Genetic Screening Identifies Cyanogenesis-Deficient Mutants of Lotus japonicus and Reveals Enzymatic Specificity in Hydroxynitrile Glucoside Metabolism

Author:

Takos Adam1,Lai Daniela1,Mikkelsen Lisbeth1,Abou Hachem Maher2,Shelton Dale1,Motawia Mohammed Saddik1,Olsen Carl Erik3,Wang Trevor L.4,Martin Cathie14,Rook Fred1

Affiliation:

1. Department of Plant Biology and Biotechnology, University of Copenhagen, 1871 Frederiksberg, Denmark

2. Department of Systems Biology, Technical University of Denmark, 2800 Kongens Lyngby, Denmark

3. Department of Basic Sciences and Environment, University of Copenhagen, 1871 Frederiksberg, Denmark

4. Department of Metabolic Biology, John Innes Centre, NR4 7UH Norwich, United Kingdom

Abstract

Abstract Cyanogenesis, the release of hydrogen cyanide from damaged plant tissues, involves the enzymatic degradation of amino acid–derived cyanogenic glucosides (α-hydroxynitrile glucosides) by specific β-glucosidases. Release of cyanide functions as a defense mechanism against generalist herbivores. We developed a high-throughput screening method and used it to identify cyanogenesis deficient (cyd) mutants in the model legume Lotus japonicus. Mutants in both biosynthesis and catabolism of cyanogenic glucosides were isolated and classified following metabolic profiling of cyanogenic glucoside content. L. japonicus produces two cyanogenic glucosides: linamarin (derived from Val) and lotaustralin (derived from Ile). Their biosynthesis may involve the same set of enzymes for both amino acid precursors. However, in one class of mutants, accumulation of lotaustralin and linamarin was uncoupled. Catabolic mutants could be placed in two complementation groups, one of which, cyd2, encoded the β-glucosidase BGD2. Despite the identification of nine independent cyd2 alleles, no mutants involving the gene encoding a closely related β-glucosidase, BGD4, were identified. This indicated that BGD4 plays no role in cyanogenesis in L. japonicus in vivo. Biochemical analysis confirmed that BGD4 cannot hydrolyze linamarin or lotaustralin and in L. japonicus is specific for breakdown of related hydroxynitrile glucosides, such as rhodiocyanoside A. By contrast, BGD2 can hydrolyze both cyanogenic glucosides and rhodiocyanosides. Our genetic analysis demonstrated specificity in the catabolic pathways for hydroxynitrile glucosides and implied specificity in their biosynthetic pathways as well. In addition, it has provided important tools for elucidating and potentially modifying cyanogenesis pathways in plants.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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