Works matching DE "BOTRYTIS cinerea"
Results: 2126
Molecular cloning and expression analysis of SpWRKY6 gene from Solanum pimpinellifolium.
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- Biologia Plantarum, 2016, v. 60, n. 2, p. 226, doi. 10.1007/s10535-016-0582-x
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Expression of genes related to flavonoid and stilbene synthesis as affected by signaling chemicals and Botrytis cinerea in grapevines.
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- Biologia Plantarum, 2014, v. 58, n. 4, p. 758, doi. 10.1007/s10535-014-0437-2
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A positive regulatory role of the watermelon ClWRKY70 gene for disease resistance in transgenic Arabidopsis thaliana.
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- Biologia Plantarum, 2012, v. 56, n. 3, p. 560, doi. 10.1007/s10535-012-0070-x
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Effects of NaCl on the response of Mesembryanthemum crystallinum callus to Botrytis cinerea infection.
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- Biologia Plantarum, 2011, v. 55, n. 3, p. 423, doi. 10.1007/s10535-011-0106-7
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Antifungal activities of vineyard-habitat wild yeast for grape gray-mold disease and its effects on spontaneous winemaking.
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- Antonie van Leeuwenhoek, 2024, v. 117, n. 1, p. 1, doi. 10.1007/s10482-023-01922-0
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Biocontrol potential of endophytes harbored in Radula marginata (liverwort) from the New Zealand ecosystem.
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- Antonie van Leeuwenhoek, 2014, v. 106, n. 4, p. 771, doi. 10.1007/s10482-014-0247-8
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Impact of Quillaja saponaria saponins on grapevine ecosystem organisms.
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- Antonie van Leeuwenhoek, 2011, v. 100, n. 2, p. 197, doi. 10.1007/s10482-011-9578-x
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Pichia anomala in biocontrol for apples: 20 years of fundamental research and practical applications.
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- Antonie van Leeuwenhoek, 2011, v. 99, n. 1, p. 93, doi. 10.1007/s10482-010-9541-2
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Fungi in a changing world: growth rates will be elevated, but spore production may decrease in future climates.
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- International Journal of Biometeorology, 2015, v. 59, n. 9, p. 1157, doi. 10.1007/s00484-014-0927-0
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Isolation, Synthesis, and Antifungal Activity of Kojic Acid and its Derivatives.
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- Chemistry of Natural Compounds, 2016, v. 52, n. 1, p. 123, doi. 10.1007/s10600-016-1565-z
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Preparation of Citral Oleogel and Antimicrobial Properties.
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- Gels (2310-2861), 2023, v. 9, n. 12, p. 930, doi. 10.3390/gels9120930
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The Effects of Harpin on Fruiting and Botrytis cinerea Resistance of Three Pepper Cultivars.
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- Biological Agriculture & Horticulture, 2009, v. 26, n. 4, p. 391, doi. 10.1080/01448765.2009.9755097
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The Effect of Mulching Materials on Yield and Berry Quality in Organic Strawberry Production.
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- Biological Agriculture & Horticulture, 2008, v. 26, n. 2, p. 139, doi. 10.1080/01448765.2008.9755077
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Unravelling the interplay of nitrogen nutrition and the Botrytis cinerea pectin lyase BcPNL1 in modulating Arabidopsis thaliana susceptibility.
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- Communications Biology, 2025, p. 1, doi. 10.1038/s42003-025-07642-7
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In Vitro Evaluation of Selenium Against Some Plant Pathogenic Fungi.
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- Academic Journal of Agriculture / Akademik Ziraat Dergisi, 2024, v. 13, n. 1, p. 99, doi. 10.29278/azd.1452105
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Multi regression analysis of the effect of potassium bicarbonate on in vitro the mycelial growth and sclerotial germination of Botrytis cinerea.
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- Academic Journal of Agriculture / Akademik Ziraat Dergisi, 2014, v. 3, n. 2, p. 53
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Antifungalno djelovanje eteričnih ulja Melissa officinalis i Myrtus communis.
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- Glasnik Zastite Bilja, 2024, v. 47, n. 5, p. 16, doi. 10.31727/gzb.47.5.2
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Mikoze kao uzročnici biotskog stresa u proizvodnji suncokreta.
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- Glasnik Zastite Bilja, 2020, v. 43, n. 6, p. 60
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Differential regulation of calmodulin, phenylalanine ammonia-lyase, and salicylic acid in response to Botrytis cinerea infection in tomato with different Ca<sup>2+</sup> concentrations.
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- Journal of Plant Nutrition, 2018, v. 41, n. 9, p. 1104, doi. 10.1080/01904167.2017.1415351
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Removal of Herbicides from Liquid Media by Fungi Isolated from a Contaminated Soil.
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- Journal of Environmental Quality, 2001, v. 30, n. 2, p. 418, doi. 10.2134/jeq2001.302418x
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EFFICIENCY OF ORGANIC AGENTS TO CONTROL GRAY MOLD DISEASE CAUSED BY BOTRYTIS CINEREA IN STRAWBERRY.
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- International Journal of Agricultural & Statistical Sciences, 2020, v. 16, p. 1533
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Efficacy of Trichoderma spp. and Kosakonia sp. Both Independently and Combined with Fungicides against Botrytis cinerea on Strawberries.
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- Antibiotics (2079-6382), 2024, v. 13, n. 9, p. 912, doi. 10.3390/antibiotics13090912
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Potential Antifungal Effect of Copper Oxide Nanoparticles Combined with Fungicides against Botrytis cinerea and Fusarium oxysporum.
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- Antibiotics (2079-6382), 2024, v. 13, n. 3, p. 215, doi. 10.3390/antibiotics13030215
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To Cut the Mustard: Antimicrobial Activity of Selenocyanates on the Plate and in the Gas Phase.
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- Antibiotics (2079-6382), 2023, v. 12, n. 2, p. 290, doi. 10.3390/antibiotics12020290
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Diffusible Compounds Produced by Hanseniaspora osmophila and Gluconobacter cerinus Help to Control the Causal Agents of Gray Rot and Summer Bunch Rot of Table Grapes.
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- Antibiotics (2079-6382), 2021, v. 10, n. 6, p. 664, doi. 10.3390/antibiotics10060664
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Toward the technology of large cranberry fruit storage through declining the fungal rots.
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- Problems of Environmental Biotechnology, 2021, n. 1, p. 7
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Effect of preventive and simultaneous inoculations of Bacillus amyloliquefaciens (Fukumoto) strains on conidial germination of Botrytis cinerea Pers.:Fr.
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- Anales de Biología, 2018, n. 40, p. 65, doi. 10.6018/analesbio.40.08
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Exploring the effects of red light night break on the defence mechanisms of tomato against fungal pathogen Botrytis cinerea.
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- Physiologia Plantarum, 2024, v. 176, n. 4, p. 1, doi. 10.1111/ppl.14504
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BcWRKY1 confers Botrytis cinerea susceptibility via inhibiting JA biosynthesis.
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- Physiologia Plantarum, 2024, v. 176, n. 4, p. 1, doi. 10.1111/ppl.14432
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Mno-miR164a and MnNAC100 regulate the resistance of mulberry to Botrytis cinerea.
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- Physiologia Plantarum, 2024, v. 176, n. 2, p. 1, doi. 10.1111/ppl.14309
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Suppressing plant defense: Scavenge the ROS!
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- Physiologia Plantarum, 2023, v. 175, n. 3, p. 1, doi. 10.1111/ppl.13942
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Dual function of VvWRKY18 transcription factor in the β‐aminobutyric acid‐activated priming defense in grapes.
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- Physiologia Plantarum, 2021, v. 172, n. 3, p. 1477, doi. 10.1111/ppl.13341
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Knockout of SlNPR1 enhances tomato plants resistance against Botrytis cinerea by modulating ROS homeostasis and JA/ET signaling pathways.
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- Physiologia Plantarum, 2020, v. 170, n. 4, p. 569, doi. 10.1111/ppl.13194
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Computational Assessment of Botrytis cinerea Lipase for Biofuel Production.
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- Catalysts (2073-4344), 2021, v. 11, n. 11, p. 1319, doi. 10.3390/catal11111319
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Arabidopsis thaliana plant defensin AtPDF1.1 is involved in the plant response to biotic stress.
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- New Phytologist, 2010, v. 187, n. 4, p. 1075, doi. 10.1111/j.1469-8137.2010.03326.x
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Dynamic carbon transfer during pathogenesis of sunflower by the necrotrophic fungus Botrytis cinerea: from plant hexoses to mannitol.
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- New Phytologist, 2009, v. 183, n. 4, p. 1149, doi. 10.1111/j.1469-8137.2009.02890.x
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Phytotoxic Nep1-like proteins from the necrotrophic fungus Botrytis cinerea associate with membranes and the nucleus of plant cells.
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- New Phytologist, 2008, v. 177, n. 2, p. 493, doi. 10.1111/j.1469-8137.2007.02274.x
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Only an early nitric oxide burst and the following wave of secondary nitric oxide generation enhanced effective defence responses of pelargonium to a necrotrophic pathogen.
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- New Phytologist, 2007, v. 175, n. 4, p. 718, doi. 10.1111/j.1469-8137.2007.02142.x
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Plant signalling components EDS1 and SGT1 enhance disease caused by the necrotrophic pathogen Botrytis cinerea.
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- New Phytologist, 2007, v. 175, n. 1, p. 131, doi. 10.1111/j.1469-8137.2007.02086.x
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Characterization of a new, nonpathogenic mutant of Botrytis cinerea with impaired plant colonization capacity.
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- New Phytologist, 2006, v. 170, n. 3, p. 537, doi. 10.1111/j.1469-8137.2006.01682.x
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A case study from the interaction of strawberry and Botrytis cinerea highlights the benefits of comonitoring both partners at genomic and mRNA level.
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- New Phytologist, 2005, v. 168, n. 2, p. 465, doi. 10.1111/j.1469-8137.2005.01526.x
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The antifungal Dm-AMP1 protein from Dahlia merckii expressed in Solanum melongena is released in root exudates and differentially affects pathogenic fungi and mycorrhizal symbiosis.
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- New Phytologist, 2004, v. 163, n. 2, p. 393, doi. 10.1111/j.1469-8137.2004.01107.x
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A gene encoding a polygalacturonase-inhibiting protein (PGIP) shows developmental regulation and pathogen-induced expression in strawberry.
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- New Phytologist, 2004, v. 163, n. 1, p. 99, doi. 10.1111/j.1469-8137.2004.01088.x
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Lipid composition of Botrytis cinerea and inhibition of its radiolabelling by the fungicide iprodione.
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- New Phytologist, 2003, v. 160, n. 1, p. 199, doi. 10.1046/j.1469-8137.2003.00848.x
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<em>Botrytis cinerea</em> kills groundsel (<em>Senecio vulgaris</em>) infected by rust (<em>Puccinia lagenophorae</em>).
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- New Phytologist, 1990, v. 114, n. 1, p. 105, doi. 10.1111/j.1469-8137.1990.tb00380.x
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Use of cryo-techniques with scanning electron microscopy to study infection of mature red raspberry fruits by Botrytis cinerea.
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- New Phytologist, 1989, v. 111, n. 1, p. 81, doi. 10.1111/j.1469-8137.1989.tb04221.x
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Coexpression of PalbHLH1 and PalMYB90 Genes From Populus alba Enhances Pathogen Resistance in Poplar by Increasing the Flavonoid Content.
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- Frontiers in Plant Science, 2020, p. 1, doi. 10.3389/fpls.2019.01772
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Biocontrol by Fusarium oxysporum Using Endophyte-Mediated Resistance.
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- Frontiers in Plant Science, 2020, v. 10, p. 1, doi. 10.3389/fpls.2020.00037
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VvSWEET7 Is a Mono- and Disaccharide Transporter Up-Regulated in Response to Botrytis cinerea Infection in Grape Berries.
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- Frontiers in Plant Science, 2020, v. 10, p. 1, doi. 10.3389/fpls.2019.01753
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Functional Characterization of the Grapevine γ-Glutamyl Transferase/Transpeptidase (E.C. 2.3.2.2) Gene Family Reveals a Single Functional Gene Whose Encoded Protein Product Is Not Located in Either the Vacuole or Apoplast.
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- Frontiers in Plant Science, 2019, v. 10, p. 1, doi. 10.3389/fpls.2019.01402
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