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THE PLANT CELL, Vol 9, Issue 2 261-270, Copyright © 1997 by American Society of Plant Biologists


RESEARCH ARTICLE

Salicylic Acid Potentiates an Agonist-Dependent Gain Control That Amplifies Pathogen Signals in the Activation of Defense Mechanisms

K. Shirasu, H. Nakajima, V. K. Rajasekhar, R. A. Dixon and C. Lamb
Plant Biology Laboratory, Salk Institute for Biological Studies, 10010 North Torrey Pines Road, La Jolla, California 92037

The phenylpropanoid-derived natural product salicylic acid (SA) plays a key role in disease resistance. However, SA administered in the absence of a pathogen is a paradoxically weak inductive signal, often requiring concentrations of 0.5 to 5 mM to induce acquired resistance or related defense mechanisms or to precondition signal systems. In contrast, endogenous SA accumulates to concentrations of <70 [mu] at the site of attempted infection. Here, we show that although 10 to 100 [mu] SA had negligible effects when administered to soybean cell suspensions in the absence of a pathogen, physiological concentrations of SA markedly enhanced the induction of defense gene transcripts, H2O2 accumulation, and hypersensitive cell death by an avirulent strain of Pseudomonas syringae pv glycinea, with optimal effects being at ~50 [mu]M. SA also synergistically enhanced H202 accumulation in response to the protein phosphatase type 2A inhibitor cantharidin in the absence of a pathogen. The synergistic effect of SA was potent, rapid, and insensitive to the protein synthesis inhibitor cycloheximide, and we conclude that SA stimulates an agonist-dependent gain control operating at an early step in the signal pathway for induction of the hypersensitive response. This fine control mechanism differs from previously described time-dependent, inductive coarse control mechanisms for SA action in the absence of a pathogen. Induction of H202 accumulation and hypersensitive cell death by avirulent P. s. glycinea was blocked by the phenylpropanoid synthesis inhibitor [alpha]-aminooxy-[beta]-phenylpropionic acid, and these responses could be rescued by exogenous SA. Because the agonist-dependent gain control operates at physiological levels of SA, we propose that rapid fine control signal amplification makes an important contribution to SA function in the induction of disease resistance mechanisms.


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Plant CellHome page
S. Zhang, H. Du, and D. F. Klessig
Activation of the Tobacco SIP Kinase by Both a Cell Wall–Derived Carbohydrate Elicitor and Purified Proteinaceous Elicitins from Phytophthora spp
PLANT CELL, March 1, 1998; 10(3): 435 - 450.
[Abstract] [Full Text] [PDF]


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Plant CellHome page
R. Mittler, X. Feng, and M. Cohen
Post-Transcriptional Suppression of Cytosolic Ascorbate Peroxidase Expression during Pathogen-Induced Programmed Cell Death in Tobacco
PLANT CELL, March 1, 1998; 10(3): 461 - 474.
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Plant CellHome page
T. Keller, H. G. Damude, D. Werner, P. Doerner, R. A. Dixon, and C. Lamb
A Plant Homolog of the Neutrophil NADPH Oxidase gp91phox Subunit Gene Encodes a Plasma Membrane Protein with Ca2+ Binding Motifs
PLANT CELL, February 1, 1998; 10(2): 255 - 266.
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Plant Physiol.Home page
J. Smith-Becker, E. Marois, E. J. Huguet, S. L. Midland, J. J. Sims, and N. T. Keen
Accumulation of Salicylic Acid and 4-Hydroxybenzoic Acid in Phloem Fluids of Cucumber during Systemic Acquired Resistance Is Preceded by a Transient Increase in Phenylalanine Ammonia-Lyase Activity in Petioles and Stems
Plant Physiology, January 1, 1998; 116(1): 231 - 238.
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Genes Dev.Home page
Y Yang, J Shah, and D F Klessig
Signal perception and transduction in plant defense responses.
Genes & Dev., July 1, 1997; 11(13): 1621 - 1639.
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Proc. Natl. Acad. Sci. USAHome page
M. A. Torres, J. L. Dangl, and J. D. G. Jones
Arabidopsis gp91phox homologues AtrbohD and AtrbohF are required for accumulation of reactive oxygen intermediates in the plant defense response
PNAS, January 8, 2002; 99(1): 517 - 522.
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Proc. Natl. Acad. Sci. USAHome page
M. Delledonne, J. Zeier, A. Marocco, and C. Lamb
Signal interactions between nitric oxide and reactive oxygen intermediates in the plant hypersensitive disease resistance response
PNAS, November 6, 2001; 98(23): 13454 - 13459.
[Abstract] [Full Text] [PDF]




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