Signal Signature and Transcriptome Changes of Arabidopsis During Pathogen and Insect Attack
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Open Access
- 1 September 2005
- journal article
- research article
- Published by Scientific Societies in Molecular Plant-Microbe Interactions®
- Vol. 18 (9) , 923-937
- https://doi.org/10.1094/mpmi-18-0923
Abstract
Plant defenses against pathogens and insects are regulated differentially by cross-communicating signaling pathways in which salicylic acid (SA), jasmonic acid (JA), and ethylene (ET) play key roles. To understand how plants integrate pathogen- and insect-induced signals into specific defense responses, we monitored the dynamics of SA, JA, and ET signaling in Arabidopsis after attack by a set of microbial pathogens and herbivorous insects with different modes of attack. Arabidopsis plants were exposed to a pathogenic leaf bacterium (Pseudomonas syringae pv. tomato), a pathogenic leaf fungus (Alternaria brassicicola), tissue-chewing caterpillars (Pieris rapae), cell-content-feeding thrips (Frankliniella occidentalis), or phloem-feeding aphids (Myzus persicae). Monitoring the signal signature in each plant-attacker combination showed that the kinetics of SA, JA, and ET production varies greatly in both quantity and timing. Analysis of global gene expression profiles demonstrated that the signal signature characteristic of each Arabidopsis-attacker combination is orchestrated into a surprisingly complex set of transcriptional alterations in which, in all cases, stress-related genes are overrepresented. Comparison of the transcript profiles revealed that consistent changes induced by pathogens and insects with very different modes of attack can show considerable overlap. Of all consistent changes induced by A. brassicicola, Pieris rapae, and E occidentalis, more than 50% also were induced consistently by P. syringae. Notably, although these four attackers all stimulated JA biosynthesis, the majority of the changes in JA-responsive gene expression were attacker specific. All together, our study shows that SA, JA, and ET play a primary role in the orchestration of the plant's defense response, but other regulatory mechanisms, such as pathway cross-talk or additional attacker-induced signals, eventually shape the highly complex attacker-specific defense response.Keywords
This publication has 73 references indexed in Scilit:
- 10.1023/A:1004032225239Published by Test accounts ,2011
- Silencing the Jasmonate Cascade: Induced Plant Defenses and Insect PopulationsScience, 2004
- Indirect Defence of Plants against Herbivores: Using Arabidopsis thaliana as a Model PlantPlant Biology, 2004
- Attraction of the specialist parasitoid Cotesia rubecula to Arabidopsis thaliana infested by host or non‐host herbivore speciesEntomologia Experimentalis et Applicata, 2003
- The Arabidopsis Information Resource (TAIR): a model organism database providing a centralized, curated gateway to Arabidopsis biology, research materials and communityNucleic Acids Research, 2003
- Induced plant defences: from molecular biology to evolutionary ecologyBasic and Applied Ecology, 2003
- Plant pathogens and integrated defence responses to infectionNature, 2001
- Antagonistic Effect of Salicylic Acid and Jasmonic Acid on the Expression of Pathogenesis-Related (PR) Protein Genes in Wounded Mature Tobacco LeavesPlant and Cell Physiology, 1998
- A useful weed put to work: genetic analysis of disease resistance in Arabidopsis thalianaTrends in Genetics, 1996
- Characterization of the genome of Arabidopsis thalianaJournal of Molecular Biology, 1986