Light Regulation and Daytime Dependency of Inducible Plant Defenses in Arabidopsis: Phytochrome Signaling Controls Systemic Acquired Resistance Rather Than Local Defense
- 23 April 2008
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 147 (2), 790-801
- https://doi.org/10.1104/pp.108.119503
Abstract
We have examined molecular and physiological principles underlying the light dependency of defense activation in Arabidopsis (Arabidopsis thaliana) plants challenged with the bacterial pathogen Pseudomonas syringae. Within a fixed light/dark cycle, plant defense responses and disease resistance significantly depend on the time of day when pathogen contact takes place. Morning and midday inoculations result in higher salicylic acid accumulation, faster expression of pathogenesis-related genes, and a more pronounced hypersensitive response than inoculations in the evening or at night. Rather than to the plants' circadian rhythm, this increased plant defense capability upon day inoculations is attributable to the availability of a prolonged light period during the early plant-pathogen interaction. Moreover, pathogen responses of Arabidopsis double mutants affected in light perception, i.e. cryptochrome1cryptochrome2 (cry1cry2), phototropin1phototropin2 (phot1phot2), and phytochromeAphytochromeB (phyAphyB) were assessed. Induction of defense responses by either avirulent or virulent P. syringae at inoculation sites is relatively robust in leaves of photoreceptor mutants, indicating little cross talk between local defense and light signaling. In addition, the blue-light receptor mutants cry1cry2 and phot1phot2 are both capable of establishing a full systemic acquired resistance (SAR) response. Induction of SAR and salicylic-acid-dependent systemic defense reactions, however, are compromised in phyAphyB mutants. Phytochrome regulation of SAR involves the essential SAR component FLAVIN-DEPENDENT MONOOXYGENASE1. Our findings highlight the importance of phytochrome photoperception during systemic rather than local resistance induction. The phytochrome system seems to accommodate the supply of light energy to the energetically costly increase in whole plant resistance.Keywords
This publication has 38 references indexed in Scilit:
- Arabidopsis Isochorismate Synthase Functional in Pathogen-induced Salicylate Biosynthesis Exhibits Properties Consistent with a Role in Diverse Stress ResponsesJournal of Biological Chemistry, 2007
- Systemic immunityCurrent Opinion in Plant Biology, 2006
- Costs and benefits of priming for defense in ArabidopsisProceedings of the National Academy of Sciences, 2006
- SYSTEMIC ACQUIRED RESISTANCEAnnual Review of Phytopathology, 2004
- Regulation of flowering time by light qualityNature, 2003
- Blue light activates calcium-permeable channels inArabidopsismesophyll cells via the phototropin signaling pathwayProceedings of the National Academy of Sciences, 2003
- phot1 and phot2 mediate blue light regulation of stomatal openingNature, 2001
- Arabidopsis nph1 and npl1: Blue light receptors that mediate both phototropism and chloroplast relocationProceedings of the National Academy of Sciences, 2001
- Salicylic Acid Induction–Deficient Mutants of Arabidopsis Express PR-2 and PR-5 and Accumulate High Levels of Camalexin after Pathogen InoculationPlant Cell, 1999
- A disease resistance gene in Arabidopsis with specificity for two different pathogen avirulence genes.Plant Cell, 1994