The role of invasive alien species in the emergence and spread of zoonoses
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Kevin G. Smith | H. Roy | R. Scalera | B. Purse | E. Tricarico | R. Hassall | Katy Roy | Charlotte A. Johns
[1] Yuanbao Du,et al. Biological invasions facilitate zoonotic disease emergences , 2022, Nature communications.
[2] E. Maiques,et al. First Description of SARS-CoV-2 Infection in Two Feral American Mink (Neovison vison) Caught in the Wild , 2021, Animals : an open access journal from MDPI.
[3] R. Plowright,et al. Land use-induced spillover: a call to action to safeguard environmental, animal, and human health , 2021, The Lancet Planetary Health.
[4] A. A. Valnisty,et al. Molecular genetic polymorphism of American mink populations (Neovison vison) in model fur farms and on the adjacent territories in Belarus , 2020, Doklady of the National Academy of Sciences of Belarus.
[5] J. Guitian,et al. Invasive alien species and disease risk: An open challenge in public and animal health , 2020, PLoS pathogens.
[6] Kate E. Jones,et al. Zoonotic host diversity increases in human-dominated ecosystems , 2020, Nature.
[7] Andrew M. Liebhold,et al. Scientists' warning on invasive alien species , 2020, Biological reviews of the Cambridge Philosophical Society.
[8] M. Enserink. Coronavirus rips through Dutch mink farms, triggering culls. , 2020, Science.
[9] M. Enserink. Coronavirus rips through Dutch mink farms, triggering culls to prevent human infections , 2020 .
[10] Martin A. Nuñez,et al. Invasion Science and the Global Spread of SARS-CoV-2 , 2020, Trends in Ecology & Evolution.
[11] Christine K. Johnson,et al. Global shifts in mammalian population trends reveal key predictors of virus spillover risk , 2020, Proceedings of the Royal Society B.
[12] C. Tatard,et al. Spatio-temporal survey of small mammal-borne Trypanosoma lewisi in Cotonou, Benin, and the potential risk of human infection. , 2019, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[13] P. Cross,et al. Confronting models with data: the challenges of estimating disease spillover , 2019, Philosophical Transactions of the Royal Society B.
[14] M. Kosoy,et al. Bartonella Bacteria in Urban Rats: A Movement From the Jungles of Southeast Asia to Metropoles Around the Globe , 2019, Front. Ecol. Evol..
[15] Zhong-dao Wu,et al. Zoonotic parasites carried by invasive alien species in China , 2019, Infectious Diseases of Poverty.
[16] Hunter R. Merrill,et al. Wildlife Management Practices Associated with Pathogen Exposure in Non-Native Wild Pigs in Florida, U.S. , 2018, Viruses.
[17] D. Bachoon,et al. Detection of Brucella suis, Campylobacter jejuni, and Escherichia coli Strains in Feral Pig (Sus scrofa) Communities of Georgia. , 2018, Vector borne and zoonotic diseases.
[18] G. Rocamora,et al. Biogeography of Leptospira in wild animal communities inhabiting the insular ecosystem of the western Indian Ocean islands and neighboring Africa , 2018, Emerging Microbes & Infections.
[19] M. Kraemer,et al. Global risk mapping for major diseases transmitted by Aedes aegypti and Aedes albopictus. , 2018, International journal of infectious diseases : IJID : official publication of the International Society for Infectious Diseases.
[20] A. Aguirre. Changing Patterns of Emerging Zoonotic Diseases in Wildlife, Domestic Animals, and Humans Linked to Biodiversity Loss and Globalization. , 2017, ILAR journal.
[21] P. Cattan,et al. Renal carriage of Leptospira species in rodents from Mediterranean Chile: The Norway rat (Rattus norvegicus) as a relevant host in agricultural lands. , 2017, Acta tropica.
[22] N. Burkett-Cadena,et al. Mammal decline, linked to invasive Burmese python, shifts host use of vector mosquito towards reservoir hosts of a zoonotic disease , 2017, Biology Letters.
[23] P. Hulme. Climate change and biological invasions: evidence, expectations, and response options , 2017, Biological reviews of the Cambridge Philosophical Society.
[24] Stefan Schindler,et al. Alien Pathogens on the Horizon: Opportunities for Predicting their Threat to Wildlife , 2017 .
[25] James O. Lloyd-Smith,et al. Pathways to zoonotic spillover , 2017, Nature Reviews Microbiology.
[26] Ingolf Kühn,et al. No saturation in the accumulation of alien species worldwide , 2017, Nature Communications.
[27] L. McElhinney,et al. Of rats and pathogens: pathogens transmitted by urban rats with an emphasis on hantaviruses. , 2016 .
[28] Barbara A. Han,et al. Global Patterns of Zoonotic Disease in Mammals , 2016, Trends in Parasitology.
[29] Arie Havelaar,et al. World Health Organization Estimates of the Global and Regional Disease Burden of 11 Foodborne Parasitic Diseases, 2010: A Data Synthesis , 2015, PLoS medicine.
[30] M. Gilbert,et al. Towards a resource‐based habitat approach for spatial modelling of vector‐borne disease risks , 2015, Biological reviews of the Cambridge Philosophical Society.
[31] J. Knapp,et al. First report of the zoonotic tapeworm Echinococcus multilocularis in raccoon dogs in Estonia, and comparisons with other countries in Europe. , 2015, Veterinary parasitology.
[32] John M. Drake,et al. Rodent reservoirs of future zoonotic diseases , 2015, Proceedings of the National Academy of Sciences.
[33] M. J. Hatcher,et al. Parasites and biological invasions: parallels, interactions, and control. , 2015, Trends in parasitology.
[34] P. Hulme,et al. Invasive species challenge the global response to emerging diseases. , 2014, Trends in parasitology.
[35] R. Ostfeld,et al. Effects of environmental change on zoonotic disease risk: an ecological primer. , 2014, Trends in parasitology.
[36] Chelsea G. Himsworth,et al. The secret life of the city rat: a review of the ecology of urban Norway and black rats (Rattus norvegicus and Rattus rattus) , 2013, Urban Ecosystems.
[37] P. Daszak,et al. Human ecology in pathogenic landscapes: two hypotheses on how land use change drives viral emergence. , 2013, Current opinion in virology.
[38] Kate E. Jones,et al. A framework for the study of zoonotic disease emergence and its drivers: spillover of bat pathogens as a case study , 2012, Philosophical Transactions of the Royal Society B: Biological Sciences.
[39] Tiziana Lembo,et al. Bringing together emerging and endemic zoonoses surveillance: shared challenges and a common solution , 2012, Philosophical Transactions of the Royal Society B: Biological Sciences.
[40] D. Grace,et al. The multiple burdens of zoonotic disease and an ecohealth approach to their assessment , 2012, Tropical Animal Health and Production.
[41] Jonathan M. Chase,et al. Invasive honeysuckle eradication reduces tick-borne disease risk by altering host dynamics , 2010, Proceedings of the National Academy of Sciences.
[42] S. L. Flory,et al. Exotic Grass Invasion Reduces Survival of Amblyomma americanum and Dermacentor variabilis Ticks (Acari: Ixodidae) , 2008, Journal of medical entomology.
[43] Kate E. Jones,et al. Global trends in emerging infectious diseases , 2008, Nature.
[44] N. Kristensen,et al. Danish free-ranging mink populations consist mainly of farm animals: Evidence from microsatellite and stable isotope analyses , 2005 .