Secondary metabolites in plant innate immunity: conserved function of divergent chemicals.
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Paweł Bednarek | P. Bednarek | A. Piasecka | Anna Piasecka | Nicolas Jedrzejczak-Rey | Nicolas Jedrzejczak-Rey
[1] B. Thomma,et al. Deficiency in phytoalexin production causes enhanced susceptibility of Arabidopsis thaliana to the fungus Alternaria brassicicola. , 1999, The Plant journal : for cell and molecular biology.
[2] Gergely Maróti,et al. Natural roles of antimicrobial peptides in microbes, plants and animals. , 2011, Research in microbiology.
[3] R. Tschesche,et al. Steroidsaponine mit mehr als einer Zuckerkette, V. Avenacosid B, ein zweites bisdesmosidisches Steroidsaponin aus Avena sativa , 1971 .
[4] D. Klessig,et al. Salicylic Acid, a multifaceted hormone to combat disease. , 2009, Annual review of phytopathology.
[5] Huanbin Zhou,et al. Catalytic domain of the diversified Pseudomonas syringae type III effector HopZ1 determines the allelic specificity in plant hosts , 2010, Molecular microbiology.
[6] I. Mori,et al. Myrosinases, TGG1 and TGG2, redundantly function in ABA and MeJA signaling in Arabidopsis guard cells. , 2009, Plant & cell physiology.
[7] B. Halkier,et al. Cytosolic γ-Glutamyl Peptidases Process Glutathione Conjugates in the Biosynthesis of Glucosinolates and Camalexin in Arabidopsis[W][OA] , 2011, Plant Cell.
[8] I. Mori,et al. Allyl isothiocyanate (AITC) induces stomatal closure in Arabidopsis. , 2011, Plant, cell & environment.
[9] R. J. Cole,et al. Isolation, purification, and liquid chromatographic determination of stilbene phytoalexins in peanuts , 1995 .
[10] B. Keller,et al. A Putative ABC Transporter Confers Durable Resistance to Multiple Fungal Pathogens in Wheat , 2009, Science.
[11] H. Vanetten. Studies on the Mode of Action of the Phytoalexin Phaseollin , 1971 .
[12] John C. Roberts,et al. A synthesis of mangiferin , 1967 .
[13] P. Schulze-Lefert,et al. Tryptophan-derived secondary metabolites in Arabidopsis thaliana confer non-host resistance to necrotrophic Plectosphaerella cucumerina fungi. , 2010, The Plant journal : for cell and molecular biology.
[14] M. Ueffing,et al. Functional Proteomics , 2008, Methods in Molecular Biology.
[15] K. Goellner,et al. Characterization of nonhost resistance of Arabidopsis to the Asian soybean rust. , 2008, Molecular plant-microbe interactions : MPMI.
[16] I. Sønderby,et al. Biosynthesis of glucosinolates--gene discovery and beyond. , 2010, Trends in plant science.
[17] Victor Flors,et al. Callose deposition: a multifaceted plant defense response. , 2011, Molecular plant-microbe interactions : MPMI.
[18] H. Kindl,et al. Disease resistance results from foreign phytoalexin expression in a novel plant , 1993, Nature.
[19] B. Halkier,et al. Assigning Gene Function in Biosynthetic Pathways: Camalexin and Beyond , 2013, Plant Cell.
[20] Frederick M. Ausubel,et al. Glucosinolate Metabolites Required for an Arabidopsis Innate Immune Response , 2009, Science.
[21] J. Glazebrook,et al. Arabidopsis PAD 3 , a Gene Required for Camalexin Biosynthesis , Encodes a Putative Cytochrome P 450 Monooxygenase , 1999 .
[22] Kazuki Saito,et al. Leaf Oil Body Functions as a Subcellular Factory for the Production of a Phytoalexin in Arabidopsis1[W] , 2013, Plant Physiology.
[23] R. H. Hamilton. A Corn Mutant Deficient in 2,4-Dihydroxy-7-methoxy-1,4- benzoxazin-3-one with an Altered Tolerance of Atrazine' , 1964 .
[24] BOTANiCAL Gazette. Disease Resistance , 1918, Botanical Gazette.
[25] Joachim Schröder,et al. Evidence that stilbene synthases have developed from chalcone synthases several times in the course of evolution , 1994, Journal of Molecular Evolution.
[26] A. Osbourn,et al. A Serine Carboxypeptidase-Like Acyltransferase Is Required for Synthesis of Antimicrobial Compounds and Disease Resistance in Oats[W][OA] , 2009, The Plant Cell Online.
[27] P. Schulze-Lefert,et al. Entry Mode–Dependent Function of an Indole Glucosinolate Pathway in Arabidopsis for Nonhost Resistance against Anthracnose Pathogens[W] , 2010, Plant Cell.
[28] P Albersheim,et al. Host-Pathogen Interactions : XXIII. The Mechanism of the Antibacterial Action of Glycinol, a Pterocarpan Phytoalexin Synthesized by Soybeans. , 1983, Plant physiology.
[29] Thomas Hartmann,et al. The lost origin of chemical ecology in the late 19th century , 2008, Proceedings of the National Academy of Sciences.
[30] Jonathan D. G. Jones,et al. The plant immune system , 2006, Nature.
[31] O. Mattsson,et al. Inclusions of flavonoid 3-deoxyanthocyanidins in Sorghum bicolor self-organize into spherical structures , 2004 .
[32] A. Ishikawa,et al. AGB1 and PMR5 contribute to PEN2-mediated preinvasion resistance to Magnaporthe oryzae in Arabidopsis thaliana. , 2009, Molecular plant-microbe interactions : MPMI.
[33] M. Pedras,et al. The phytoalexins from cultivated and wild crucifers: chemistry and biology. , 2011, Natural product reports.
[34] C. Lamb,et al. Pseudomonas sax Genes Overcome Aliphatic Isothiocyanate–Mediated Non-Host Resistance in Arabidopsis , 2011, Science.
[35] J. Gershenzon,et al. Genetic evidence for natural product-mediated plant-plant allelopathy in rice (Oryza sativa). , 2012, The New phytologist.
[36] P. Albersheim,et al. XII. RESPONSE OF SUSPENSION-CULTURED SOYBEAN CELLS TO THE ELICITOR ISOLATED FROM PHYTOPHTHORA MEGASPERMA VAR. SOJAE, A FUNGAL PATHOGEN OF SOYBEANS1 , 1976 .
[37] H. Niemeyer. Hydroxamic acids (4-hydroxy-1,4-benzoxazin-3-ones), defence chemicals in the Gramineae , 1988 .
[38] H. Vogel,et al. The Gene Controlling the Indole Glucosinolate Modifier1 Quantitative Trait Locus Alters Indole Glucosinolate Structures and Aphid Resistance in Arabidopsis[W] , 2009, The Plant Cell Online.
[39] R. Mithen,et al. In vitro activity of glucosinolates and their products against Leptosphaeria maculans , 1986 .
[40] A. Osbourn,et al. A different function for a member of an ancient and highly conserved cytochrome P450 family: From essential sterols to plant defense , 2006, Proceedings of the National Academy of Sciences.
[41] P. Schulze-Lefert,et al. Conservation and clade-specific diversification of pathogen-inducible tryptophan and indole glucosinolate metabolism in Arabidopsis thaliana relatives. , 2011, The New phytologist.
[42] A. Osbourn,et al. The saponins: polar isoprenoids with important and diverse biological activities. , 2011, Natural product reports.
[43] B. Poinssot,et al. Identification of PAD2 as a gamma-glutamylcysteine synthetase highlights the importance of glutathione in disease resistance of Arabidopsis. , 2006, The Plant journal : for cell and molecular biology.
[44] M. Hirai,et al. Role of camalexin, indole glucosinolates, and side chain modification of glucosinolate-derived isothiocyanates in defense of Arabidopsis against Sclerotinia sclerotiorum. , 2011, The Plant journal : for cell and molecular biology.
[45] C. Voigt. Callose-mediated resistance to pathogenic intruders in plant defense-related papillae , 2014, Front. Plant Sci..
[46] M. Burow,et al. Glucosinolate Breakdown in Arabidopsis: Mechanism, Regulation and Biological Significance , 2010, The arabidopsis book.
[47] A. Bones,et al. The enzymic and chemically induced decomposition of glucosinolates. , 2006, Phytochemistry.
[48] H. Kunoh,et al. Dynamic reorganization of microfilaments and microtubules is necessary for the expression of non‐host resistance in barley coleoptile cells , 1997 .
[49] J. Paxton. Phytoalexins — A Working Redefinition , 1981 .
[50] Y. Narusaka,et al. Glutathione and tryptophan metabolism are required for Arabidopsis immunity during the hypersensitive response to hemibiotrophs , 2013, Proceedings of the National Academy of Sciences.
[51] A. Osbourn,et al. Host range of a plant pathogenic fungus determined by a saponin detoxifying enzyme , 1995, Science.
[52] R. Dixon,et al. Genetic Manipulation of Isoflavone 7-O-Methyltransferase Enhances Biosynthesis of 4′-O-Methylated Isoflavonoid Phytoalexins and Disease Resistance in Alfalfa , 2000, Plant Cell.
[53] P. Albersheim,et al. Host-Pathogen Interactions: XII. Response of Suspension-cultured Soybean Cells to the Elicitor Isolated from Phytophthora megasperma var. sojae, a Fungal Pathogen of Soybeans. , 1976, Plant physiology.
[54] Iffa Gaffoor,et al. Flavonoid Phytoalexin-Dependent Resistance to Anthracnose Leaf Blight Requires a Functional yellow seed1 in Sorghum bicolor , 2010, Genetics.
[55] J. Tewari,et al. The camalexins: new phytoalexins produced in the leaves of Camelina sativa (Cruciferae). , 1991 .
[56] P. Bednarek. Chemical warfare or modulators of defence responses - the function of secondary metabolites in plant immunity. , 2012, Current opinion in plant biology.
[57] R. Dixon,et al. Stress-Induced Phenylpropanoid Metabolism. , 1995, The Plant cell.
[58] F. Ausubel,et al. Innate Immune Responses Activated in Arabidopsis Roots by Microbe-Associated Molecular Patterns[W][OA] , 2010, Plant Cell.
[59] B. G. Hansen,et al. Camalexin is synthesized from indole-3-acetaldoxime, a key branching point between primary and secondary metabolism in Arabidopsis. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[60] P. Schulze-Lefert,et al. Barley MLO Modulates Actin-Dependent and Actin-Independent Antifungal Defense Pathways at the Cell Periphery1[W][OA] , 2007, Plant Physiology.
[61] A. Osbourn,et al. A new class of oxidosqualene cyclases directs synthesis of antimicrobial phytoprotectants in monocots , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[62] Wenwan Zhong,et al. Pseudomonas syringae type III effector HopZ1 targets a host enzyme to suppress isoflavone biosynthesis and promote infection in soybean. , 2011, Cell host & microbe.
[63] Phytoalexins and phytoanticipins from the wild crucifers Thellungiella halophila and Arabidopsis thaliana: rapalexin A, wasalexins and camalexin. , 2008, Phytochemistry.
[64] R. Peters,et al. Uncovering the complex metabolic network underlying diterpenoid phytoalexin biosynthesis in rice and other cereal crop plants. , 2006, Phytochemistry.
[65] B. Møller,et al. beta-Glucosidases as detonators of plant chemical defense. , 2008, Phytochemistry.
[66] E. Farmer,et al. Two Classes of Plant Antibiotics: Phytoalexins versus "Phytoanticipins" , 1994, The Plant cell.
[67] K. P. Link,et al. THE ISOLATION OF PROTOCATECHUIC ACID FROM PIGMENTED ONION SCALES AND ITS SIGNIFICANCE IN RELATION TO DISEASE RESISTANCE IN ONIONS , 1929 .
[68] Y. Hashimoto,et al. Chemistry of biologically active benzoxazinoids. , 1996, Phytochemistry.
[69] F. Ausubel,et al. Isolation of Arabidopsis mutants with enhanced disease susceptibility by direct screening. , 1996, Genetics.
[70] F. Kaplan,et al. Novel Acidic Sesquiterpenoids Constitute a Dominant Class of Pathogen-Induced Phytoalexins in Maize1[W][OA] , 2011, Plant Physiology.
[71] Xianghua Li,et al. Multiple phytohormones and phytoalexins are involved in disease resistance to Magnaporthe oryzae invaded from roots in rice. , 2014, Physiologia plantarum.
[72] D. Dixon,et al. The maize benzoxazinone DIMBOA reacts with glutathione and other thiols to form spirocyclic adducts. , 2012, Phytochemistry.
[73] K. Brown,et al. Biological targets of isothiocyanates. , 2011, Biochimica et biophysica acta.
[74] B. Halkier,et al. How to discover a metabolic pathway? An update on gene identification in aliphatic glucosinolate biosynthesis, regulation and transport , 2014, Biological chemistry.
[75] Sarah M Assmann,et al. Functional Proteomics of Arabidopsis thaliana Guard Cells Uncovers New Stomatal Signaling Pathways[W][OA] , 2008, The Plant Cell Online.
[76] J. Gershenzon,et al. The major volatile organic compound emitted from Arabidopsis thaliana flowers, the sesquiterpene (E)-β-caryophyllene, is a defense against a bacterial pathogen. , 2012, The New phytologist.
[77] B. Keller,et al. The wheat Lr34 gene provides resistance against multiple fungal pathogens in barley. , 2013, Plant biotechnology journal.
[78] N. Dudareva,et al. Plant Volatiles: Recent Advances and Future Perspectives , 2006 .
[79] H. Yoshioka,et al. Loss of AtPDR8, a plasma membrane ABC transporter of Arabidopsis thaliana, causes hypersensitive cell death upon pathogen infection. , 2006, Plant & cell physiology.
[80] R. Nicholson,et al. Synthesis of Phytoalexins in Sorghum as a Site-Specific Response to Fungal Ingress , 1990, Science.
[81] H. Schnabl,et al. Effects of 2,4-dihydroxy-1,4-benzoxazin-3-ones on the activity of plasma membrane H+-ATPase , 1997 .
[82] 裕美 佐々木,et al. Allyl isothiocyanate. , 2010, IARC monographs on the evaluation of carcinogenic risks to humans.
[83] D. Scheel,et al. The Multifunctional Enzyme CYP71B15 (PHYTOALEXIN DEFICIENT3) Converts Cysteine-Indole-3-Acetonitrile to Camalexin in the Indole-3-Acetonitrile Metabolic Network of Arabidopsis thaliana[W][OA] , 2009, The Plant Cell Online.
[84] Dean P. Jones,et al. Glutathione redox potential in response to differentiation and enzyme inducers. , 1999, Free radical biology & medicine.
[85] Erich Kombrink,et al. SNARE-protein-mediated disease resistance at the plant cell wall , 2003, Nature.
[86] R. D. de Vos,et al. Detoxification of α-tomatine by Cladosporium fulvum is required for full virulence on tomato. , 2013, The New phytologist.
[87] F. Ausubel,et al. Isolation of phytoalexin-deficient mutants of Arabidopsis thaliana and characterization of their interactions with bacterial pathogens. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[88] A. Mayer. Polyphenol oxidases in plants and fungi: going places? A review. , 2006, Phytochemistry.
[89] C. Steel,et al. Electrolyte leakage from plant and fungal tissues and disruption of liposome membranes by α-tomatine , 1988 .
[90] B. Halkier,et al. CYP 71 B 15 ( PAD 3 ) Catalyzes the Final Step in Camalexin Biosynthesis 1 , 2006 .
[91] M. Erb,et al. Benzoxazinoid Metabolites Regulate Innate Immunity against Aphids and Fungi in Maize1[W][OA] , 2011, Plant Physiology.
[92] M. Pedras,et al. The first naturally occurring aromatic isothiocyanates, rapalexins A and B, are cruciferous phytoalexins. , 2007, Chemical communications.
[93] J. Glazebrook,et al. Phytoalexin-deficient mutants of Arabidopsis reveal that PAD4 encodes a regulatory factor and that four PAD genes contribute to downy mildew resistance. , 1997, Genetics.
[94] P. Bednarek. Sulfur‐Containing Secondary Metabolites from Arabidopsis thaliana and other Brassicaceae with Function in Plant Immunity , 2012, Chembiochem : a European journal of chemical biology.
[95] M. Frey,et al. Benzoxazinoid biosynthesis, a model for evolution of secondary metabolic pathways in plants. , 2009, Phytochemistry.
[96] E. Andreasson,et al. Different myrosinase and idioblast distribution in Arabidopsis and Brassica napus. , 2001, Plant physiology.
[97] J. Noel,et al. The Rise of Chemodiversity in Plants , 2012, Science.
[98] A. Giesemann,et al. Cyanogenesis inhibits active defense reactions in plants. , 1989, Plant physiology.
[99] G. Jander,et al. Arabidopsis myrosinases TGG1 and TGG2 have redundant function in glucosinolate breakdown and insect defense. , 2006, The Plant journal : for cell and molecular biology.
[100] A. Loraine,et al. A regulon conserved in monocot and dicot plants defines a functional module in antifungal plant immunity , 2010, Proceedings of the National Academy of Sciences.
[101] Riyaz Bhat,et al. Pre- and Postinvasion Defenses Both Contribute to Nonhost Resistance in Arabidopsis , 2005, Science.
[102] Joop J A van Loon,et al. Role of glucosinolates in insect-plant relationships and multitrophic interactions. , 2009, Annual review of entomology.
[103] P. Schäfer,et al. Broad-Spectrum Suppression of Innate Immunity Is Required for Colonization of Arabidopsis Roots by the Fungus Piriformospora indica1[C][W] , 2011, Plant Physiology.
[104] H. Niemeyer,et al. Reaction of dimboa, a resistance factor from cereals, with α-chymotrypsin , 1990 .
[105] B. Halkier,et al. Metabolic Engineering in Nicotiana benthamiana Reveals Key Enzyme Functions in Arabidopsis Indole Glucosinolate Modification[W] , 2011, Plant Cell.
[106] B. Møller. Functional diversifications of cyanogenic glucosides. , 2010, Current opinion in plant biology.
[107] R. Otto,et al. Experimentelle Untersuchungen , 1931, Zeitschrift für Hygiene und Infektionskrankheiten.
[108] J. Glazebrook,et al. Arabidopsis Cytochrome P450 Monooxygenase 71A13 Catalyzes the Conversion of Indole-3-Acetaldoxime in Camalexin Synthesis[W] , 2007, The Plant Cell Online.
[109] T. Toyomasu,et al. Reverse-genetic approach to verify physiological roles of rice phytoalexins: characterization of a knockdown mutant of OsCPS4 phytoalexin biosynthetic gene in rice. , 2014, Physiologia plantarum.
[110] M. R. Thorpe,et al. Identification of a new glucosinolate-rich cell type in Arabidopsis flower stalk. , 2000, Plant physiology.
[111] M Frey,et al. Analysis of a chemical plant defense mechanism in grasses. , 1997, Science.
[112] Frederick M Ausubel,et al. Arabidopsis local resistance to Botrytis cinerea involves salicylic acid and camalexin and requires EDS4 and PAD2, but not SID2, EDS5 or PAD4. , 2003, The Plant journal : for cell and molecular biology.
[113] Meimei Xu,et al. Functional identification of rice syn-copalyl diphosphate synthase and its role in initiating biosynthesis of diterpenoid phytoalexin/allelopathic natural products. , 2004, The Plant journal : for cell and molecular biology.
[114] M. Pedras,et al. Dissecting metabolic puzzles through isotope feeding: a novel amino acid in the biosynthetic pathway of the cruciferous phytoalexins rapalexin A and isocyalexin A. , 2013, Organic & biomolecular chemistry.
[115] I. Mitsuhara,et al. Analysis on Blast Fungus-Responsive Characters of a Flavonoid Phytoalexin Sakuranetin; Accumulation in Infected Rice Leaves, Antifungal Activity and Detoxification by Fungus , 2014, Molecules.
[116] B. Thomma,et al. Study of the role of antimicrobial glucosinolate-derived isothiocyanates in resistance of Arabidopsis to microbial pathogens. , 2001, Plant physiology.
[117] B. Møller,et al. Cyanogenic glycosides: synthesis, physiology, and phenotypic plasticity. , 2014, Annual review of plant biology.
[118] Patrik R. Jones,et al. Resistance to an Herbivore Through Engineered Cyanogenic Glucoside Synthesis , 2001, Science.
[119] John P. Rathjen,et al. Plant immunity: towards an integrated view of plant–pathogen interactions , 2010, Nature Reviews Genetics.
[120] S. Kiyosawa,et al. Sakuranetin, a flavanone phytoalexin from ultraviolet-irradiated rice leaves , 1992 .
[121] C. Olsen,et al. Reconstitution of cyanogenesis in barley (Hordeum vulgare L.) and its implications for resistance against the barley powdery mildew fungus , 2006, Planta.
[122] A. Faizal,et al. Saponins and their role in biological processes in plants , 2013, Phytochemistry Reviews.
[123] D F Klessig,et al. PAD4 Functions Upstream from Salicylic Acid to Control Defense Responses in Arabidopsis , 1998, Plant Cell.
[124] A. Osbourn,et al. A saponin-detoxifying enzyme mediates suppression of plant defences , 2002, Nature.
[125] J. Ride,et al. Chemical activation of host defence mechanisms as a basis for crop protection , 1977, Nature.
[126] M. Kluge,et al. Detoxification of Benzoxazolinone Allelochemicals from Wheat byGaeumannomyces graminis var. tritici, G. graminis var. graminis, G. graminis var.avenae, and Fusarium culmorum , 1998, Applied and Environmental Microbiology.
[127] B. Purnelle,et al. A Plant Plasma Membrane ATP Binding Cassette–Type Transporter Is Involved in Antifungal Terpenoid Secretion , 2001, Plant Cell.
[128] C. Olsen,et al. Glucosinolate structures in evolution. , 2012, Phytochemistry.
[129] J. Maizel,et al. AVENACIN, AN ANTIMICROBIAL SUBSTANCE ISOLATED FROM AVENA SATIVA. II. STRUCTURE. , 1964, Biochemistry.
[130] G. Wulff,et al. Steroidsaponine mit mehr als einer Zuckerkette, IV. Avenacosid A, ein bisdesmosidisches Steroidsaponin aus Avena sativa , 1969 .
[131] D. Kliebenstein,et al. A Systems Biology Approach Identifies a R2R3 MYB Gene Subfamily with Distinct and Overlapping Functions in Regulation of Aliphatic Glucosinolates , 2007, PloS one.
[132] W. Bottomley,et al. Pisatin: an Antifungal Substance from Pisum sativum L. , 1961, Nature.
[133] R. Peters,et al. Biosynthesis, elicitation and roles of monocot terpenoid phytoalexins. , 2014, The Plant journal : for cell and molecular biology.
[134] V. P. D. Souza,et al. Semiempirical simulation of a theta-class glutathione S-transferase-catalyzed glutathione attack to the allelochemical DIMBOA , 2002 .
[135] W. Boerjan,et al. The role of the secondary cell wall in plant resistance to pathogens , 2014, Front. Plant Sci..
[136] A. Osbourn,et al. Compromised disease resistance in saponin-deficient plants. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[137] W. Jongen,et al. Molecular basis of glycoalkaloid induced membrane disruption. , 1995, Biochimica et biophysica acta.
[138] O. Yu,et al. RNAi Silencing of Genes for Elicitation or Biosynthesis of 5-Deoxyisoflavonoids Suppresses Race-Specific Resistance and Hypersensitive Cell Death in Phytophthora sojae Infected Tissues1[OA] , 2007, Plant Physiology.
[139] L. Crombie,et al. Structures of the oat root resistance factors to ‘take-all’ disease, avenancins A-1, A-2, B-1 and B-2 and their companion substances , 1986 .
[140] R. Dixon. Natural products and plant disease resistance , 2001, Nature.
[141] G. Wulff,et al. Steroidsaponine mit mehr als einer zuckerkette, III , 1968 .
[142] A. Bones,et al. Phytoalexins in defense against pathogens. , 2012, Trends in plant science.
[143] W. Schwab,et al. Benzoxazinoid biosynthesis in dicot plants. , 2008, Phytochemistry.
[144] I. Mori,et al. Regulation of reactive oxygen species-mediated abscisic acid signaling in guard cells and drought tolerance by glutathione , 2013, Front. Plant Sci..
[145] Paul Schulze-Lefert,et al. Arabidopsis PEN3/PDR8, an ATP Binding Cassette Transporter, Contributes to Nonhost Resistance to Inappropriate Pathogens That Enter by Direct Penetration[W][OA] , 2006, The Plant Cell Online.
[146] T. Rattei,et al. Comparative Analysis of Benzoxazinoid Biosynthesis in Monocots and Dicots: Independent Recruitment of Stabilization and Activation Functions[W][OA] , 2012, Plant Cell.
[147] A. Osbourn,et al. The membrane-permeabilizing effect of avenacin A-1 involves the reorganization of bilayer cholesterol. , 1999, Biophysical journal.
[148] C. Olsen,et al. Leucine-Derived Cyano Glucosides in Barley1 , 2002, Plant Physiology.
[149] J. Tokuhisa,et al. Benzoic acid glucosinolate esters and other glucosinolates from Arabidopsis thaliana. , 2002, Phytochemistry.
[150] P. Schulze-Lefert,et al. A Glucosinolate Metabolism Pathway in Living Plant Cells Mediates Broad-Spectrum Antifungal Defense , 2009, Science.
[151] J. Maizel,et al. AVENACIN, AN ANTIMICROBIAL SUBSTANCE ISOLATED FROM AVENA SATIVA. I. ISOLATION AND ANTIMICROBIAL ACTIVITY. , 1964, Biochemistry.
[152] M. Hamberg,et al. Involvement of the Electrophilic Isothiocyanate Sulforaphane in Arabidopsis Local Defense Responses1 , 2014, Plant Physiology.
[153] M. Levy,et al. The Effects of Glucosinolates and Their Breakdown Products on Necrotrophic Fungi , 2013, PloS one.
[154] S. Somerville,et al. Phytoalexin Accumulation in Arabidopsis thaliana during the Hypersensitive Reaction to Pseudomonas syringae pv syringae. , 1992, Plant physiology.
[155] Søren Bak,et al. The presence of CYP79 homologues in glucosinolate-producing plants shows evolutionary conservation of the enzymes in the conversion of amino acid to aldoxime in the biosynthesis of cyanogenic glucosides and glucosinolates , 1998, Plant Molecular Biology.
[156] N. Buhot,et al. Role of the penetration-resistance genes PEN1, PEN2 and PEN3 in the hypersensitive response and race-specific resistance in Arabidopsis thaliana. , 2014, The Plant journal : for cell and molecular biology.
[157] J. Glazebrook,et al. Arabidopsis PAD3, a Gene Required for Camalexin Biosynthesis, Encodes a Putative Cytochrome P450 Monooxygenase , 1999, Plant Cell.
[158] E. T. Palva,et al. Jasmonate-dependent induction of indole glucosinolates in Arabidopsis by culture filtrates of the nonspecific pathogen Erwinia carotovora. , 2001, Plant physiology.
[159] B. Halkier,et al. CYP71B15 (PAD3) Catalyzes the Final Step in Camalexin Biosynthesis1 , 2006, Plant Physiology.
[160] H. Niemeyer,et al. Reaction of dimboa, a resistance factor from cereals, with papain , 1989 .
[161] K. Schlaeppi,et al. Disease resistance of Arabidopsis to Phytophthora brassicae is established by the sequential action of indole glucosinolates and camalexin. , 2010, The Plant journal : for cell and molecular biology.
[162] Barbara Ann Halkier,et al. Biology and biochemistry of glucosinolates. , 2006, Annual review of plant biology.
[163] D. Kliebenstein,et al. Secondary metabolites influence Arabidopsis/Botrytis interactions: variation in host production and pathogen sensitivity. , 2005, The Plant journal : for cell and molecular biology.
[164] Xu Li,et al. Forward Genetics by Genome Sequencing Reveals That Rapid Cyanide Release Deters Insect Herbivory of Sorghum bicolor , 2013, Genetics.
[165] G. M. Dunn,et al. Role of cyclic hydroxamic acids in monogenic resistance of maize to Helminthosporium turcicum , 1971 .
[166] D. Ballhorn,et al. Direct trade‐off between cyanogenesis and resistance to a fungal pathogen in lima bean (Phaseolus lunatus L.) , 2010 .
[167] F. Kaplan,et al. Identity, regulation, and activity of inducible diterpenoid phytoalexins in maize , 2011, Proceedings of the National Academy of Sciences.
[168] H. Niemeyer,et al. Reaction of DIMBOA with amines , 1989 .
[169] Harjono,et al. Mutation of a gene in the fungus Leptosphaeria maculans allows increased frequency of penetration of stomatal apertures of Arabidopsis thaliana. , 2008, Molecular plant.
[170] P. Langcake,et al. The production of resveratrol by Vitis vinifera and other members of the Vitaceae as a response to infection or injury , 1976 .
[171] F. Ausubel,et al. Arabidopsis thaliana PAD4 encodes a lipase-like gene that is important for salicylic acid signaling. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[172] H. Iwamura,et al. Accumulation of HDMBOA-Glc is induced by biotic stresses prior to the release of MBOA in maize leaves. , 2004, Phytochemistry.
[173] NpPDR1, a Pleiotropic Drug Resistance-Type ATP-Binding Cassette Transporter from Nicotiana plumbaginifolia, Plays a Major Role in Plant Pathogen Defense1 , 2005, Plant Physiology.
[174] A. Osbourn,et al. Modularity of Plant Metabolic Gene Clusters: A Trio of Linked Genes That Are Collectively Required for Acylation of Triterpenes in Oat[W][OA] , 2013, Plant Cell.