Rommens and Kishore, 2000, Current Opin. in Biotechnology, 11:120-125, “Exploiting the full potential of disease-resistance genes for agricultural use”. |
Delaney, T. P. et al., “Arabidopsis signal transduction mutant defective in chemically and biologically induced disease resistance.” 1995, Proc. Natl. Acad. Sci. USA, vol. 92, pp. 6602-6606.* |
Ryals, J. et al., “The Arabidopsis NIM1 Protein Shows Homology to the Mammalian Transcription Factor Inhibitor IkB.” 1997, The Plant Cell, vol. 9, pp. 425-439.* |
Broun, P. et al., “Catalytic Plasticity of Fatty Acid Modification Enzymes Underlying Chemical Diversity of Plant Lipids.” 1998, Science, vol. 282, pp. 1315-1317.* |
Lazar, E. et al., “Transforming Growth Factor a: Mutation of Aspartic Acid 47 and Leucine 48 Results in Different Biological Activities.” 1988, Molecular and Cellular Biology, vol. 8, pp. 1247-1252.* |
Bowie, J. U. et al., “Deciphering the Message in Protein Sequences: Tolerance to Amino Acid Substitutions.” 1990, Science, vol. 247, pp. 1306-1310.* |
Hill, M. A. and Preiss, J. “Functional Analysis of Conserved Histidines in ADP-Glucose Pyrophosphorylase from Escherichia coli.” 1998, Biochemical and Biophysical Res. Comm., vol. 244, pp. 573-577.* |
Cao, et al., 1997, Cell, 88: 57-63, “The Arabidopsis NPR1 Gene that Controls Systemic Acquired Resistance Encodes a Novel Protein Containing Ankyrin Repeats”. |
Cao, et al., 1994, The Plant Cell, 6: 1583-1592, “Characterization of an Arabidopsis Mutant That Is Nonresponsive to Inducers of Systemic Acquired Resistance”. |
Volko, et al., 1998, Genetics, 149: 537-548, “Isolation of New Arabidopsis Mutants With Enhanced Disease Susceptibility to Pseudomonas syringae by Direct Screening”. |
Shah, et al., 1997, MPMI, 10(1): 69-78, “Characterization of a Salicylic Acid-Insensitive Mutant (sail) of Arabidopsis thaliana, Identified in a Selective Screen Utilizing the SA-Inducible Expression of the tm2 Gene”. |
Delaney, et al., 1995, Proc. Natl. Acad. Sci. USA, 92: 6602-6606, “Arabidopsis signal transduction mutant defective in chemically and biologically induced disease resistance”. |
Cao, et al., 1998, Proc. Natl. Acad. Sci. USA, 95: 6531-6536, “Generation of broad-spectrum disease resistance by overexpression of an essential regulatory gene in systemic acquired resistance”. |
Ryals, et al., 1997, The Plant Cell, 9: 425-439, “The Arabidopsis NIMI Protein Shows Homology to the Mammalian Transcription Factor Inhibitor IKB”. |
Glazebrook, et al., 1996, Genetics, 143: 973-982, “Isolation of Arabidopsis Mutants With Enhanced Disease Susceptibility by Direct Screening”. |
Bowling, et al., 1997, Plant Cell, 9: 1573-1584, “The cpr5 Mutant of Arabidopsis Expresses Both NPR-1 Dependent and NPR1-Independent Resistance”. |
Buell, C. Robin, 1998, Plant Physiol. Biochem, 36(1-2): 177-186, “Arabidopsis: A weed leading the field of plant-pathogen interactions”. |
Clarke, et al., 1998, Plant Cell, 10: 557-569, “Uncoupling PR Gene Expression from NPR1 and Bacterial Resistance: Characterization of the Dominant Arabidopsis cpr6-1 Mutant”. |
He, et al., 1998, Plant J., 14 (1): 55-63, “Requirement for the induced expression of a cell wall associated receptor kinase for survival during the pathogen response”. |
Pieterse, et al., 1998, Plant Cell, 10: 1571-1580, “A Novel Signaling Pathway Controlling Induced Systemic Resistance in Arabidopsis”. |
Reuber, et al., 1998, Plant J., 16(4): 473-485, “Correlation of defense gene induction defects with powdery mildew susceptibility in Arabidopsis enhanced disease susceptibility mutants”. |
Simons, et al., 1999, Plant Phys., 120: 529-538, “Enhanced Expression and Activation of the Alternative Oxidase during Infection of Arabidopsis with Pseudomonas syringae pv tomato1”. |
Shah, et al., 1999 Plant Cell, 11: 191-206, “The Arabidopsis ssi1 Mutation Restores Pathogenesis-Related Gene Expression in npr1 Plants and Renders Defensin Gene Expression Salicylic Acid Dependent”. |
Zhang, et al., 1999, Proc. Natl. Acad. Sci. USA, 96: 6523-6528, “Interaction of NPR1 with basic leucine zipper protein transcription factors that bind sequences required for salicylic acid induction of the PR-1 gene”. |
Molina, et al., 1999, Plant J., 17(6): 667-678, “Inhibition of protoporphyrinogen oxidase expression in Arabidopsis causes a lesion-mimic phenotype that induces systemic acquired resistance”. |
Dong, et al., 1999, Plant J., 20(2): 207-215, “Harpin induces disease resistance in Arabidopsis through the systemic acquired resistance pathway mediated by salicylic acid and the NIM1 gene”. |
Kachroo, et al., 2000, Plant Cell, 12: 677-690, “Resistance to Turnip Crinkle Virus in Arabidopsis Is Regulated by Two Host Genes and Is Salicylic Acid Dependent but NPR1, Ethylene, and Jasmonate Independent”. |
Despres, et al., 2000, Plant Cell, 12: 279-290, “The Arabidopsis NPR1/NIM1 Protein Enhances the DNA Binding Activity of a Subgroup of the TGA Family of bZIP Transcription Factors”. |
Lawton, et al., 1996, Plant J., 10(1): 71-82, “Benzothiadiazole induces disease resistance in Arabidopsis by activation of the systemic acquired resistance signal transduction pathway”. |
Molina, et al., 1998, Plant Cell, 10: 1903-1914, “Impaired Fungicide Activity in Plants Blocked in Disease Resistance Signal Transduction”. |
Sanmiguel, P.J., et al., 1998, EMBL Accession No. AF050451, “Zea mays retrotransposon Opie-1 5' LTR, partial sequence”. |
Kadyrzhanova, D., et al., 1995, EMBL Accession No. L43984, “Hordeum vulgare (clone ABG377) chromosome 3H STS mRNA, sequence tagged site”. |
Shoemaker, R., et al., 1999, EMBL Accession No. AI442277, “sa66a04.yl Gm-c1004 Glycine max cDNA clone Genome Systems Clone ID: Gm-c1004-4231 5'similar to TR:P93002 P93002 Regulatory Protein NPR1.; mRNA sequence”. |