Biosynthesis of 8-O-methylated benzoxazinoid defense compounds in maize
Author(s) -
Vinzenz Handrick,
Christelle A. M. Robert,
Kevin R. Ahern,
Shaoqun Zhou,
Ricardo A. R. Machado,
Daniel Maag,
Gaétan Glauser,
Felix E. FernándezPenny,
Jima N. Chandran,
Eli RodgersMelnick,
Bernd Schneider,
Edward S. Buckler,
Wilhelm Boland,
Jonathan Gershenzon,
Georg Jander,
Matthias Erb,
Tobias G. Köllner
Publication year - 2016
Publication title -
the plant cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.324
H-Index - 341
eISSN - 1532-298X
pISSN - 1040-4651
DOI - 10.1105/tpc.16.00065
Subject(s) - biology , biosynthesis , biochemistry , heterologous expression , methyltransferase , hydroxylation , heterologous , dioxygenase , o methyltransferase , enzyme , recombinant dna , gene , methylation
Benzoxazinoids are important defense compounds in grasses. Here, we investigated the biosynthesis and biological roles of the 8-O-methylated benzoxazinoids, DIM2BOA-Glc and HDM2BOA-Glc. Using quantitative trait locus mapping and heterologous expression, we identified a 2-oxoglutarate-dependent dioxygenase (BX13) that catalyzes the conversion of DIMBOA-Glc into a new benzoxazinoid intermediate (TRIMBOA-Glc) by an uncommon reaction involving a hydroxylation and a likely ortho-rearrangement of a methoxy group. TRIMBOA-Glc is then converted to DIM2BOA-Glc by a previously described O-methyltransferase BX7. Furthermore, we identified an O-methyltransferase (BX14) that converts DIM2BOA-Glc to HDM2BOA-Glc. The role of these enzymes in vivo was demonstrated by characterizing recombinant inbred lines, including Oh43, which has a point mutation in the start codon of Bx13 and lacks both DIM2BOA-Glc and HDM2BOA-Glc, and Il14H, which has an inactive Bx14 allele and lacks HDM2BOA-Glc in leaves. Experiments with near-isogenic maize lines derived from crosses between B73 and Oh43 revealed that the absence of DIM2BOA-Glc and HDM2BOA-Glc does not alter the constitutive accumulation or deglucosylation of other benzoxazinoids. The growth of various chewing herbivores was not significantly affected by the absence of BX13-dependent metabolites, while aphid performance increased, suggesting that DIM2BOA-Glc and/or HDM2BOA-Glc provide specific protection against phloem feeding insects.
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