Global gene expression profiling during Medicago truncatula-Phymatotrichopsis omnivora interaction reveals a role for jasmonic acid, ethylene, and the flavonoid pathway in disease development.
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R. Dixon | Yuhong Tang | K. Mysore | J. Nakashima | S. R. Uppalapati | S. Marek | Hee-Kyung Lee | M. Sledge
[1] G. Weiller,et al. A gene expression atlas of the model legume Medicago truncatula. , 2008, The Plant journal : for cell and molecular biology.
[2] F. Mesnard,et al. Molecular characterization of cell death induced by a compatible interaction between Fusarium oxysporum f. sp. linii and flax (Linum usitatissimum) cells. , 2008, Plant physiology and biochemistry : PPB.
[3] Patrick X Zhao,et al. Large-scale Insertional Mutagenesis Using the Tnt1 Retrotransposon in the Model Legume Medicago Truncatula , 2007 .
[4] Ewa Urbanczyk-Wochniak,et al. Pathogenicity of Pseudomonas syringae pv. tomato on tomato seedlings: phenotypic and gene expression analyses of the virulence function of coronatine. , 2008, Molecular plant-microbe interactions : MPMI.
[5] Karam B. Singh,et al. Characterization of Pea Aphid Resistance in Medicago truncatula1[W][OA] , 2008, Plant Physiology.
[6] A. Rotter,et al. Adaptation of the MapMan ontology to biotic stress responses: application in solanaceous species , 2007, Plant Methods.
[7] S. Tahara. A Journey of Twenty-Five Years through the Ecological Biochemistry of Flavonoids , 2007, Bioscience, biotechnology, and biochemistry.
[8] Georg F. Weiller,et al. GeneBins: a database for classifying gene expression data, with application to plant genome arrays , 2007, BMC Bioinformatics.
[9] E. Lam,et al. Phytotoxicity and Innate Immune Responses Induced by Nep1-Like Proteins[W] , 2006, The Plant Cell Online.
[10] Georg F. Weiller,et al. Extending MapMan: application to legume genome arrays , 2006, Bioinform..
[11] C. Pieterse,et al. Significance of inducible defense-related proteins in infected plants. , 2006, Annual review of phytopathology.
[12] R. Sicher,et al. Necrosis- and Ethylene-Inducing Peptide from Fusarium oxysporum Induces a Complex Cascade of Transcripts Associated with Signal Transduction and Cell Death in Arabidopsis[W] , 2006, Plant Physiology.
[13] Jeffrey T. Leek,et al. Gene expression EDGE : extraction and analysis of differential gene expression , 2006 .
[14] P. Bonfante,et al. Arbuscular Mycorrhizal Fungi Elicit a Novel Intracellular Apparatus in Medicago truncatula Root Epidermal Cells before Infection[W] , 2005, The Plant Cell Online.
[15] M. Pedras,et al. Camalexin induces detoxification of the phytoalexin brassinin in the plant pathogen Leptosphaeria maculans. , 2005, Phytochemistry.
[16] J. Glazebrook. Contrasting mechanisms of defense against biotrophic and necrotrophic pathogens. , 2005, Annual review of phytopathology.
[17] T. Paulitz,et al. Root Defense Responses to Fungal Pathogens: A Molecular Perspective , 2005, Plant and Soil.
[18] K. Mysore,et al. Insertional mutagenesis: a Swiss Army knife for functional genomics of Medicago truncatula. , 2005, Trends in plant science.
[19] B. Roe,et al. Sequencing the Genespaces of Medicago truncatula and Lotus japonicus1 , 2005, Plant Physiology.
[20] M. Pedras,et al. Metabolism and detoxification of phytoalexins and analogs by phytopathogenic fungi. , 2005, Phytochemistry.
[21] John D. Storey,et al. Statistical significance for genomewide studies , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[22] T. Speed,et al. Summaries of Affymetrix GeneChip probe level data. , 2003, Nucleic acids research.
[23] F. Speleman,et al. Accurate normalization of real-time quantitative RT-PCR data by geometric averaging of multiple internal control genes , 2002, Genome Biology.
[24] B. Thomma,et al. The complexity of disease signaling in Arabidopsis. , 2001, Current opinion in immunology.
[25] C. Li,et al. Model-based analysis of oligonucleotide arrays: expression index computation and outlier detection. , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[26] T. Boller,et al. Differential expression of eight chitinase genes in Medicago truncatula roots during mycorrhiza formation, nodulation, and pathogen infection. , 2000, Molecular plant-microbe interactions : MPMI.
[27] A. Levine,et al. The hypersensitive response facilitates plant infection by the necrotrophic pathogen Botrytis cinerea , 2000, Current Biology.
[28] J. Dangl,et al. Signal transduction in the plant immune response. , 2000, Trends in biochemical sciences.
[29] R. Dixon,et al. Flavonoids and isoflavonoids - a gold mine for metabolic engineering. , 1999, Trends in plant science.
[30] C. Lawrence,et al. Genes from mycoparasitic fungi as a source for improving plant resistance to fungal pathogens. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[31] R. Leah,et al. Enhanced quantitative resistance against fungal disease by combinatorial expression of different barley antifungal proteins in transgenic tobacco. , 1995, The Plant journal : for cell and molecular biology.
[32] J. Beintema. Structural features of plant chitinases and chitin‐binding proteins , 1994, FEBS letters.
[33] R. Dixon,et al. Stress responses in alfalfa (Medicago sativa L.) XVI. Antifungal activity of medicarpin and its biosynthetic precursors; implications for the genetic manipulation of stress metabolites , 1992 .
[34] S. Lyda. Ecology of Phymatotrichum Omnivorum , 1978 .
[35] M. Postek,et al. Thiocarbohydrazide binding for botanical specimens for scanning electron microscopy: a modification , 1977 .
[36] H. E. Bloss. Phymatotrichum Root Rot , 1970 .
[37] H. Vogel. Distribution of Lysine Pathways Among Fungi: Evolutionary Implications , 1964, The American Naturalist.
[38] G. Watkins,et al. STRAND FORMATION IN PHYMATOTRICHUM OMNIVORUM , 1938 .
[39] L. Henderson. STUDIES ON THE INFECTION OF COTTON SEEDLINGS BY PHYMATOTRICHUM OMNIVORUM , 1937 .
[40] F. Bakker,et al. Positive selection in phytotoxic protein-encoding genes of Botrytis species. , 2007, Fungal genetics and biology : FG & B.
[41] I. Potrykus,et al. Effects of combined expression of antifungal barley seed proteins in transgenic wheat on powdery mildew infection , 2004, Molecular Breeding.
[42] S. R. Uppalapati,et al. Differential regulation of MBP kinases by a glycoproptein elicitor and a polypeptide suppressor from Mycosphaerella pinodes in pea , 2004 .
[43] G. Hartman,et al. Biochemical Response of Soybean Roots to f. sp. Infection , 2004 .
[44] Igor Dozmorov,et al. An associative analysis of gene expression array data , 2003, Bioinform..
[45] John D. Storey,et al. Statistical Significance for Genome-Wide Studies , 2003 .
[46] P. S. Matthews,et al. Phytoalexin detoxification: importance for pathogenicity and practical implications. , 1989, Annual review of phytopathology.
[47] R. G. Percy,et al. Potential range of Phymatotrichum omnivorum as determined by edaphic factors , 1983 .
[48] J. Harborne. Chemosystematics and coevolution , 1977 .
[49] G. L. Hennebert. Botrytis and Botrytis-like genera. , 1973 .
[50] L. Blank. The susceptibility of Cotton seedlings to Phymatotrichum omnivorum. , 1940 .
[51] L. H. Pammel. Root Rot of Cotton or "Cotton Blight" , 2022 .