Enhancing tomato resistance by exploring early defense events against Fusarium wilt disease
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Jingtao Li | Limei Yang | W. Liang | Limin Song | Yaning Zheng | Chenyang Wang | Sihui Liu | Fahui Qiu | Yue Li
[1] B. Luisi,et al. Acetylation of a fungal effector that translocates host PR1 facilitates virulence , 2022, bioRxiv.
[2] B. Luisi,et al. Broad-spectrum chemicals block ROS detoxification to prevent plant fungal invasion , 2022, Current Biology.
[3] Ancheng C. Huang,et al. Making small molecules in plants: A chassis for synthetic biology-based production of plant natural products. , 2022, Journal of integrative plant biology.
[4] Shiwei Wan,et al. Regulation and integration of plant jasmonate signaling: a comparative view of monocot and dicot. , 2022, Journal of genetics and genomics = Yi chuan xue bao.
[5] S. He,et al. An MKP-MAPK protein phosphorylation cascade controls vascular immunity in plants , 2022, Science advances.
[6] X. Pei,et al. The decrotonylase FoSir5 facilitates mitochondrial metabolic state switching in conidial germination of Fusarium oxysporum , 2021, bioRxiv.
[7] Jingtao Li,et al. Rhizosphere Microbiome: The Emerging Barrier in Plant-Pathogen Interactions , 2021, Frontiers in Microbiology.
[8] Xin Li,et al. Activation of TIR signalling boosts pattern-triggered immunity , 2021, Nature.
[9] K. Harter,et al. The EDS1–PAD4–ADR1 node mediates Arabidopsis pattern-triggered immunity , 2021, Nature.
[10] T. Paulitz,et al. Rhizosphere community selection reveals bacteria associated with reduced root disease , 2021, Microbiome.
[11] Anket Sharma,et al. Role of jasmonic acid in plants: the molecular point of view , 2021, Plant Cell Reports.
[12] T. Efferth,et al. XCP1 is a caspase that proteolyzes Pathogenesis-related protein 1 to produce the cytokine CAPE9 for systemic immunity in Arabidopsis , 2021 .
[13] B. Kobe,et al. PR1-mediated defence via C-terminal peptide release is targeted by a fungal pathogen effector. , 2020, The New phytologist.
[14] G. Kowalchuk,et al. Root exudates mediate plant defense against foliar pathogens by recruiting beneficial microbes , 2020, Soil Ecology Letters.
[15] P. Trivedi,et al. Primary transcript of miR858 encodes regulatory peptide and controls flavonoid biosynthesis and development in Arabidopsis , 2020, Nature Plants.
[16] D. Gabriel,et al. Secretome-Wide Analysis of Lysine Acetylation in Fusarium oxysporum f. sp. lycopersici Provides Novel Insights Into Infection-Related Proteins , 2020, Frontiers in Microbiology.
[17] T. Paulitz,et al. Rhizosphere community selection reveals bacteria associated with reduced root disease , 2020, Microbiome.
[18] F. Zhang,et al. Antagonistic Interaction between Auxin and SA Signaling Pathways Regulates Bacterial Infection through Lateral Root in Arabidopsis. , 2020, Cell reports.
[19] P. Goodwin,et al. Wheat root transcriptional responses against Gaeumannomyces graminis var. tritici , 2020, Phytopathology Research.
[20] Liying Sun,et al. Regulation of phenylpropanoid biosynthesis by MdMYB88 and MdMYB124 contributes to pathogen and drought resistance in apple , 2020, Horticulture Research.
[21] Jonathan D. G. Jones,et al. Mutual potentiation of plant immunity by cell-surface and intracellular receptors , 2020, Nature.
[22] S. He,et al. Pattern-recognition receptors are required for NLR-mediated plant immunity , 2020, Nature.
[23] Wei Gao,et al. Flavonoid accumulation in spontaneous cotton mutant results in red coloration and enhanced disease resistance. , 2019, Plant physiology and biochemistry : PPB.
[24] David Turrà,et al. Autocrine pheromone signalling regulates community behaviour in the fungal pathogen Fusarium oxysporum , 2019, Nature Microbiology.
[25] P. Willems,et al. Damage on plants activates Ca2+-dependent metacaspases for release of immunomodulatory peptides , 2019, Science.
[26] L. Piater,et al. Metabolomic Analysis of Defense-Related Reprogramming in Sorghum bicolor in Response to Colletotrichum sublineolum Infection Reveals a Functional Metabolic Web of Phenylpropanoid and Flavonoid Pathways , 2019, Front. Plant Sci..
[27] Muhammad Umair,et al. Role of secondary metabolites in plant defense against pathogens. , 2018, Microbial pathogenesis.
[28] Kristina Zumstein,et al. Plant and animal PR1 family members inhibit programmed cell death and suppress bacterial pathogens in plant tissues. , 2018, Molecular plant pathology.
[29] J. Rollins,et al. The GATA-type IVb zinc-finger transcription factor SsNsd1 regulates asexual-sexual development and appressoria formation in Sclerotinia sclerotiorum. , 2018, Molecular plant pathology.
[30] F. Takken,et al. The Fusarium oxysporum Avr2-Six5 Effector Pair Alters Plasmodesmatal Exclusion Selectivity to Facilitate Cell-to-Cell Movement of Avr2. , 2018, Molecular plant.
[31] C. Zipfel,et al. An apoplastic peptide activates salicylic acid signalling in maize , 2018, Nature Plants.
[32] M. Hasegawa,et al. Xylosylated Detoxification of the Rice Flavonoid Phytoalexin Sakuranetin by the Rice Sheath Blight Fungus Rhizoctonia solani , 2018, Molecules.
[33] J. Gershenzon,et al. Flavan-3-ols Are an Effective Chemical Defense against Rust Infection1[OPEN] , 2017, Plant Physiology.
[34] Bostjan Kobe,et al. Emerging Insights into the Functions of Pathogenesis-Related Protein 1. , 2017, Trends in plant science.
[35] Xuan Du,et al. The Verticillium-specific protein VdSCP7 localizes to the plant nucleus and modulates immunity to fungal infections. , 2017, The New phytologist.
[36] L. Mendoza,et al. Structure-Activity and Lipophilicity Relationships of Selected Antibacterial Natural Flavones and Flavanones of Chilean Flora , 2017, Molecules.
[37] R. Schneiter,et al. The sterol‐binding activity of PATHOGENESIS‐RELATED PROTEIN 1 reveals the mode of action of an antimicrobial protein , 2017, The Plant journal : for cell and molecular biology.
[38] F. Takken,et al. Uptake of the Fusarium Effector Avr2 by Tomato Is Not a Cell Autonomous Event , 2016, Front. Plant Sci..
[39] H. Pan,et al. AcEBP1, an ErbB3-Binding Protein (EBP1) from halophyte Atriplex canescens, negatively regulates cell growth and stress responses in Arabidopsis. , 2016, Plant science : an international journal of experimental plant biology.
[40] Yang Zhang,et al. I-TASSER server: new development for protein structure and function predictions , 2015, Nucleic Acids Res..
[41] Abdelali Barakat,et al. Lignin and lignans in plant defence: insight from expression profiling of cinnamyl alcohol dehydrogenase genes during development and following fungal infection in Populus. , 2014, Plant science : an international journal of experimental plant biology.
[42] H. Nam,et al. Quantitative Peptidomics Study Reveals That a Wound-Induced Peptide from PR-1 Regulates Immune Signaling in Tomato[W][OPEN] , 2014, Plant Cell.
[43] C. Gatz,et al. Soluble phenylpropanoids are involved in the defense response of Arabidopsis against Verticillium longisporum. , 2014, The New phytologist.
[44] S. Pandey,et al. Heterotrimeric G-proteins in green algae , 2014, Plant signaling & behavior.
[45] J. Dangl,et al. Pivoting the Plant Immune System from Dissection to Deployment , 2013, Science.
[46] Xinnian Dong,et al. Systemic acquired resistance: turning local infection into global defense. , 2013, Annual review of plant biology.
[47] R. Schneiter,et al. Pathogen-Related Yeast (PRY) proteins and members of the CAP superfamily are secreted sterol-binding proteins , 2012, Proceedings of the National Academy of Sciences.
[48] C. Pieterse,et al. The rhizosphere microbiome and plant health. , 2012, Trends in plant science.
[49] A. Bones,et al. Phytoalexins in defense against pathogens. , 2012, Trends in plant science.
[50] L. Chung,et al. Synergistic antimicrobial activity between pentacyclic triterpenoids and antibiotics against Staphylococcus aureus strains , 2011, Annals of Clinical Microbiology and Antimicrobials.
[51] M. Rep,et al. Pathogen profile update: Fusarium oxysporum. , 2009, Molecular plant pathology.
[52] D. Klessig,et al. Systemic acquired resistance: the elusive signal(s). , 2008, Current opinion in plant biology.
[53] C. Zipfel. Pattern-recognition receptors in plant innate immunity. , 2008, Current opinion in immunology.
[54] G. Pearce,et al. An endogenous peptide signal in Arabidopsis activates components of the innate immune response. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[55] J. Glazebrook. Contrasting mechanisms of defense against biotrophic and necrotrophic pathogens. , 2005, Annual review of phytopathology.
[56] M. Stobiecki,et al. Sucrose-induced lupine defense against Fusarium oxysporum. Sucrose-stimulated accumulation of isoflavonoids as a defense response of lupine to Fusarium oxysporum. , 2005, Plant physiology and biochemistry : PPB.
[57] R. Dixon. Natural products and plant disease resistance , 2001, Nature.
[58] A. Stintzi,et al. Pathogenesis-Related PR-1 Proteins Are Antifungal (Isolation and Characterization of Three 14-Kilodalton Proteins of Tomato and of a Basic PR-1 of Tobacco with Inhibitory Activity against Phytophthora infestans) , 1995, Plant physiology.
[59] C. Woloshuk,et al. Pathogen-induced proteins with inhibitory activity toward Phytophthora infestans. , 1991, The Plant cell.
[60] OUP accepted manuscript , 2022, The Plant Cell.
[61] Pradeep Kumar,et al. Systemic Acquired Resistance (SAR) and Induced Systemic Resistance (ISR): Role and Mechanism of Action Against Phytopathogens , 2020 .
[62] A. Macho,et al. Analysis of PAMP-Triggered ROS Burst in Plant Immunity. , 2017, Methods in molecular biology.