Publications
Found 23 results
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Focusing on survivors: Understanding how some amphibian populations persist beyond chytridiomycosis outbreaks. INTEGRATIVE AND COMPARATIVE BIOLOGY. 53:E221–E221.
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2013. A high speed multiple function unit as a building block for parallel architectures. Proc. IEEE. Int. Conf. Computer Design: VLSI in Computers. :640–644.
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1987. .
1987. Complex history of the amphibian-killing chytrid fungus revealed with genome resequencing data. Proceedings of the National Academy of Sciences. 110:9385–9390.
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2013. Conservation decisions under pressure: Lessons from an exercise in rapid response to wildlife disease. Conservation Science and Practice. 2(1)
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2020. Cryptic diversity of a widespread global pathogen reveals expanded threats to amphibian conservation. Proceedings of the National Academy of Sciences. 116(41)
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2019. Cryptic diversity of a widespread global pathogen reveals expanded threats to amphibian conservation. Proceedings of the National Academy of Sciences. 116(41)
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2019. Effect of temperature on host response to Batrachochytrium dendrobatidis infection in the mountain yellow-legged frog (Rana muscosa). Journal of Wildlife Diseases. 44:716–720.
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2008. Emerging infectious disease as a proximate cause of amphibian mass mortality. Ecology. 87:1671–1683.
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2006. Energy budgets for tadpoles approaching metamorphosis. Ecological Modelling. 436
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2020. Extreme drought, host density, sex, and bullfrogs influence fungal pathogen infection in a declining lotic amphibian. Ecosphere. 8(3)
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2017. Integrating infection intensity into within-and between-host pathogen dynamics: implications for invasion and virulence evolution. The American Naturalist. 198(6)
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2021. Mitigating amphibian disease: strategies to maintain wild populations and control chytridiomycosis. Frontiers in Zoology. 8:1.
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2011. Mountain Yellow-legged Frogs (Rana muscosa) did not Produce Detectable Antibodies in Immunization Experiments with Batrachochytrium dendrobatidis. Journal of wildlife diseases. 52:154–158.
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2016. Moving beyond too little, too late: Managing emerging infectious diseases in wild populations requires international policy and partnerships. EcoHealth. 2014:1–4.
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2014. Occurrence of Batrachochytrium dendrobatidis in anurans of the Mediterranean region of Baja California, México. Diseases of Aquatic Organisms. 127(3)
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2018. Pathophysiology in mountain yellow-legged frogs (Rana muscosa) during a chytridiomycosis outbreak. PLoS One. 7:e35374.
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2012. Population genetics of the frog-killing fungus Batrachochytrium dendrobatidis. Proceedings of the National Academy of Sciences. 104:13845–13850.
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2007. Probiotics Modulate a Novel Amphibian Skin Defense Peptide That Is Antifungal and Facilitates Growth of Antifungal Bacteria.. Microb Ecol.
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2019. Probiotics modulate a novel amphibian skin defense peptide that is antifungal and facilitates growth of antifungal bacteria. Microbial Ecology. 79(1)
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2020. Quantifying variation in the strengths of species interactions. Ecology. 80:2206–2224.
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1999. Rapid extirpation of a North American frog coincides with an increase in fungal pathogen prevalence: Historical analysis and implications for reintroduction. Biology and Evolution. DOI: 10.1002/ece3.3468
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2017. Using stochastic epidemiological models to evaluate conservation strategies for endangered amphibians. Journal of the Royal Society Interface. 14(133):20170480.
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2017.