Linking the emergence of fungal plant diseases with ecological speciation.
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[1] P. Gladieux,et al. Host-specific differentiation among populations of Venturia inaequalis causing scab on apple, pyracantha and loquat. , 2010, Fungal genetics and biology : FG & B.
[2] T. Giraud,et al. Phylogenetic determinants of potential host shifts in fungal pathogens , 2009, Journal of evolutionary biology.
[3] M. Fisher,et al. Global emergence of Batrachochytrium dendrobatidis and amphibian chytridiomycosis in space, time, and host. , 2009, Annual review of microbiology.
[4] T. Price,et al. Adaptive radiation, nonadaptive radiation, ecological speciation and nonecological speciation. , 2009, Trends in ecology & evolution.
[5] L. Excoffier,et al. Gene flow and species delimitation. , 2009, Trends in ecology & evolution.
[6] J. Losos,et al. Adaptive Radiation: Contrasting Theory with Data , 2009, Science.
[7] E. Stukenbrock,et al. The origins of plant pathogens in agro-ecosystems. , 2008, Annual review of phytopathology.
[8] J. Goudet,et al. quantiNemo: an individual-based program to simulate quantitative traits with explicit genetic architecture in a dynamic metapopulation , 2008, Bioinform..
[9] T. Giraud,et al. Speciation in fungi. , 2008, Fungal genetics and biology : FG & B.
[10] B. McDonald,et al. Rapid Speciation Following Recent Host Shifts in the Plant Pathogenic Fungus Rhynchosporium , 2008, Evolution; international journal of organic evolution.
[11] M. L. Gac,et al. Existence of a pattern of reproductive character displacement in Homobasidiomycota but not in Ascomycota , 2008, Journal of evolutionary biology.
[12] Tatiana Giraud,et al. Cophylogeny of the anther smut fungi and their caryophyllaceous hosts: Prevalence of host shifts and importance of delimiting parasite species for inferring cospeciation , 2008, BMC Evolutionary Biology.
[13] T. Giraud,et al. Mating System of the Anther Smut Fungus Microbotryum violaceum: Selfing under Heterothallism , 2008, Eukaryotic Cell.
[14] M. Keeling,et al. Modeling Infectious Diseases in Humans and Animals , 2007 .
[15] I. Sache,et al. The fungal dimension of biological invasions. , 2007, Trends in ecology & evolution.
[16] C. Burch,et al. EVOLUTION OF HOST SPECIFICITY DRIVES REPRODUCTIVE ISOLATION AMONG RNA VIRUSES , 2007, Evolution; international journal of organic evolution.
[17] David Mackey,et al. Elicitors, effectors, and R genes: the new paradigm and a lifetime supply of questions. , 2007, Annual review of phytopathology.
[18] T. Peever. Role of host specificity in the speciation of Ascochyta pathogens of cool season food legumes , 2007, European Journal of Plant Pathology.
[19] Axel Meyer,et al. Case studies and mathematical models of ecological speciation. 1. Cichlids in a crater lake , 2007, Molecular ecology.
[20] Sergey Gavrilets,et al. Case studies and mathematical models of ecological speciation. 2. Palms on an oceanic island , 2007, Molecular ecology.
[21] P. Gladieux,et al. Origin and colonization history of newly virulent strains of the phytopathogenic fungus Venturia inaequalis. , 2007, Fungal genetics and biology : FG & B.
[22] J. Montarry,et al. Adaptation of Phytophthora infestans to Partial Resistance in Potato: Evidence from French and Moroccan Populations. , 2007, Phytopathology.
[23] T. Giraud,et al. PHYLOGENETIC EVIDENCE OF HOST-SPECIFIC CRYPTIC SPECIES IN THE ANTHER SMUT FUNGUS , 2007, Evolution; international journal of organic evolution.
[24] E. Stukenbrock,et al. Origin and domestication of the fungal wheat pathogen Mycosphaerella graminicola via sympatric speciation. , 2006, Molecular biology and evolution.
[25] L. Szabo,et al. Innate nonhost immunity in barley to different heterologous rust fungi is controlled by sets of resistance genes with different and overlapping specificities. , 2006, Molecular plant-microbe interactions : MPMI.
[26] T Giraud,et al. Speciation: Selection against migrant pathogens: the immigrant inviability barrier in pathogens , 2006, Heredity.
[27] Chris D. Jiggins,et al. Speciation by hybridization in Heliconius butterflies , 2006, Nature.
[28] Nicolas Salamin,et al. Sympatric speciation in palms on an oceanic island , 2006, Nature.
[29] D. J. Rogers,et al. Global Transport Networks and Infectious Disease Spread , 2006, Advances in Parasitology.
[30] T. Giraud,et al. Importance of the life cycle in sympatric host race formation and speciation of pathogens. , 2006, Phytopathology.
[31] A. Meyer,et al. Sympatric speciation in Nicaraguan crater lake cichlid fish , 2006, Nature.
[32] T. Giraud,et al. The anther smut disease on Gypsophila repens: a case of parasite sub‐optimal performance following a recent host shift? , 2005, Journal of evolutionary biology.
[33] P. R. Scott,et al. Plant disease: a threat to global food security. , 2005, Annual review of phytopathology.
[34] M. Wingfield,et al. Emerging pathogens: fungal host jumps following anthropogenic introduction. , 2005, Trends in ecology & evolution.
[35] J. Enjalbert,et al. Genetic evidence of local adaptation of wheat yellow rust (Puccinia striiformis f. sp. tritici) within France , 2005, Molecular ecology.
[36] D. J. Funk,et al. REPRODUCTIVE ISOLATION CAUSED BY NATURAL SELECTION AGAINST IMMIGRANTS FROM DIVERGENT HABITATS , 2005 .
[37] H. Rundle,et al. Ecological speciation: Ecological speciation , 2005 .
[38] G. Gilbert,et al. The Evolutionary Ecology of Novel Plant-Pathogen Interactions , 2004 .
[39] Peter Daszak,et al. Emerging infectious diseases of plants: pathogen pollution, climate change and agrotechnology drivers. , 2004, Trends in ecology & evolution.
[40] N. Barton. Fitness Landscapes and the Origin of Species , 2004 .
[41] R. Niks,et al. Accumulation of genes for susceptibility to rust fungi for which barley is nearly a nonhost results in two barley lines with extreme multiple susceptibility , 2004, Planta.
[42] Ulrich Dobrindt,et al. Genomic islands in pathogenic and environmental microorganisms , 2004, Nature Reviews Microbiology.
[43] B. Le Cam,et al. Breakdown of the Scab Resistance Gene Vf in Apple Leads to a Founder Effect in Populations of the Fungal Pathogen Venturia inaequalis. , 2004, Phytopathology.
[44] S. Gandon. EVOLUTION OF MULTIHOST PARASITES , 2004, Evolution; international journal of organic evolution.
[45] M. Hood,et al. The Ecology and Genetics of a Host Shift: Microbotryum as a Model System , 2002, The American Naturalist.
[46] K. Akimitsu,et al. A conditionally dispensable chromosome controls host-specific pathogenicity in the fungal plant pathogen Alternaria alternata. , 2002, Genetics.
[47] B. Le Cam,et al. Evidence of Two Formae Speciales in Venturia inaequalis, Responsible for Apple and Pyracantha Scab. , 2002, Phytopathology.
[48] S. Anagnostakis. The Effect of Multiple Importations of Pests and Pathogens on a Native Tree , 2001, Biological Invasions.
[49] S. Whisson,et al. Phytophthora infestans enters the genomics era. , 2001, Molecular plant pathology.
[50] S. Kamoun. Nonhost resistance to Phytophthora: novel prospects for a classical problem. , 2001, Current opinion in plant biology.
[51] L. H. Taylor,et al. Diseases of humans and their domestic mammals: pathogen characteristics, host range and the risk of emergence. , 2001, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[52] C. Kolar,et al. Progress in invasion biology: predicting invaders. , 2001, Trends in ecology & evolution.
[53] H. Kistler,et al. Genes determining pathogenicity to pea are clustered on a supernumerary chromosome in the fungal plant pathogen Nectria haematococca. , 2001, The Plant journal : for cell and molecular biology.
[54] D. Hibbett,et al. Phylogenetic species recognition and species concepts in fungi. , 2000, Fungal genetics and biology : FG & B.
[55] L. Parisi,et al. Genetics of Host-Pathogen Relationships Between Venturia inaequalis Races 6 and 7 and Malus Species. , 2000, Phytopathology.
[56] P. Daszak,et al. Emerging infectious diseases of wildlife--threats to biodiversity and human health. , 2000, Science.
[57] D. Norton,et al. Mistletoes as parasites: Host specificity and speciation. , 1998, Trends in ecology & evolution.
[58] T. Giraud,et al. RFLP markers show genetic recombination in Botryotinia fuckeliana (Botrytis cinerea) and transposable elements reveal two sympatric species. , 1997, Molecular biology and evolution.
[59] F. Hoppensteadt,et al. Conditions for sympatric speciation: A diploid model incorporating habitat fidelity and non-habitat assortative mating , 1996, Evolutionary Ecology.
[60] M. Milgroom,et al. Intercontinental population structure of the chestnut blight fungus, Cryphonectria parasitica , 1996 .
[61] Guy L. Bush. Sympatric speciation in animals: new wine in old bottles. , 1994, Trends in ecology & evolution.
[62] K. Hillman,et al. Infections of the Central Nervous System , 1992, Neurology.
[63] W. Rice,et al. DISRUPTIVE SELECTION ON HABITAT PREFERENCE AND THE EVOLUTION OF REPRODUCTIVE ISOLATION: A SIMULATION STUDY , 1984, Evolution; international journal of organic evolution.
[64] James B. Anderson,et al. Biological species of Armillaria mellea in North America. , 1979 .
[65] A. Doeschl-Wilson,et al. Host-Pathogen Interactions: Genetics, Immunology and Physiology , 2010 .
[66] T. Giraud,et al. Chapter 3 Genome Evolution in Plant Pathogenic and Symbiotic Fungi , 2009 .
[67] R. Ward,et al. Will stem rust destroy the world's wheat crop? , 2008 .
[68] B. McDonald,et al. Pathogen population genetics, evolutionary potential, and durable resistance. , 2002, Annual review of phytopathology.
[69] A. S. Urashima,et al. Host range, mating type, and fertility of Pyricularia grisea from wheat in Brazil , 1993 .