Signals in plant disease resistance
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[1] D. Klessig,et al. Two inducers of plant defense responses, 2,6-dichloroisonicotinec acid and salicylic acid, inhibit catalase activity in tobacco. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[2] H. Silva,et al. Induction, modification, and transduction of the salicylic acid signal in plant defense responses. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[3] D. Dunigan,et al. Serine/threonine protein phosphatase is required for tobacco mosaic virus-mediated programmed cell death. , 1995, Virology.
[4] J. Metraux,et al. SALICYLIC ACID AND CHITINASE IN INFECTED CUCUMBER PLANTS , 1994 .
[5] J. Metraux,et al. SALICYLIC ACID LEVELS IN ARABIDOPSIS THALIANA AFTER TREATMENTS WITH PSEUDOMONAS SYRINGAE OR SYNTHETIC INDUCERS , 1994 .
[6] D. Klessig,et al. A Salicylic Acid-Binding Activity and a Salicylic Acid-Inhibitable Catalase Activity Are Present in a Variety of Plant Species , 1994, Plant physiology.
[7] C. Lamb,et al. Function of Oxidative Cross-Linking of Cell Wall Structural Proteins in Plant Disease Resistance. , 1994, The Plant cell.
[8] D. Klessig,et al. A mutation in Arabidopsis that leads to constitutive expression of systemic acquired resistance. , 1994, The Plant cell.
[9] Alex Levine,et al. H2O2 from the oxidative burst orchestrates the plant hypersensitive disease resistance response , 1994, Cell.
[10] E. Ward,et al. A Central Role of Salicylic Acid in Plant Disease Resistance , 1994, Science.
[11] J. D. Jones,et al. Isolation of the tomato Cf-9 gene for resistance to Cladosporium fulvum by transposon tagging. , 1994, Science.
[12] Xinnian Dong,et al. Characterization of an Arabidopsis Mutant That Is Nonresponsive to Inducers of Systemic Acquired Resistance. , 1994, The Plant cell.
[13] S. Seo,et al. Expression of the gene for a small GTP binding protein in transgenic tobacco elevates endogenous cytokinin levels, abnormally induces salicylic acid in response to wounding, and increases resistance to tobacco mosaic virus infection. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[14] F. Ausubel,et al. The A. thaliana disease resistance gene RPS2 encodes a protein containing a nucleotide-binding site and leucine-rich repeats , 1994, Cell.
[15] J. Giraudat,et al. RPS2 of Arabidopsis thaliana: a leucine-rich repeat class of plant disease resistance genes. , 1994, Science.
[16] S. Dinesh-Kumar,et al. The product of the tobacco mosaic virus resistance gene N: Similarity to toll and the interleukin-1 receptor , 1994, Cell.
[17] K. Szczyglowski,et al. iaglu, a gene from Zea mays involved in conjugation of growth hormone indole-3-acetic acid. , 1994, Science.
[18] E. Farmer,et al. Diethyldithiocarbamic Acid Inhibits the Octadecanoid Signaling Pathway for the Wound Induction of Proteinase Inhibitors in Tomato Leaves , 1994 .
[19] E. Blumwald,et al. Plant Defense Response to Fungal Pathogens (II. G-Protein-Mediated Changes in Host Plasma Membrane Redox Reactions) , 1994, Plant physiology.
[20] S. Reinbothe,et al. JIPs and RIPs: the regulation of plant gene expression by jasmonates in response to environmental cues and pathogens. , 1994, The Plant cell.
[21] A. Taylor,et al. Oxidative Signals in Tobacco Increase Cytosolic Calcium. , 1994, The Plant cell.
[22] P. Hasegawa,et al. Plant Defense Genes Are Synergistically Induced by Ethylene and Methyl Jasmonate. , 1994, The Plant cell.
[23] K. Apel,et al. JIP60, a methyl jasmonate-induced ribosome-inactivating protein involved in plant stress reactions. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[24] E. Ward,et al. Salicylic Acid Is Not the Translocated Signal Responsible for Inducing Systemic Acquired Resistance but Is Required in Signal Transduction. , 1994, The Plant cell.
[25] J. Dangl,et al. Arabidopsis mutants simulating disease resistance response , 1994, Cell.
[26] F. Ausubel,et al. Programmed cell death in plants: A pathogen-triggered response activated coordinately with multiple defense functions , 1994, Cell.
[27] S. Potter,et al. Acquired Resistance Signal Transduction in Arabidopsis Is Ethylene Independent. , 1994, The Plant cell.
[28] F. Carland,et al. Tomato mutants altered in bacterial disease resistance provide evidence for a new locus controlling pathogen recognition. , 1994, The Plant cell.
[29] David L. Vaux,et al. An evolutionary perspective on apoptosis , 1994, Cell.
[30] N. Degousee,et al. Involvement of Oxidative Processes in the Signaling Mechanisms Leading to the Activation of Glyceollin Synthesis in Soybean (Glycine max) , 1994, Plant physiology.
[31] P. Hasegawa,et al. Osmotin overexpression in potato delays development of disease symptoms. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[32] T. K. Prasad,et al. Evidence for Chilling-Induced Oxidative Stress in Maize Seedlings and a Regulatory Role for Hydrogen Peroxide. , 1994, The Plant cell.
[33] M. Sela-Buurlage,et al. A Novel Pathogen- and Wound-Inducible Tobacco (Nicotiana tabacum) Protein with Antifungal Activity , 1994, Plant physiology.
[34] E. T. Palva,et al. Salicylic acid induced resistance to Erwinia carotovora subsp. carotovora in tobacco , 1994 .
[35] E. Finnegan,et al. Cloning a Rust-Resistance Gene in Flax , 1994 .
[36] A. Osbourn,et al. Advances in Molecular Genetics of Plant-Microbe Interactions , 1994, Current Plant Science and Biotechnology in Agriculture.
[37] D. Klessig,et al. Active oxygen species in the induction of plant systemic acquired resistance by salicylic acid. , 1993, Science.
[38] G. Martin,et al. Map-based cloning of a protein kinase gene conferring disease resistance in tomato. , 1993, Science.
[39] Shai Shaham,et al. The C. elegans cell death gene ced-3 encodes a protein similar to mammalian interleukin-1β-converting enzyme , 1993, Cell.
[40] S. Korsmeyer,et al. Bcl-2-deficient mice demonstrate fulminant lymphoid apoptosis, polycystic kidneys, and hypopigmented hair , 1993, Cell.
[41] Z. Oltvai,et al. Bcl-2 functions in an antioxidant pathway to prevent apoptosis , 1993, Cell.
[42] D. Klessig,et al. Purification and characterization of a soluble salicylic acid-binding protein from tobacco. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[43] I. Raskin,et al. Pathway of Salicylic Acid Biosynthesis in Healthy and Virus-Inoculated Tobacco , 1993, Plant physiology.
[44] D. Klessig,et al. Interconversion of the salicylic acid signal and its glucoside in tobacco. , 1993, The Plant journal : for cell and molecular biology.
[45] I. Raskin,et al. Induction of Benzoic Acid 2-Hydroxylase in Virus-Inoculated Tobacco , 1993, Plant physiology.
[46] Leslie Friedrich,et al. Requirement of Salicylic Acid for the Induction of Systemic Acquired Resistance , 1993, Science.
[47] E. Ward,et al. Increased tolerance to two oomycete pathogens in transgenic tobacco expressing pathogenesis-related protein 1a. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[48] I. Raskin,et al. Endogenous salicylic acid levels correlate with accumulation of pathogenesis-related proteins and virus resistance in tobacco , 1993 .
[49] R. Fluhr,et al. Ethylene Signal Is Transduced via Protein Phosphorylation Events in Plants. , 1993, The Plant cell.
[50] I. Raskin,et al. Induction of UDP-Glucose:Salicylic Acid Glucosyltransferase Activity in Tobacco Mosaic Virus-Inoculated Tobacco (Nicotiana tabacum) Leaves , 1993, Plant physiology.
[51] F. Ausubel,et al. An Arabidopsis thaliana Lipoxygenase Gene Can Be Induced by Pathogens, Abscisic Acid, and Methyl Jasmonate , 1993, Plant physiology.
[52] J. A. Smith,et al. Suppression of Bean Defense Responses by Pseudomonas syringae. , 1993, The Plant cell.
[53] Leslie Friedrich,et al. Biological induction of systemic acquired resistance in Arabidopsis , 1993 .
[54] I. Raskin,et al. Salicylic acid, ethylene, and pathogen resistance in tobacco , 1993 .
[55] E. Ward,et al. The Molecular Biology of Systemic Acquired Resistance , 1993 .
[56] T. Heitz,et al. Plant 'pathogenesis-related' proteins and their role in defense against pathogens. , 1993, Biochimie.
[57] S. Briggs,et al. Reductase activity encoded by the HM1 disease resistance gene in maize. , 1992, Science.
[58] Y. Ohashi,et al. Stress-induced expression of genes for pathogenesis-related proteins in plants , 1992 .
[59] I. Raskin,et al. Signal molecules in systemic plant resistance to pathogens and pests , 1992, Cell.
[60] D. Klessig,et al. Salicylic acid and plant disease resistance , 1992 .
[61] K. Palme,et al. A protein from maize labeled with azido‐IAA has novel β‐glucosidase activity , 1992 .
[62] E. Jensen,et al. Hydrolysis and reconjugation of gibberellin A20 glucosyl ester by seedlings of Zea mays L. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[63] N. Yalpani,et al. Partial purification and properties of an inducible uridine 5'-diphosphate-glucose-salicylic Acid glucosyltransferase from oat roots. , 1992, Plant physiology.
[64] J. Ecker,et al. Disease development in ethylene-insensitive Arabidopsis thaliana infected with virulent and avirulent Pseudomonas and Xanthomonas pathogens. , 1992, Molecular plant-microbe interactions : MPMI.
[65] R. Fluhr,et al. Calcium Requirement for Ethylene-Dependent Responses. , 1992, The Plant cell.
[66] C. Lamb,et al. Elicitor- and wound-induced oxidative cross-linking of a proline-rich plant cell wall protein: A novel, rapid defense response , 1992, Cell.
[67] G. Pearce,et al. Structure, expression, and antisense inhibition of the systemin precursor gene. , 1992, Science.
[68] I. Raskin,et al. Localization, conjugation, and function of salicylic acid in tobacco during the hypersensitive reaction to tobacco mosaic virus. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[69] C. Baker,et al. Early physiological responses associated with race-specific recognition in soybean leaf tissue and cell suspensions treated with Pseudomonas syringae pv. glycinea , 1992 .
[70] D. Klessig,et al. Temperature-Dependent Induction of Salicylic Acid and Its Conjugates during the Resistance Response to Tobacco Mosaic Virus Infection. , 1992, The Plant cell.
[71] E. Farmer,et al. Octadecanoid Precursors of Jasmonic Acid Activate the Synthesis of Wound-Inducible Proteinase Inhibitors. , 1992, The Plant cell.
[72] R. Hammerschmidt,et al. Systemic Induction of Salicylic Acid Accumulation in Cucumber after Inoculation with Pseudomonas syringae pv syringae. , 1991, Plant physiology.
[73] R. Cressman,et al. Transgenic Plants with Enhanced Resistance to the Fungal Pathogen Rhizoctonia solani , 1991, Science.
[74] J. Estruch,et al. The protein encoded by the rolB plant oncogene hydrolyses indole glucosides. , 1991, The EMBO journal.
[75] K. Grossmann,et al. The plant oncogene rolC is responsible for the release of cytokinins from glucoside conjugates. , 1991, The EMBO journal.
[76] J. A. Ryals,et al. Coordinate Gene Activity in Response to Agents That Induce Systemic Acquired Resistance. , 1991, The Plant cell.
[77] D. Klessig,et al. Identification of a soluble salicylic acid-binding protein that may function in signal transduction in the plant disease-resistance response. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[78] D. Hildebrand,et al. The soybean 94-kilodalton vegetative storage protein is a lipoxygenase that is localized in paraveinal mesophyll cell vacuoles. , 1991, The Plant cell.
[79] G. Pearce,et al. A Polypeptide from Tomato Leaves Induces Wound-Inducible Proteinase Inhibitor Proteins , 1991, Science.
[80] M. Sutherland. The generation of oxygen radicals during host plant responses to infection , 1991 .
[81] P. Baeuerle,et al. A role for oxygen radicals as second messengers. , 1991, Trends in cell biology.
[82] I. Raskin,et al. Salicylic acid is a systemic signal and an inducer of pathogenesis-related proteins in virus-infected tobacco. , 1991, The Plant cell.
[83] W. K. Roberts,et al. A new family of plant antifungal proteins. , 1991, Molecular plant-microbe interactions : MPMI.
[84] C. Woloshuk,et al. Pathogen-induced proteins with inhibitory activity toward Phytophthora infestans. , 1991, The Plant cell.
[85] M. Karin,et al. Rapid and preferential activation of the c-jun gene during the mammalian UV response , 1991, Molecular and cellular biology.
[86] Jennifer A. Smith,et al. Rapid induction of systemic resistance in cucumber by Pseudomonas syringae pv. syringae , 1991 .
[87] N. O'neill,et al. Early responses during plant-bacteria interactions in tobacco cell suspensions , 1991 .
[88] D F Klessig,et al. Salicylic Acid: A Likely Endogenous Signal in the Resistance Response of Tobacco to Viral Infection , 1990, Science.
[89] H. Signer,et al. Increase in Salicylic Acid at the Onset of Systemic Acquired Resistance in Cucumber , 1990, Science.
[90] D. Shah,et al. Isolation and Characterization of the Genes Encoding Basic and Acidic Chitinase in Arabidopsis thaliana. , 1990, Plant physiology.
[91] M. Tabata,et al. Glucosylation of isomeric hydroxybenzoic acids by cell suspension cultures of Mallotus japonicus , 1990 .
[92] R. Fluhr,et al. Function and regulated accumulation of plant pathogenesis-related proteins. , 1990 .
[93] D. Bowles,et al. Defense-related proteins in higher plants. , 1990, Annual review of biochemistry.
[94] C. Baker,et al. O2--Initiated lipid peroxidation in a bacteria-induced hypersensitive reaction in tobacco cell suspensions , 1989 .
[95] C. Baker,et al. Active oxygen production during a bacteria-induced hypersensitive reaction in tobacco suspension cells , 1989 .
[96] D. Bowles,et al. The wound response of tomato plants can be inhibited by aspirin and related hydroxy-benzoic acids , 1988 .
[97] T. Boller,et al. Antifungal Hydrolases in Pea Tissue : II. Inhibition of Fungal Growth by Combinations of Chitinase and beta-1,3-Glucanase. , 1988, Plant physiology.
[98] Y. Ohashi,et al. Involvement of an O2− generating system in the induction of necrotic lesions on tobacco leaves infected with tobacco mosaic virus , 1988 .
[99] N. Doke,et al. Superoxide anion generation: a response of potato leaves to infection with Phytophthora infestans , 1987 .
[100] A. Novacky,et al. Involvement of membrane lipid peroxidation in the development of a bacterially induced hypersensitive reaction , 1986 .
[101] T. Boller,et al. Ethylene: Symptom, Not Signal for the Induction of Chitinase and beta-1,3-Glucanase in Pea Pods by Pathogens and Elicitors. , 1984, Plant physiology.
[102] N. Doke. Involvement of superoxide anion generation in the hypersensitive response of potato tuber tissues to infection with an incompatible race of Phytophthora infestans and to the hyphal wall components , 1983 .
[103] N. Doke. Generation of superoxide anion by potato tuber protoplasts during the hypersensitive response to hyphal wall components of Phytophthora infestans and specific inhibition of the reaction by suppressors of hypersensitivity , 1983 .
[104] J. Kuc. Induced Immunity to Plant Disease , 1982 .
[105] J. Antoniw,et al. The effects of aspirin and polyacrylic acid on soluble leaf proteins and resistance to virus infection in five cultivars of tobacco. , 1980 .
[106] R. F. White. Acetylsalicylic acid (aspirin) induces resistance to tobacco mosaic virus in tobacco. , 1979, Virology.
[107] Stewart A. Brown,et al. Biosynthesis of phenolic acids in tomato plants infected with Agrobacterium tumefaciens , 1974 .
[108] G. Towers,et al. The biosynthesis of hydroxybenzoic acids in higher plants , 1964 .
[109] A. Ross. Systemic acquired resistance induced by localized virus infections in plants. , 1961, Virology.
[110] A. N. Langford. Autogenous necrosis in tomatoes immune from Cladosporium fulvum Cooke. , 1948, Canadian journal of research.
[111] K. S. Chester. The Problem of Acquired Physiological Immunity in Plants , 1933, The Quarterly Review of Biology.