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Effects of elevated [CO2 ] on maize defence against mycotoxigenic Fusarium verticillioides.
- Source :
-
Plant, cell & environment [Plant Cell Environ] 2014 Dec; Vol. 37 (12), pp. 2691-706. Date of Electronic Publication: 2014 May 13. - Publication Year :
- 2014
-
Abstract
- Maize is by quantity the most important C4 cereal crop; however, future climate changes are expected to increase maize susceptibility to mycotoxigenic fungal pathogens and reduce productivity. While rising atmospheric [CO2 ] is a driving force behind the warmer temperatures and drought, which aggravate fungal disease and mycotoxin accumulation, our understanding of how elevated [CO2 ] will effect maize defences against such pathogens is limited. Here we report that elevated [CO2 ] increases maize susceptibility to Fusarium verticillioides proliferation, while mycotoxin levels are unaltered. Fumonisin production is not proportional to the increase in F. verticillioides biomass, and the amount of fumonisin produced per unit pathogen is reduced at elevated [CO2 ]. Following F. verticillioides stalk inoculation, the accumulation of sugars, free fatty acids, lipoxygenase (LOX) transcripts, phytohormones and downstream phytoalexins is dampened in maize grown at elevated [CO2 ]. The attenuation of maize 13-LOXs and jasmonic acid production correlates with reduced terpenoid phytoalexins and increased susceptibility. Furthermore, the attenuated induction of 9-LOXs, which have been suggested to stimulate mycotoxin biosynthesis, is consistent with reduced fumonisin per unit fungal biomass at elevated [CO2 ]. Our findings suggest that elevated [CO2 ] will compromise maize LOX-dependent signalling, which will influence the interactions between maize and mycotoxigenic fungi.<br /> (Published 2014. This article is a U.S. Government work and is in the public domain in the USA. Plant, Cell & Environment. published by John Wiley & Sons Ltd.)
- Subjects :
- Cyclopentanes metabolism
Disease Susceptibility
Down-Regulation drug effects
Down-Regulation genetics
Fatty Acids metabolism
Fusarium drug effects
Gene Expression Regulation, Plant drug effects
Oxylipins metabolism
Plant Diseases microbiology
Plant Proteins genetics
Plant Proteins metabolism
Plant Stems drug effects
Plant Stems microbiology
Salicylic Acid metabolism
Sesquiterpenes metabolism
Transcription, Genetic drug effects
Zea mays genetics
Zea mays growth & development
Phytoalexins
Carbon Dioxide pharmacology
Fusarium physiology
Mycotoxins toxicity
Zea mays immunology
Zea mays microbiology
Subjects
Details
- Language :
- English
- ISSN :
- 1365-3040
- Volume :
- 37
- Issue :
- 12
- Database :
- MEDLINE
- Journal :
- Plant, cell & environment
- Publication Type :
- Academic Journal
- Accession number :
- 24689748
- Full Text :
- https://doi.org/10.1111/pce.12337