Comprehensive mutant chemotyping reveals embedding of a lineage-specific biosynthetic gene cluster in wider plant metabolism

X Xue Qiao (Department of Biochemistry and Metabolism, John Innes Centre) A Alan Houghton (Department of Biochemistry and Metabolism, John Innes Centre) J James Reed (Department of Biochemistry and Metabolism, John Innes Centre) B Burkhard Steuernagel J Jiahe Zhang (State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University) C Charlotte Owen (Department of Biochemistry and Metabolism, John Innes Centre) A Aymeric Leveau (Department of Biochemistry and Metabolism, John Innes Centre) A Anastasia Orme (Department of Biochemistry and Metabolism, John Innes Centre) T Thomas Louveau (Department of Biochemistry and Metabolism, John Innes Centre) R Rachel Melton (Department of Biochemistry and Metabolism, John Innes Centre) B Brande B. H. Wulff (Department of Crop Genetics, John Innes Centre) A Anne Osbourn (Department of Biochemistry and Metabolism, John Innes Centre)

Abstract

Plants produce diverse specialized metabolites with important ecological functions. It has recently become apparent that the genes for many of these pathways are not dispersed in plant genomes, but rather are arranged like beads on a string in biosynthetic gene clusters (BGCs). Pathways encoded by BGCs are as a rule dedicated linear pathways that do not form parts of wider metabolic networks. In contrast, the genes for the biosynthesis of widely distributed more ancestral metabolites such as carotenoids and anthocyanins are not clustered. Little is known about how these more recently evolved clustered pathways interact with general plant metabolism. We recently characterized a 12-gene BGC for the biosynthesis of the antimicrobial defense compound avenacin A-1, a triterpene glycoside produced by oats. Avenacin A-1 is acylated with the fluorophore N -methyl anthranilate and confers bright blue fluorescence of oat root tips under ultraviolet light. Here, we exploit a suite of >100 avenacin-deficient mutants identified by screening for reduced root fluorescence to identify genes required for the function of this paradigm BGC. Using a combination of mutant chemotyping, biochemical and molecular analysis, and genome resequencing, we identify two nonclustered genes ( Sad4 and Pal2 ) encoding enzymes that synthesize the donors required for avenacin glycosylation and acylation (recruited from the phenylpropanoid and tryptophan pathways). Our finding of these Cluster Auxiliary Enzymes (CAEs) provides insights into the interplay between general plant metabolism and a newly evolved lineage-specific BGC.

Article Details

Volume / Issue Vol. 122, Issue 12
Published March 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

X

Xue Qiao

Department of Biochemistry and Metabolism, John Innes Centre

A

Alan Houghton

Department of Biochemistry and Metabolism, John Innes Centre

J

James Reed

Department of Biochemistry and Metabolism, John Innes Centre

B

Burkhard Steuernagel

J

Jiahe Zhang

State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University

C

Charlotte Owen

Department of Biochemistry and Metabolism, John Innes Centre

A

Aymeric Leveau

Department of Biochemistry and Metabolism, John Innes Centre

A

Anastasia Orme

Department of Biochemistry and Metabolism, John Innes Centre

T

Thomas Louveau

Department of Biochemistry and Metabolism, John Innes Centre

R

Rachel Melton

Department of Biochemistry and Metabolism, John Innes Centre

B

Brande B. H. Wulff

Department of Crop Genetics, John Innes Centre

A

Anne Osbourn

Department of Biochemistry and Metabolism, John Innes Centre