Deciphering Genome Content and Evolutionary Relationships of Isolates from the Fungus Magnaporthe oryzae Attacking Different Host Plants
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B. Henrissat | T. Kroj | A. Gendrault | F. Rodolphe | M. Lebrun | J. Amselem | E. Fournier | D. Tharreau | H. Chiapello | L. Mallet | Cyprien Guérin | G. Aguileta | Enrique Ortega-Abboud | C. Guérin | Gabriela Aguileta | Annie Gendrault | Ludovic Mallet
[1] Jean,et al. Effector diversification within compartments of the Leptosphaeria maculans genome affected by Repeat-Induced Point mutations , 2011, Nature communications.
[2] A. Krogh,et al. Predicting transmembrane protein topology with a hidden Markov model: application to complete genomes. , 2001, Journal of molecular biology.
[3] Thomas Schiex,et al. EUGÈNE: An Eukaryotic Gene Finder That Combines Several Sources of Evidence , 2000, JOBIM.
[4] H. Nakayashiki,et al. Characterization of an Avena isolate of Magnaporthe grisea and identification of a locus conditioning its specificity on oat , 2002 .
[5] Pedro M. Coutinho,et al. The carbohydrate-active enzymes database (CAZy) in 2013 , 2013, Nucleic Acids Res..
[6] F. Chumley,et al. Magnaporthe grisea genes for pathogenicity and virulence identified through a series of backcrosses. , 1991, Genetics.
[7] H. U. Böhnert,et al. A Putative Polyketide Synthase/Peptide Synthetase from Magnaporthe grisea Signals Pathogen Attack to Resistant Ricew⃞ , 2004, The Plant Cell Online.
[8] R. D. de Vries,et al. Resolving the polyphyletic nature of Pyricularia (Pyriculariaceae) , 2014, Studies in mycology.
[9] You-Liang Peng,et al. The dawn of fungal pathogen genomics. , 2006, Annual review of phytopathology.
[10] G. Lu,et al. Comparative genomics identifies the Magnaporthe oryzae avirulence effector AvrPi9 that triggers Pi9-mediated blast resistance in rice. , 2015, The New phytologist.
[11] M. Orbach,et al. Mapping of avirulence genes in the rice blast fungus, Magnaporthe grisea, with RFLP and RAPD markers. , 2000, Molecular plant-microbe interactions : MPMI.
[12] H. U. Böhnert,et al. Magnaporthe grisea avirulence gene ACE1 belongs to an infection-specific gene cluster involved in secondary metabolism. , 2008, The New phytologist.
[13] P. D. de Wit,et al. Fungal effector proteins. , 2009, Annual review of phytopathology.
[14] Cathryn J. Rehmeyer,et al. Telomere-Targeted Retrotransposons in the Rice Blast Fungus Magnaporthe oryzae: Agents of Telomere Instability , 2012, Genetics.
[15] Jun Wang,et al. The making of a new pathogen: insights from comparative population genomics of the domesticated wheat pathogen Mycosphaerella graminicola and its wild sister species. , 2011, Genome research.
[16] N. Talbot,et al. Under pressure: investigating the biology of plant infection by Magnaporthe oryzae , 2009, Nature Reviews Microbiology.
[17] Rolf Apweiler,et al. InterProScan: protein domains identifier , 2005, Nucleic Acids Res..
[18] B. Thomma,et al. How filamentous pathogens co-opt plants: the ins and outs of fungal effectors. , 2011, Current opinion in plant biology.
[19] Christina A. Cuomo,et al. Obligate biotrophy features unraveled by the genomic analysis of rust fungi , 2011, Proceedings of the National Academy of Sciences.
[20] K. Tanaka,et al. Genetic Analysis of Host Species Specificity of Magnaporthe oryzae Isolates from Rice and Wheat. , 2006, Phytopathology.
[21] Thomas Schiex,et al. Genome Annotation in Plants and Fungi: EuGene as a Model Platform , 2008 .
[22] V. Moulton,et al. Neighbor-net: an agglomerative method for the construction of phylogenetic networks. , 2002, Molecular biology and evolution.
[23] A. Ellingboe,et al. Selection for mating competence in Magnaporthe grisea pathogenic to rice , 1991 .
[24] L. Kohn,et al. A multilocus gene genealogy concordant with host preference indicates segregation of a new species, Magnaporthe oryzae, from M. grisea. , 2002, Mycologia.
[25] B. Valent,et al. Filamentous plant pathogen effectors in action , 2013, Nature Reviews Microbiology.
[26] Jonathan D. G. Jones,et al. Genome sequence and analysis of the Irish potato famine pathogen Phytophthora infestans , 2009, Nature.
[27] R. Terauchi,et al. The Rice Resistance Protein Pair RGA4/RGA5 Recognizes the Magnaporthe oryzae Effectors AVR-Pia and AVR1-CO39 by Direct Binding[W][OA] , 2013, Plant Cell.
[28] John P. Huelsenbeck,et al. MRBAYES: Bayesian inference of phylogenetic trees , 2001, Bioinform..
[29] Sean R. Eddy,et al. Pfam: multiple sequence alignments and HMM-profiles of protein domains , 1998, Nucleic Acids Res..
[30] Patrick Deschavanne,et al. GOHTAM: a website for ‘Genomic Origin of Horizontal Transfers, Alignment and Metagenomics’ , 2012, Bioinform..
[31] H. Nakayashiki,et al. Analysis of Host Species Specificity of Magnaporthe grisea Toward Foxtail Millet Using a Genetic Cross Between Isolates from Wheat and Foxtail Millet. , 2003, Phytopathology.
[32] Magnus Rattray,et al. Comparative Genome Analysis of Filamentous Fungi Reveals Gene Family Expansions Associated with Fungal Pathogenesis , 2008, PloS one.
[33] Cathryn J. Rehmeyer,et al. The genome sequence of the rice blast fungus Magnaporthe grisea , 2005, Nature.
[34] V. Barbe,et al. Transposable element-assisted evolution and adaptation to host plant within the Leptosphaeria maculans-Leptosphaeria biglobosa species complex of fungal pathogens , 2014, BMC Genomics.
[35] B. Valent,et al. Recent advances in rice blast effector research. , 2010, Current opinion in plant biology.
[36] D. Bryant,et al. A Simple and Robust Statistical Test for Detecting the Presence of Recombination , 2006, Genetics.
[37] T. Giraud,et al. Fungal evolutionary genomics provides insight into the mechanisms of adaptive divergence in eukaryotes , 2014, Molecular Ecology.
[38] P. Renault,et al. Multiple recent horizontal transfers of a large genomic region in cheese making fungi , 2014, Nature Communications.
[39] D. Ebbole. Magnaporthe as a model for understanding host-pathogen interactions. , 2007, Annual review of phytopathology.
[40] M. Farman. Telomeres in the rice blast fungus Magnaporthe oryzae: the world of the end as we know it. , 2007, FEMS microbiology letters.
[41] E. Stukenbrock,et al. Origin and domestication of the fungal wheat pathogen Mycosphaerella graminicola via sympatric speciation. , 2006, Molecular biology and evolution.
[42] R. Nelson,et al. Population structure and dynamics of Magnaporthe grisea in the Indian Himalayas. , 1999, Genetics.
[43] S. Brunak,et al. SignalP 4.0: discriminating signal peptides from transmembrane regions , 2011, Nature Methods.
[44] J. Jurka,et al. Repbase Update, a database of eukaryotic repetitive elements , 2005, Cytogenetic and Genome Research.
[45] Sasha F. Levy,et al. Polygenic cis-regulatory adaptation in the evolution of yeast pathogenicity , 2012, Genome research.
[46] T. Flutre,et al. Considering Transposable Element Diversification in De Novo Annotation Approaches , 2011, PloS one.
[47] Santoso,et al. World Population Structure and Migration of the Rice Blast Fungus, Magnaporthe oryzae , 2009 .
[48] M. Thines,et al. Gene Loss Rather Than Gene Gain Is Associated with a Host Jump from Monocots to Dicots in the Smut Fungus Melanopsichium pennsylvanicum , 2014, Genome biology and evolution.
[49] 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 .
[50] M. Marshall,et al. Comparative Pathogenomics Reveals Horizontally Acquired Novel Virulence Genes in Fungi Infecting Cereal Hosts , 2012, PLoS pathogens.
[51] D. Shtienberg,et al. Ecological Genetic Divergence of the Fungal Pathogen Didymella rabiei on Sympatric Wild and Domesticated Cicer spp. (Chickpea) , 2009, Applied and Environmental Microbiology.
[52] Liyuan Liu,et al. Comparative Analysis of the Genomes of Two Field Isolates of the Rice Blast Fungus Magnaporthe oryzae , 2012, PLoS genetics.
[53] D. Higgins,et al. T-Coffee: A novel method for fast and accurate multiple sequence alignment. , 2000, Journal of molecular biology.
[54] B. Thomma,et al. Extensive chromosomal reshuffling drives evolution of virulence in an asexual pathogen , 2013, Genome research.
[55] R. Oliver. Genomic tillage and the harvest of fungal phytopathogens. , 2012, The New phytologist.
[56] G. D. da Silva,et al. Abundance, distribution and potential impact of transposable elements in the genome of Mycosphaerella fijiensis , 2012, BMC Genomics.
[57] S. Raffaele,et al. Genome evolution in filamentous plant pathogens: why bigger can be better , 2012, Nature Reviews Microbiology.
[58] Eric Bazin,et al. Sex at the origin: an Asian population of the rice blast fungus Magnaporthe oryzae reproduces sexually , 2012, Molecular ecology.
[59] R. Dean,et al. The role of transposable element clusters in genome evolution and loss of synteny in the rice blast fungus Magnaporthe oryzae , 2006, Genome Biology.
[60] Christina A. Cuomo,et al. Obligate Biotrophy Features Unraveled by the Genomic Analysis of the Rust Fungi, Melampsora larici-populina and Puccinia graminis f. sp. tritici , 2011 .
[61] F. Chumley,et al. Genetic studies of fertility and pathogenicity in Magnaporthe grisea (Pyricularia oryzae) , 1984 .
[62] J. Bennetzen,et al. A unified classification system for eukaryotic transposable elements , 2007, Nature Reviews Genetics.
[63] E. Fournier,et al. South-East Asia is the center of origin, diversity and dispersion of the rice blast fungus, Magnaporthe oryzae , 2013, The New phytologist.
[64] B. Meyers,et al. Identification and characterization of in planta-expressed secreted effector proteins from Magnaporthe oryzae that induce cell death in rice. , 2013, Molecular plant-microbe interactions : MPMI.
[65] Christina A. Cuomo,et al. Sequencing of Aspergillus nidulans and comparative analysis with A. fumigatus and A. oryzae , 2005, Nature.
[66] L. Kohn,et al. A multilocus gene genealogy concordant with host preference indicates segregation of a new species, Magnaporthe oryzae, from M. grisea , 2002 .
[67] T. Giraud,et al. Cospeciation vs host-shift speciation: methods for testing, evidence from natural associations and relation to coevolution. , 2013, The New phytologist.
[68] P. Wincker,et al. Finding candidate genes under positive selection in Non‐model species: examples of genes involved in host specialization in pathogens , 2010, Molecular ecology.
[69] H. Matsumura,et al. Association Genetics Reveals Three Novel Avirulence Genes from the Rice Blast Fungal Pathogen Magnaporthe oryzae[W][OA] , 2009, The Plant Cell Online.
[70] H. Quesneville,et al. The wheat powdery mildew genome shows the unique evolution of an obligate biotroph , 2013, Nature Genetics.
[71] N. Friedman,et al. Natural history and evolutionary principles of gene duplication in fungi , 2007, Nature.
[72] S. Klosterman,et al. Transposable elements in phytopathogenic Verticillium spp.: insights into genome evolution and inter- and intra-specific diversification , 2012, BMC Genomics.
[73] H. Nakayashiki,et al. Analysis of Host Species Specificity of Magnaporthe grisea Toward Wheat Using a Genetic Cross Between Isolates from Wheat and Foxtail Millet. , 2000, Phytopathology.
[74] Wei Qian,et al. Selection of conserved blocks from multiple alignments for their use in phylogenetic analysis. , 2000, Molecular biology and evolution.
[75] C. Stoeckert,et al. OrthoMCL: identification of ortholog groups for eukaryotic genomes. , 2003, Genome research.
[76] N. Talbot. On the trail of a cereal killer: Exploring the biology of Magnaporthe grisea. , 2003, Annual review of microbiology.
[77] S. Gavrilets,et al. Linking the emergence of fungal plant diseases with ecological speciation. , 2010, Trends in Ecology & Evolution.
[78] B. McDonald,et al. Breakage-fusion-bridge Cycles and Large Insertions Contribute to the Rapid Evolution of Accessory Chromosomes in a Fungal Pathogen , 2013, PLoS genetics.
[79] Steven Salzberg,et al. Mugsy: fast multiple alignment of closely related whole genomes , 2010, Bioinform..
[80] Diogo N. Silva,et al. Host‐jump drives rapid and recent ecological speciation of the emergent fungal pathogen Colletotrichum kahawae , 2012, Molecular ecology.
[81] J. Nottéghem,et al. Production of perithecia of Magnaporthe grisea on rice plants , 1990 .
[82] Jin-Rong Xu,et al. Effectors and Effector Delivery in Magnaporthe oryzae , 2014, PLoS pathogens.
[83] B. Larget,et al. Bayesian estimation of concordance among gene trees. , 2006, Molecular biology and evolution.
[84] D. Fitzpatrick. Horizontal gene transfer in fungi. , 2012, FEMS microbiology letters.
[85] Joaquín Dopazo,et al. ETE: a python Environment for Tree Exploration , 2010, BMC Bioinformatics.
[86] Colin N. Dewey,et al. BUCKy: Gene tree/species tree reconciliation with Bayesian concordance analysis , 2010, Bioinform..
[87] Casey M. Bergman,et al. Combined Evidence Annotation of Transposable Elements in Genome Sequences , 2005, PLoS Comput. Biol..
[88] Kelly P. Williams,et al. Comparative Genomics Reveal Extensive Transposon-Mediated Genomic Plasticity and Diversity among Potential Effector Proteins within the Genus Coxiella , 2008, Infection and Immunity.
[89] I. Longden,et al. EMBOSS: the European Molecular Biology Open Software Suite. , 2000, Trends in genetics : TIG.
[90] B. McDonald,et al. Rapid Speciation Following Recent Host Shifts in the Plant Pathogenic Fungus Rhynchosporium , 2008, Evolution; international journal of organic evolution.
[91] Daniel H. Huson,et al. SplitsTree: analyzing and visualizing evolutionary data , 1998, Bioinform..
[92] Peter Daszak,et al. Emerging infectious diseases of plants: pathogen pollution, climate change and agrotechnology drivers. , 2004, Trends in ecology & evolution.
[93] N. Talbot,et al. Karyotypic Variation within Clonal Lineages of the Rice Blast Fungus, Magnaporthe grisea , 1993, Applied and environmental microbiology.
[94] N. Talbot,et al. Insights from Sequencing Fungal and Oomycete Genomes: What Can We Learn about Plant Disease and the Evolution of Pathogenicity? , 2007, The Plant Cell Online.
[95] J. Brownstein,et al. Emerging fungal threats to animal, plant and ecosystem health , 2012, Nature.
[96] Marc-Henri Lebrun,et al. Origins of Host-Specific Populations of the Blast Pathogen Magnaporthe oryzae in Crop Domestication With Subsequent Expansion of Pandemic Clones on Rice and Weeds of Rice , 2005, Genetics.
[97] M. Schierup,et al. Whole-Genome and Chromosome Evolution Associated with Host Adaptation and Speciation of the Wheat Pathogen Mycosphaerella graminicola , 2010, PLoS genetics.
[98] Yvan Saeys,et al. SpliceMachine: predicting splice sites from high-dimensional local context representations , 2005, Bioinform..