An expanded subfamily of G-protein-coupled receptor genes in Fusarium graminearum required for wheat infection
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Jin-Rong Xu | Huiquan Liu | Shulin Cao | Zeyi Wang | Cong Jiang | Guanghui Wang | Qinhu Wang | Huaijian Xu | Mingyu Ding | Jie Liang | Chaofeng Hao | Chanjing Feng | Chen Gong
[1] Jin-Rong Xu,et al. Sexual specific functions of Tub1 beta‐tubulins require stage‐specific RNA processing and expression in Fusarium graminearum , 2018, Environmental microbiology.
[2] Lei Wang,et al. The Ustilago maydis repetitive effector Rsp3 blocks the antifungal activity of mannose-binding maize proteins , 2018, Nature Communications.
[3] G. Goldman,et al. Fungal G-protein-coupled receptors: mediators of pathogenesis and targets for disease control , 2018, Nature Microbiology.
[4] George R. Littlejohn,et al. A single fungal MAP kinase controls plant cell-to-cell invasion by the rice blast fungus , 2018, Science.
[5] Jin-Rong Xu,et al. The cyclase-associated protein FgCap1 has both protein kinase A-dependent and -independent functions during deoxynivalenol production and plant infection in Fusarium graminearum. , 2018, Molecular plant pathology.
[6] Jin-Rong Xu,et al. Mitogen-activated protein kinase signaling in plant pathogenic fungi , 2018, PLoS pathogens.
[7] Jin-Rong Xu,et al. Expression of HopAI interferes with MAP kinase signalling in Magnaporthe oryzae , 2017, Environmental microbiology.
[8] N. Naqvi,et al. Structure-function analyses of the Pth11 receptor reveal an important role for CFEM motif and redox regulation in rice blast. , 2017, The New phytologist.
[9] Jin-Rong Xu,et al. Characterization of the Two-Speed Subgenomes of Fusarium graminearum Reveals the Fast-Speed Subgenome Specialized for Adaption and Infection , 2017, Front. Plant Sci..
[10] Yang Li,et al. Genome-wide A-to-I RNA editing in fungi independent of ADAR enzymes , 2016, Genome research.
[11] B. Scott,et al. The endophytic symbiont Epichloë festucae establishes an epiphyllous net on the surface of Lolium perenne leaves by development of an expressorium, an appressorium‐like leaf exit structure , 2016, The New phytologist.
[12] Jin-Rong Xu,et al. TRI6 and TRI10 play different roles in the regulation of deoxynivalenol (DON) production by cAMP signalling in Fusarium graminearum. , 2016, Environmental microbiology.
[13] David Turrà,et al. Fungal pathogen uses sex pheromone receptor for chemotropic sensing of host plant signals , 2015, Nature.
[14] Jacqueline A. Servin,et al. Global Analysis of Predicted G Protein−Coupled Receptor Genes in the Filamentous Fungus, Neurospora crassa , 2015, G3: Genes, Genomes, Genetics.
[15] Xiaoying Zhou,et al. The cAMP-PKA pathway regulates growth, sexual and asexual differentiation, and pathogenesis in Fusarium graminearum. , 2014, Molecular plant-microbe interactions : MPMI.
[16] W. Schäfer,et al. The Adenylyl Cyclase Plays a Regulatory Role in the Morphogenetic Switch from Vegetative to Pathogenic Lifestyle of Fusarium graminearum on Wheat , 2014, PloS one.
[17] Xuan Li,et al. In Planta Stage-Specific Fungal Gene Profiling Elucidates the Molecular Strategies of Fusarium graminearum Growing inside Wheat Coleoptiles[W][OA] , 2012, Plant Cell.
[18] Xiaoying Zhou,et al. Genetic control of infection-related development in Magnaporthe oryzae. , 2012, Current opinion in microbiology.
[19] Xiaoying Zhou,et al. The FgHOG1 Pathway Regulates Hyphal Growth, Stress Responses, and Plant Infection in Fusarium graminearum , 2012, PloS one.
[20] Günter P. Wagner,et al. Measurement of mRNA abundance using RNA-seq data: RPKM measure is inconsistent among samples , 2012, Theory in Biosciences.
[21] W. Schäfer,et al. The stress-activated protein kinase FgOS-2 is a key regulator in the life cycle of the cereal pathogen Fusarium graminearum. , 2012, Molecular plant-microbe interactions : MPMI.
[22] Jeong-Ah Seo,et al. Functional analyses of regulators of G protein signaling in Gibberella zeae. , 2012, Fungal genetics and biology : FG & B.
[23] W. Jonkers,et al. The Wor1-like Protein Fgp1 Regulates Pathogenicity, Toxin Synthesis and Reproduction in the Phytopathogenic Fungus Fusarium graminearum , 2012, PLoS pathogens.
[24] Ramon Clèries,et al. BootstRatio: A web-based statistical analysis of fold-change in qPCR and RT-qPCR data using resampling methods , 2012, Comput. Biol. Medicine.
[25] S. Yun,et al. Evaluation of Potential Reference Genes for Quantitative RT-PCR Analysis in Fusarium graminearum under Different Culture Conditions , 2011 .
[26] Shijie Zhang,et al. Functional Analysis of the Kinome of the Wheat Scab Fungus Fusarium graminearum , 2011, PLoS pathogens.
[27] Young-Su Seo,et al. A Phenome-Based Functional Analysis of Transcription Factors in the Cereal Head Blight Fungus, Fusarium graminearum , 2011, PLoS pathogens.
[28] W. Schäfer,et al. Fusarium graminearum forms mycotoxin producing infection structures on wheat , 2011, BMC Plant Biology.
[29] S. Vogel,et al. A Novel Gene, ROA, Is Required for Normal Morphogenesis and Discharge of Ascospores in Gibberella zeae , 2010, Eukaryotic Cell.
[30] K. Hammond-Kosack,et al. The infection biology of Fusarium graminearum: defining the pathways of spikelet to spikelet colonisation in wheat ears. , 2010, Fungal biology.
[31] Yang Wang,et al. The Tig1 Histone Deacetylase Complex Regulates Infectious Growth in the Rice Blast Fungus Magnaporthe oryzae[C][W][OA] , 2010, Plant Cell.
[32] N. Naqvi,et al. PdeH, a High-Affinity cAMP Phosphodiesterase, Is a Key Regulator of Asexual and Pathogenic Differentiation in Magnaporthe oryzae , 2010, PLoS pathogens.
[33] A. Osbourn,et al. Common Genetic Pathways Regulate Organ-Specific Infection-Related Development in the Rice Blast Fungus[W] , 2010, Plant Cell.
[34] Christina A. Cuomo,et al. Source (or Part of the following Source): Type Article Title Comparative Genomics Reveals Mobile Pathogenicity Chromosomes in Fusarium Author(s) , 2022 .
[35] Jin-Rong Xu,et al. Transducin Beta-Like Gene FTL1 Is Essential for Pathogenesis in Fusarium graminearum , 2009, Eukaryotic Cell.
[36] John F. Leslie,et al. Expression and Function of Sex Pheromones and Receptors in the Homothallic Ascomycete Gibberella zeae , 2008, Eukaryotic Cell.
[37] Lili Huang,et al. Cytological and immunocytochemical studies on responses of wheat spikes of the resistant Chinese cv. Sumai 3 and the susceptible cv. Xiaoyan 22 to infection by Fusarium graminearum , 2008, European Journal of Plant Pathology.
[38] K. Hammond-Kosack,et al. Fusarium graminearum gene deletion mutants map1 and tri5 reveal similarities and differences in the pathogenicity requirements to cause disease on Arabidopsis and wheat floral tissue. , 2008, The New phytologist.
[39] Won-Bo Shim,et al. Functional analyses of heterotrimeric G protein Gα and Gβ subunits in Gibberella zeae , 2008, Microbiology.
[40] K. Borkovich,et al. Heterotrimeric G protein signaling in filamentous fungi. , 2007, Annual review of microbiology.
[41] Christina A. Cuomo,et al. The Fusarium graminearum Genome Reveals a Link Between Localized Polymorphism and Pathogen Specialization , 2007, Science.
[42] K. Borkovich,et al. GPR-4 Is a Predicted G-Protein-Coupled Receptor Required for Carbon Source-Dependent Asexual Growth and Development in Neurospora crassa , 2006, Eukaryotic Cell.
[43] Xinhua Zhao,et al. A Mitogen-Activated Protein Kinase Cascade Regulating Infection-Related Morphogenesis in Magnaporthe griseaw⃞ , 2005, The Plant Cell Online.
[44] R. Dean,et al. Novel G-protein-coupled receptor-like proteins in the plant pathogenic fungus Magnaporthe grisea , 2005, Genome Biology.
[45] K. Borkovich,et al. The Heterotrimeric G-Protein Subunits GNG-1 and GNB-1 Form a Gβγ Dimer Required for Normal Female Fertility, Asexual Development, and Gα Protein Levels in Neurospora crassa , 2005, Eukaryotic Cell.
[46] J. Hamer,et al. Cellular Localization and Role of Kinase Activity of PMK1 in Magnaporthe grisea , 2004, Eukaryotic Cell.
[47] L. Harris,et al. Use of a Fusarium graminearum strain transformed with green fluorescent protein to study infection in wheat (Triticum aestivum) , 2004 .
[48] H. Kistler,et al. Heading for disaster: Fusarium graminearum on cereal crops. , 2004, Molecular plant pathology.
[49] R. Seger,et al. MEK5 and ERK5 are localized in the nuclei of resting as well as stimulated cells, while MEKK2 translocates from the cytosol to the nucleus upon stimulation , 2004, Journal of Cell Science.
[50] G. Bai,et al. Management and resistance in wheat and barley to fusarium head blight. , 2003, Annual review of phytopathology.
[51] W. Schäfer,et al. Mating, conidiation and pathogenicity of Fusarium graminearum, the main causal agent of the head-blight disease of wheat, are regulated by the MAP kinase gpmk1 , 2003, Current Genetics.
[52] K. Hammond-Kosack,et al. Arabidopsis is susceptible to the cereal ear blight fungal pathogens Fusarium graminearum and Fusarium culmorum. , 2002, The Plant journal : for cell and molecular biology.
[53] Jin-Rong Xu,et al. A mitogen-activated protein kinase gene (MGV1) in Fusarium graminearum is required for female fertility, heterokaryon formation, and plant infection. , 2002, Molecular plant-microbe interactions : MPMI.
[54] J. Sweigard,et al. Magnaporthe grisea Pth11p Is a Novel Plasma Membrane Protein That Mediates Appressorium Differentiation in Response to Inductive Substrate Cues , 1999, Plant Cell.
[55] D. Natvig,et al. The nop-1 gene of Neurospora crassa encodes a seven transmembrane helix retinal-binding protein homologous to archaeal rhodopsins. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[56] Gerald R. Fink,et al. MAP Kinases with Distinct Inhibitory Functions Impart Signaling Specificity during Yeast Differentiation , 1997, Cell.
[57] H. Smith,et al. The isolation and identification of choline and betaine as the two major components in anthers and wheat germ that stimulate Fusarium graminearum in vitro , 1974 .
[58] Xiaoying Zhou,et al. Efficient approaches for generating GFP fusion and epitope-tagging constructs in filamentous fungi. , 2011, Methods in molecular biology.
[59] K. Borkovich,et al. The heterotrimeric G-protein subunits GNG-1 and GNB-1 form a Gbetagamma dimer required for normal female fertility, asexual development, and galpha protein levels in Neurospora crassa. , 2005, Eukaryotic cell.