Leaf rust infection reduces herbivore-induced volatile emission in black poplar and attracts a generalist herbivore
- PMID: 28418581
- DOI: 10.1111/nph.14565
Leaf rust infection reduces herbivore-induced volatile emission in black poplar and attracts a generalist herbivore
Abstract
Plants release complex volatile blends after separate attack by herbivores and pathogens, which play many roles in interactions with other organisms. Large perennials are often attacked by multiple enemies, but the effect of combined attacks on volatile emission is rarely studied, particularly in trees. We infested Populus nigra trees with a pathogen, the rust fungus Melampsora larici-populina, and Lymantria dispar caterpillars alone and in combination. We investigated poplar volatile emission and its regulation, as well as the behavior of the caterpillars towards volatiles from rust-infected and uninfected trees. Both the rust fungus and the caterpillars alone induced volatile emission from poplar trees. However, the herbivore-induced volatile emission was significantly reduced when trees were under combined attack by the herbivore and the fungus. Herbivory induced terpene synthase transcripts as well as jasmonate concentrations, but these increases were suppressed when the tree was additionally infected with rust. Caterpillars preferred volatiles from rust-infected over uninfected trees. Our results suggest a defense hormone crosstalk upon combined herbivore-pathogen attack in poplar trees which results in lowered emission of herbivore-induced volatiles. This influences the preference of herbivores, and might have other far-reaching consequences for the insect and pathogen communities in natural poplar forests.
Keywords: crosstalk; multiple interactions; phytohormones; terpene synthases; terpenes; volatile organic compounds (VOCs); woody plants.
© 2017 The Authors. New Phytologist © 2017 New Phytologist Trust.
Comment in
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Introduction to a special feature issue - New insights into plant volatiles.New Phytol. 2018 Nov;220(3):655-658. doi: 10.1111/nph.15494. New Phytol. 2018. PMID: 30324737 No abstract available.
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