Divergent regional evolutionary histories of a devastating global amphibian pathogen
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A. P. Rothstein | C. Briggs | E. Rosenblum | J. Voyles | R. Knapp | A. Q. Byrne | C. Richards‐Zawacki | Allison Q. Byrne | Andrew P. Rothstein
[1] Gideon S. Bradburd,et al. Stepping into the past to conserve the future: Archived skin swabs from extant and extirpated populations inform genetic management of an endangered amphibian , 2020, Molecular ecology.
[2] Graziella V. DiRenzo,et al. Tropical snake diversity collapses after widespread amphibian loss , 2020, Science.
[3] A. García‐Rodríguez,et al. Batrachochytrium dendrobatidis infection in amphibians predates first known epizootic in Costa Rica , 2019, PloS one.
[4] D. Blackburn,et al. Cryptic diversity of a widespread global pathogen reveals expanded threats to amphibian conservation , 2019, Proceedings of the National Academy of Sciences.
[5] D. Schmeller,et al. Pathogen invasion history elucidates contemporary host pathogen dynamics , 2019, PloS one.
[6] Rhys A. Farrer,et al. Recent Asian origin of chytrid fungi causing global amphibian declines , 2018, Science.
[7] M. Suchard,et al. Posterior Summarization in Bayesian Phylogenetics Using Tracer 1.7 , 2018, Systematic biology.
[8] E. Rosenblum,et al. Shifts in disease dynamics in a tropical amphibian assemblage are not due to pathogen attenuation , 2018, Science.
[9] C. Goldberg,et al. Using environmental DNA for early detection of amphibian chytrid fungus Batrachochytrium dendrobatidis prior to a ranid die-off. , 2017, Diseases of aquatic organisms.
[10] Trevor Bedford,et al. Nextstrain: real-time tracking of pathogen evolution , 2017, bioRxiv.
[11] A. P. Rothstein,et al. Unlocking the story in the swab: A new genotyping assay for the amphibian chytrid fungus Batrachochytrium dendrobatidis , 2017, Molecular ecology resources.
[12] C. Briggs,et al. Epidemic and endemic pathogen dynamics correspond to distinct host population microbiomes at a landscape scale , 2017, Proceedings of the Royal Society B: Biological Sciences.
[13] David A. W. Miller,et al. Large-scale recovery of an endangered amphibian despite ongoing exposure to multiple stressors , 2016, Proceedings of the National Academy of Sciences.
[14] J. Foster,et al. Application of genetics and genomics to wildlife epidemiology , 2016 .
[15] O. Pybus,et al. Exploring the temporal structure of heterochronous sequences using TempEst (formerly Path-O-Gen) , 2016, Virus evolution.
[16] Ulrich Bodenhofer,et al. msa: an R package for multiple sequence alignment , 2015, Bioinform..
[17] Haiming Zhou,et al. Marginal Bayesian nonparametric model for time to disease arrival of threatened amphibian populations , 2015, Biometrics.
[18] J. P. Collins,et al. Disentangling host, pathogen, and environmental determinants of a recently emerged wildlife disease: lessons from the first 15 years of amphibian chytridiomycosis research , 2015, Ecology and evolution.
[19] K. Lips,et al. Testing the role of ecology and life history in structuring genetic variation across a landscape: a trait‐based phylogeographic approach , 2015, Molecular ecology.
[20] G. Gillespie,et al. Rapid decline and extinction of a montane frog population in southern Australia follows detection of the amphibian pathogen Batrachochytrium dendrobatidis , 2015 .
[21] Menna E. Jones,et al. Emerging infectious diseases of wildlife: a critical perspective. , 2015, Trends in parasitology.
[22] Sebastián Duchêne,et al. The Performance of the Date-Randomization Test in Phylogenetic Analyses of Time-Structured Virus Data. , 2015, Molecular biology and evolution.
[23] D. Hodgson,et al. What has molecular epidemiology ever done for wildlife disease research? Past contributions and future directions , 2015, European Journal of Wildlife Research.
[24] R. Nielsen,et al. ANGSD: Analysis of Next Generation Sequencing Data , 2014, BMC Bioinformatics.
[25] A. von Haeseler,et al. IQ-TREE: A Fast and Effective Stochastic Algorithm for Estimating Maximum-Likelihood Phylogenies , 2014, Molecular biology and evolution.
[26] Dong Xie,et al. BEAST 2: A Software Platform for Bayesian Evolutionary Analysis , 2014, PLoS Comput. Biol..
[27] R. Ostfeld,et al. Climate Change and Infectious Diseases: From Evidence to a Predictive Framework , 2013, Science.
[28] Rhys A. Farrer,et al. Chromosomal Copy Number Variation, Selection and Uneven Rates of Recombination Reveal Cryptic Genome Diversity Linked to Pathogenicity , 2013, PLoS genetics.
[29] J. Stajich,et al. Complex history of the amphibian-killing chytrid fungus revealed with genome resequencing data , 2013, Proceedings of the National Academy of Sciences.
[30] D. Aanensen,et al. Mapping the Global Emergence of Batrachochytrium dendrobatidis, the Amphibian Chytrid Fungus , 2013, PloS one.
[31] Christina A. Cuomo,et al. Novel, panzootic and hybrid genotypes of amphibian chytridiomycosis associated with the bullfrog trade , 2012, Molecular ecology.
[32] Rhys A. Farrer,et al. Multiple emergences of genetically diverse amphibian-infecting chytrids include a globalized hypervirulent recombinant lineage , 2011, Proceedings of the National Academy of Sciences.
[33] C. Briggs,et al. Nowhere to hide: impact of a temperature‐sensitive amphibian pathogen along an elevation gradient in the temperate zone , 2011 .
[34] A. J. Crawford,et al. Epidemic disease decimates amphibian abundance, species diversity, and evolutionary history in the highlands of central Panama , 2010, Proceedings of the National Academy of Sciences.
[35] C. Briggs,et al. Dynamics of an emerging disease drive large-scale amphibian population extinctions , 2010, Proceedings of the National Academy of Sciences.
[36] Cedric E. Ginestet,et al. Factors driving pathogenicity vs. prevalence of amphibian panzootic chytridiomycosis in Iberia. , 2010, Ecology letters.
[37] Sergei L. Kosakovsky Pond,et al. Phylodynamics of Infectious Disease Epidemics , 2009, Genetics.
[38] David Cook,et al. Pathogenesis of Chytridiomycosis, a Cause of Catastrophic Amphibian Declines , 2009, Science.
[39] C. Richards‐Zawacki. Effects of slope and riparian habitat connectivity on gene flow in an endangered Panamanian frog, Atelopus varius , 2009 .
[40] R. Alford,et al. Distribution models for the amphibian chytrid Batrachochytrium dendrobatidis in Costa Rica: proposing climatic refuges as a conservation tool , 2009 .
[41] D. Wake,et al. Are we in the midst of the sixth mass extinction? A view from the world of amphibians , 2008, Proceedings of the National Academy of Sciences.
[42] T. Jombart. adegenet: a R package for the multivariate analysis of genetic markers , 2008, Bioinform..
[43] Robert R Parmenter,et al. The spread of invasive species and infectious disease as drivers of ecosystem change , 2008 .
[44] J. Mendelson,et al. Riding the Wave: Reconciling the Roles of Disease and Climate Change in Amphibian Declines , 2008, PLoS biology.
[45] C. Moritz,et al. Population genetics of the frog-killing fungus Batrachochytrium dendrobatidis , 2007, Proceedings of the National Academy of Sciences.
[46] D. Wake,et al. Concordant molecular and phenotypic data delineate new taxonomy and conservation priorities for the endangered mountain yellow‐legged frog , 2007 .
[47] R. Puschendorf,et al. The amphibian chytrid fungus along an altitudinal transect before the first reported declines in Costa Rica , 2006 .
[48] C. Briggs,et al. Emerging infectious disease as a proximate cause of amphibian mass mortality. , 2006, Ecology.
[49] R. Alford,et al. Emerging infectious disease and the loss of biodiversity in a Neotropical amphibian community. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[50] B. Young,et al. Status and Trends of Amphibian Declines and Extinctions Worldwide , 2004, Science.
[51] O. Pybus,et al. Unifying the Epidemiological and Evolutionary Dynamics of Pathogens , 2004, Science.
[52] James P. Collins,et al. Global amphibian declines: sorting the hypotheses , 2003 .
[53] A. Dobson,et al. Disease, habitat fragmentation and conservation , 2002, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[54] K. Pope,et al. Movement Ecology and Seasonal Distribution of Mountain Yellow-Legged Frogs, Rana muscosa, in a High-Elevation Sierra Nevada Basin , 2001, Copeia.
[55] P. Daszak,et al. Emerging infectious diseases of wildlife--threats to biodiversity and human health. , 2000, Science.
[56] J. Longcore,et al. BATRACHOCHYTRIUM DENDROBATIDIS GEN. ET SP. NOV., A CHYTRID PATHOGENIC TO AMPHIBIANS , 1999 .
[57] D E Green,et al. Chytridiomycosis causes amphibian mortality associated with population declines in the rain forests of Australia and Central America. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[58] K. Lips. Decline of a Tropical Montane Amphibian Fauna , 1998 .
[59] J. Pounds,et al. Tests of Null Models for Amphibian Declines on a Tropical Mountain , 1997 .
[60] D. Bradford. Mass Mortality and Extinction in a High-elevation Population of Rana muscosa , 1991 .
[61] R. Hall,et al. Disease-Driven Amphibian Declines Alter Ecosystem Processes in a Tropical Stream , 2012, Ecosystems.
[62] J. Grinnell,et al. Animal life in the Yosemite , 1924 .