Autophagy Negatively Regulates Cell Death by Controlling NPR1-Dependent Salicylic Acid Signaling during Senescence and the Innate Immune Response inArabidopsis
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Open Access
- 1 September 2009
- journal article
- Published by Oxford University Press (OUP) in Plant Cell
- Vol. 21 (9), 2914-2927
- https://doi.org/10.1105/tpc.109.068635
Abstract
Autophagy is an evolutionarily conserved intracellular process for vacuolar degradation of cytoplasmic components. In higher plants, autophagy defects result in early senescence and excessive immunity-related programmed cell death (PCD) irrespective of nutrient conditions; however, the mechanisms by which cells die in the absence of autophagy have been unclear. Here, we demonstrate a conserved requirement for salicylic acid (SA) signaling for these phenomena in autophagy-defective mutants (atg mutants). The atg mutant phenotypes of accelerated PCD in senescence and immunity are SA signaling dependent but do not require intact jasmonic acid or ethylene signaling pathways. Application of an SA agonist induces the senescence/cell death phenotype in SA-deficient atg mutants but not in atg npr1 plants, suggesting that the cell death phenotypes in the atg mutants are dependent on the SA signal transducer NONEXPRESSOR OF PATHOGENESIS-RELATED GENES1. We also show that autophagy is induced by the SA agonist. These findings imply that plant autophagy operates a novel negative feedback loop modulating SA signaling to negatively regulate senescence and immunity-related PCD.Keywords
This publication has 67 references indexed in Scilit:
- Absence of autophagy results in reactive oxygen species-dependent amplification of RLR signalingProceedings of the National Academy of Sciences, 2009
- Mobilization of Rubisco and Stroma-Localized Fluorescent Proteins of Chloroplasts to the Vacuole by anATGGene-Dependent Autophagic ProcessPlant Physiology, 2008
- Physiology and molecular biology of petal senescenceJournal of Experimental Botany, 2008
- Reactive oxygen species are essential for autophagy and specifically regulate the activity of Atg4The EMBO Journal, 2007
- Transcription Analysis of Arabidopsis Membrane Transporters and Hormone Pathways during Developmental and Induced Leaf SenescencePlant Physiology, 2006
- The role of autophagy during the early neonatal starvation periodNature, 2004
- Inducers of Plant Systemic Acquired Resistance Regulate NPR1 Function through Redox ChangesCell, 2003
- Direct interaction between the Arabidopsis disease resistance signaling proteins, EDS1 and PAD4The EMBO Journal, 2001
- The Arabidopsis NPR1 Gene That Controls Systemic Acquired Resistance Encodes a Novel Protein Containing Ankyrin RepeatsCell, 1997
- Function of Lysosomes and Lysosomal Enzymes in the Senescing Corolla of the Morning Glory (Ipomoea purpurea)Journal of Experimental Botany, 1971