Putative rhamnogalacturonan-II glycosyltransferase identified through callus gene editing which bypasses embryo lethality

Author:

Zhang Yuan12ORCID,Sharma Deepak34ORCID,Liang Yan12ORCID,Downs Nick12ORCID,Dolman Fleur5ORCID,Thorne Kristen34ORCID,Black Ian M3ORCID,Pereira Jose Henrique12ORCID,Adams Paul12ORCID,Scheller Henrik V126ORCID,O’Neill Malcolm3ORCID,Urbanowicz Breeanna34ORCID,Mortimer Jenny C125ORCID

Affiliation:

1. Joint BioEnergy Institute , Emeryville, CA 94608 , USA

2. Environmental Genomics and Systems Biology Division, Lawrence Berkeley National Laboratory , Berkeley, CA 94720 , USA

3. Complex Carbohydrate Research Center, University of Georgia , Athens, GA 30602 , USA

4. Department of Biochemistry and Molecular Biology, University of Georgia, Athens, GA 30602, USA

5. School of Agriculture, Food and Wine, University of Adelaide , Adelaide, SA 5005 , Australia

6. Department of Plant and Microbial Biology, University of California , Berkeley, CA 94720 , USA

Abstract

Abstract Rhamnogalacturonan II (RG-II) is a structurally complex and conserved domain of the pectin present in the primary cell walls of vascular plants. Borate cross-linking of RG-II is required for plants to grow and develop normally. Mutations that alter RG-II structure also affect cross-linking and are lethal or severely impair growth. Thus, few genes involved in RG-II synthesis have been identified. Here, we developed a method to generate viable loss-of-function Arabidopsis (Arabidopsis thaliana) mutants in callus tissue via CRISPR/Cas9-mediated gene editing. We combined this with a candidate gene approach to characterize the male gametophyte defective 2 (MGP2) gene that encodes a putative family GT29 glycosyltransferase. Plants homozygous for this mutation do not survive. We showed that in the callus mutant cell walls, RG-II does not cross-link normally because it lacks 3-deoxy-D-manno-octulosonic acid (Kdo) and thus cannot form the α-L-Rhap-(1→5)-α-D-kdop-(1→sidechain). We suggest that MGP2 encodes an inverting RG-II CMP-β-Kdo transferase (RCKT1). Our discovery provides further insight into the role of sidechains in RG-II dimerization. Our method also provides a viable strategy for further identifying proteins involved in the biosynthesis of RG-II.

Funder

DOE Joint BioEnergy Institute

U. S. Department of Energy, Office of Science

Office of Biological and Environmental Research

Lawrence Berkeley National Laboratory

University of Adelaide

Division of Chemical Sciences, Geosciences, and Biosciences

Office of Basic Energy Sciences of the United States Department of Energy

Publisher

Oxford University Press (OUP)

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