Divergent evolution of the alcohol‐forming pathway of wax biosynthesis among bryophytes

Author:

Keyl Alisa1ORCID,Herrfurth Cornelia12ORCID,Pandey Garima3ORCID,Kim Ryeo Jin3ORCID,Helwig Lina1ORCID,Haslam Tegan M.1ORCID,de Vries Sophie4ORCID,de Vries Jan456ORCID,Gutsche Nora7ORCID,Zachgo Sabine7ORCID,Suh Mi Chung3ORCID,Kunst Ljerka8ORCID,Feussner Ivo129ORCID

Affiliation:

1. Department of Plant Biochemistry Albrecht‐von‐Haller‐Institute, University of Goettingen Goettingen 37077 Germany

2. Service Unit for Metabolomics and Lipidomics, Goettingen Center for Molecular Biosciences (GZMB) University of Goettingen Goettingen 37077 Germany

3. Department of Life Science Sogang University Seoul 04107 Korea

4. Department of Applied Bioinformatics, Institute for Microbiology and Genetics University of Goettingen Goettingen 37077 Germany

5. Campus Institute Data Science (CIDAS) University of Goettingen Goettingen 37077 Germany

6. Department of Applied Informatics, Goettingen Center for Molecular Biosciences (GZMB) University of Goettingen Goettingen 37077 Germany

7. Division of Botany Osnabrueck University Osnabrueck 49076 Germany

8. Department of Botany University of British Columbia Vancouver BC V6T 1Z4 Canada

9. Department of Plant Biochemistry, Goettingen Center for Molecular Biosciences (GZMB) University of Goettingen Goettingen 37077 Germany

Abstract

Summary The plant cuticle is a hydrophobic barrier, which seals the epidermal surface of most aboveground organs. While the cuticle biosynthesis of angiosperms has been intensively studied, knowledge about its existence and composition in nonvascular plants is scarce. Here, we identified and characterized homologs of Arabidopsis thaliana fatty acyl‐CoA reductase (FAR) ECERIFERUM 4 (AtCER4) and bifunctional wax ester synthase/acyl‐CoA:diacylglycerol acyltransferase 1 (AtWSD1) in the liverwort Marchantia polymorpha (MpFAR2 and MpWSD1) and the moss Physcomitrium patens (PpFAR2A, PpFAR2B, and PpWSD1). Although bryophyte harbor similar compound classes as described for angiosperm cuticles, their biosynthesis may not be fully conserved between the bryophytes M. polymorpha and P. patens or between these bryophytes and angiosperms. While PpFAR2A and PpFAR2B contribute to the production of primary alcohols in P. patens, loss of MpFAR2 function does not affect the wax profile of M. polymorpha. By contrast, MpWSD1 acts as the major wax ester‐producing enzyme in M. polymorpha, whereas mutations of PpWSD1 do not affect the wax ester levels of P. patens. Our results suggest that the biosynthetic enzymes involved in primary alcohol and wax ester formation in land plants have either evolved multiple times independently or undergone pronounced radiation followed by the formation of lineage‐specific toolkits.

Funder

Natural Sciences and Engineering Research Council of Canada

Deutsche Forschungsgemeinschaft

National Research Foundation of Korea

H2020 European Research Council

Publisher

Wiley

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