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Chapter 5 Systemic Acquired Resistance
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instance of
scholarly article
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title
Chapter 5 Systemic Acquired Resistance
(English)
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author name string
R. Hammerschmidt
series ordinal
1
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publication date
2009
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published in
Advances in Botanical Research
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page(s)
173-222
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cites work
Role of reactive oxygen species and antioxidants in plant disease resistance.
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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inferred from DOI database lookup
Induction of systemic resistance to Pythium damping-off in cucumber plants by benzothiadiazole: ultrastructure and cytochemistry of the host response.
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Benzothiadiazole-mediated induced resistance to fusarium oxysporum f. sp. radicis-lycopersici in tomato
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Systemic acquired tolerance to virulent bacterial pathogens in tomato.
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Signal crosstalk and induced resistance: straddling the line between cost and benefit
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7 January 2021
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Eicosapentaenoic and Arachidonic Acids from Phytophthora infestans Elicit Fungitoxic Sesquiterpenes in the Potato
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7 January 2021
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Induction of systemic protection against rust infection in broad bean by saccharin: effects on plant growth and development
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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SYSTEMIC RESISTANCE INDUCED BY LOCALIZED VIRUS INFECTIONS: EXTENT OF CHANGES IN UNINFECTED PLANT PARTS.
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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inferred from DOI database lookup
Salicylic Acid Interferes with Tobacco Mosaic Virus Replication via a Novel Salicylhydroxamic Acid-Sensitive Mechanism.
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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β-Aminobutyric Acid-Induced Resistance Against Plant Pathogens
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Priming in plant-pathogen interactions.
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7 January 2021
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Priming: getting ready for battle
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7 January 2021
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Basic compatibility of Albugo candida in Arabidopsis thaliana and Brassica juncea causes broad-spectrum suppression of innate immunity
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Effectiveness of systemic resistance in bean against foliar and soilborne pathogens as induced by biological and chemical means
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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2,6-dichloro-isonicotinic acid (INA) induces resistance in green beans to the rust pathogen, Uromyces appendiculatus, under field conditions
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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The effect of pathogen inoculation or chemical treatment on activities of chitinase and β-1,3-glucanase and accumulation of salicylic acid in leaves of green bean,Phaseolus vulgarisL
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Q61978140
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Suppression of Sclerotinia Stem Rot of Soybean by Lactofen Herbicide Treatment
1 reference
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7 January 2021
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inferred from DOI database lookup
A central role of salicylic Acid in plant disease resistance.
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Chapter 6 Rhizobacteria-Induced Systemic Resistance
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Harpin induces disease resistance in Arabidopsis through the systemic acquired resistance pathway mediated by salicylic acid and the NIM1 gene.
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Abnormal callose response phenotype and hypersusceptibility to Peronospoara parasitica in defence-compromised arabidopsis nim1-1 and salicylate hydroxylase-expressing plants
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Systemic acquired resistance.
1 reference
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7 January 2021
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Acibenzolar-s-methyl-induced resistance to Japanese pear scab is associated with potentiation of multiple defense responses
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Local and Systemic Responses of Antioxidants to Tobacco Mosaic Virus Infection and to Salicylic Acid in Tobacco (Role in Systemic Acquired Resistance).
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Requirement of salicylic Acid for the induction of systemic acquired resistance
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Genetic modification of alternative respiration has differential effects on antimycin A-induced versus salicylic acid-induced resistance to Tobacco mosaic virus
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Contrasting mechanisms of defense against biotrophic and necrotrophic pathogens
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7 January 2021
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Benzothiadiazole, a novel class of inducers of systemic acquired resistance, activates gene expression and disease resistance in wheat
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Infection of Arabidopsis with a necrotrophic pathogen, Botrytis cinerea, elicits various defense responses but does not induce systemic acquired resistance (SAR).
1 reference
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7 January 2021
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Salicylic acid is important for basal defense of Solanum tuberosum against Phytophthora infestans
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7 January 2021
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PHYTOALEXINS: What Have We Learned After 60 Years?
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7 January 2021
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A strobilurin fungicide enhances the resistance of tobacco against tobacco mosaic virus and Pseudomonas syringae pv tabaci
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Cell wall-associated mechanisms of disease resistance and susceptibility.
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Ultrastructural study on acibenzolar-S-methyl-induced scab resistance in epidermal pectin layers of Japanese pear leaves
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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The plant immune system
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Resistance to turnip crinkle virus in Arabidopsis is regulated by two host genes and is salicylic acid dependent but NPR1, ethylene, and jasmonate independent
1 reference
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7 January 2021
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Silica deposition by a strongly cationic proline-rich protein from systemically resistant cucumber plants
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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inferred from DOI database lookup
Induction of systemic acquired disease resistance in plants by chemicals.
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Two Pseudomonas syringae type III effectors inhibit RIN4-regulated basal defense in Arabidopsis
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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inferred from DOI database lookup
Induced disease resistance and gene expression in cereals
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Acquired Resistance in Barley (The Resistance Mechanism Induced by 2,6-Dichloroisonicotinic Acid Is a Phenocopy of a Genetically Based Mechanism Governing Race-Specific Powdery Mildew Resistance)
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Actigard Increases Fungicide Efficacy Against Tobacco Blue Mold
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Benzothiadiazole induces disease resistance in Arabidopsis by activation of the systemic acquired resistance signal transduction pathway
1 reference
stated in
Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
retrieved
7 January 2021
based on heuristic
inferred from DOI database lookup
Salicylic Acid: a likely endogenous signal in the resistance response of tobacco to viral infection
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Production of Salicylic Acid Precursors Is a Major Function of Phenylalanine Ammonia-Lyase in the Resistance of Arabidopsis to Peronospora parasitica
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Effect of Treating Apple Trees with Acibenzolar-S-Methyl on Fire Blight and Expression of Pathogenesis-Related Protein Genes
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Salicylic acid-induced resistance to Cucumber mosaic virus in squash and Arabidopsis thaliana: contrasting mechanisms of induction and antiviral action
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Isolation of a complementary DNA encoding a chitinase with structural homology to a bifunctional lysozyme/chitinase
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Increase in salicylic Acid at the onset of systemic acquired resistance in cucumber.
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Local and Systemic Biosynthesis of Salicylic Acid in Infected Cucumber Plants
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Pathogen-associated molecular pattern recognition rather than development of tissue necrosis contributes to bacterial induction of systemic acquired resistance in Arabidopsis.
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Transport of Salicylic Acid in Tobacco Necrosis Virus-Infected Cucumber Plants
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Impaired fungicide activity in plants blocked in disease resistance signal transduction.
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Salicylic acid-induced resistance to viruses and other pathogens: a parting of the ways?
1 reference
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7 January 2021
based on heuristic
inferred from DOI database lookup
Probenazole induces systemic acquired resistance in tobacco through salicylic acid accumulation
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Comparison of local and systemic induction of acquired disease resistance in cucumber plants treated with benzothiadiazoles or salicylic acid
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Bacterial Lipopolysaccharides and Plant—pathogen Interactions
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Chapter 1 PAMP-Triggered Basal Immunity in Plants
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7 January 2021
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A structural model for the mechanisms of elicitor release from fungal cell walls by plant beta-1,3-endoglucanase
1 reference
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7 January 2021
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Arabidopsis pathology breathes new life into the necrotrophs-vs.-biotrophs classification of fungal pathogens
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7 January 2021
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NPR1: the spider in the web of induced resistance signaling pathways
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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A novel signaling pathway controlling induced systemic resistance in Arabidopsis
1 reference
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7 January 2021
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Systemic Induction of Salicylic Acid Accumulation in Cucumber after Inoculation with Pseudomonas syringae pv syringae.
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
retrieved
7 January 2021
based on heuristic
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Systemic acquired resistance induced in hypersensitive plants by nonnecrotic localized viral infections
1 reference
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reference URL
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7 January 2021
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Localized acquired resistance to plant virus infection in hypersensitive hosts
1 reference
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7 January 2021
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Systemic acquired resistance induced by localized virus infections in plants
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Chemical induction of disease resistance in rice is correlated with the expression of a gene encoding a nucleotide binding site and leucine-rich repeats
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Is Salicylic Acid a Translocated Signal of Systemic Acquired Resistance in Tobacco?
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Activation of multiple antiviral defence mechanisms by salicylic acid
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
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.
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Systemic acquired resistance
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Systemic Responses in Arabidopsis thaliana Infected and Challenged with Pseudomonas syringae pv syringae
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7 January 2021
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Beta-amino-butyric acid-induced resistance against necrotrophic pathogens is based on ABA-dependent priming for callose
1 reference
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reference URL
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7 January 2021
based on heuristic
inferred from DOI database lookup
Acquired resistance in Arabidopsis
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reference URL
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7 January 2021
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Polyacrylamide disc electrophoresis of the soluble leaf proteins from Nicotiana tabacum var 'Samsun' and 'Samsun' NN. IV. Similarity of qualitiative changes of specific proteins after infection with diggerent viruses and their relationship to acquir
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Polyacrylamide disc electrophoresis of the soluble leaf proteins from Nicotiana tabacum var. "Samsun" and "Samsun NN". II. Changes in protein constitution after infection with tobacco mosaic virus
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Systemic resistance induced by rhizosphere bacteria.
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Significance of inducible defense-related proteins in infected plants.
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Expression of the Pib rice-blast-resistance gene family is up-regulated by environmental conditions favouring infection and by chemical signals that trigger secondary plant defences
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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Coordinate Gene Activity in Response to Agents That Induce Systemic Acquired Resistance
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7 January 2021
based on heuristic
inferred from DOI database lookup
Acetylsalicylic acid (aspirin) induces resistance to tobacco mosaic virus in tobacco
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
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The Effects of Aspirin and Polyacrylic Acid on the Multiplication and Spread of TMV in Different Cultivars of Tobacco with and without the N-gene
1 reference
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Chemically induced virus resistance in Arabidopsis thaliana is independent of pathogenesis-related protein expression and the NPR1 gene
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
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Analysis of the N gene hypersensitive response induced by a fluorescently tagged tobacco mosaic virus
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Probenazole induces systemic acquired resistance in Arabidopsis with a novel type of action
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
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7 January 2021
based on heuristic
inferred from DOI database lookup
Bacterial lipopolysaccharides as inducers of disease resistance in tobacco
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Crossref
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https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
retrieved
7 January 2021
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Different micro-organisms differentially induce Arabidopsis disease response pathways
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0065-2296%2809%2951005-1
retrieved
7 January 2021
based on heuristic
inferred from DOI database lookup
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DOI
10.1016/S0065-2296(09)51005-1
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