Merelbeke Belgium

Abstract

Summary A major advantage of using CRISPR/Cas9 for gene editing is multiplexing, that is, the simultaneous targeting of many genes. However, primary transformants typically contain hetero‐allelic mutations or are genetic mosaic, while genetically stable lines that are homozygous are desired for functional analysis. Currently, a dedicated and labor‐intensive effort is required to obtain such higher‐order mutants through several generations of genetic crosses and genotyping. We describe the design and validation of a rapid and efficient strategy to produce lines of genetically identical plants carrying various combinations of homozygous edits, suitable for replicated analysis of phenotypical differences. This approach was achieved by combining highly multiplex gene editing in Zea mays (maize) with in vivo haploid induction and efficient in vitro generation of doubled haploid plants using embryo rescue doubling. By combining three CRISPR/Cas9 constructs that target in total 36 genes potentially involved in leaf growth, we generated an array of homozygous lines with various combinations of edits within three generations. Several genotypes show a reproducible 10% increase in leaf size, including a septuple mutant combination. We anticipate that our strategy will facilitate the study of gene families via multiplex CRISPR mutagenesis and the identification of allele combinations to improve quantitative crop traits.

Funder

Bijzonder Onderzoeksfonds UGent

Fonds Wetenschappelijk Onderzoek

H2020 European Research Council

Publisher

Wiley

Subject

Plant Science,Physiology

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