Dynamic modelling of personal protection control strategies for vector-borne disease limits the role of diversity amplification
暂无分享,去创建一个
Sharon Bewick | Jeffery Demers | William F Fagan | Justin Calabrese | J. Calabrese | W. Fagan | S. Bewick | J. Demers
[1] Nizar Marcus,et al. Application of optimal control to the epidemiology of malaria , 2012 .
[2] C. S. Holling. The functional response of invertebrate predators to prey density , 1966 .
[3] M. Degennaro. The mysterious multi-modal repellency of DEET , 2015, Fly.
[4] P. Hosseini,et al. Seasonality and the dynamics of infectious diseases. , 2006, Ecology letters.
[5] O. Diekmann,et al. On the definition and the computation of the basic reproduction ratio R0 in models for infectious diseases in heterogeneous populations , 1990, Journal of mathematical biology.
[6] S. Lal,et al. Epidemiology and control of malaria , 1999, Indian journal of pediatrics.
[7] Yanzhao Cao,et al. Optimal control of vector-borne diseases: Treatment and prevention , 2009 .
[8] W. Foster,et al. Frequency of blood-feeding in relation to sugar availability in Aedes aegypti and Anopheles quadrimaculatus (Diptera: Culicidae) , 1987 .
[9] H G Solari,et al. Stochastic eco-epidemiological model of dengue disease transmission by Aedes aegypti mosquito. , 2010, Mathematical biosciences.
[10] S. Moore,et al. Are mosquitoes diverted from repellent‐using individuals to non‐users? Results of a field study in Bolivia , 2007, Tropical medicine & international health : TM & IH.
[11] Robert J Novak,et al. Predicting the impact of insecticide-treated bed nets on malaria transmission: the devil is in the detail , 2009, Malaria Journal.
[12] Ruijun Zhao,et al. Quantifying the impact of decay in bed-net efficacy on malaria transmission , 2014, Journal of theoretical biology.
[13] J. Tchuenche,et al. Control Strategies for the Spread of Malaria in Humans With Variable Attractiveness , 2013 .
[14] H. McCallum,et al. How should pathogen transmission be modelled? , 2001, Trends in ecology & evolution.
[15] M. Degennaro,et al. Genetic Analysis of Mosquito Detection of Humans. , 2017, Current opinion in insect science.
[16] Jean M. Tchuenche,et al. A mathematical analysis of the effects of control strategies on the transmission dynamics of malaria , 2008, Appl. Math. Comput..
[17] David M. Hartley,et al. A systematic review of mathematical models of mosquito-borne pathogen transmission: 1970–2010 , 2013, Journal of The Royal Society Interface.
[18] C. Montell,et al. Avoiding DEET through Insect Gustatory Receptors , 2010, Neuron.
[19] Shaoman Yin,et al. Behavioural responses of females of two anopheline mosquito species to human-occupied, insecticide-treated and untreated bed nets , 2014, Malaria Journal.
[20] Kate E. Jones,et al. Impacts of biodiversity on the emergence and transmission of infectious diseases , 2010, Nature.
[21] Gerry F. Killeen,et al. Exploring the contributions of bed nets, cattle, insecticides and excitorepellency to malaria control: a deterministic model of mosquito host-seeking behaviour and mortality , 2007, Transactions of the Royal Society of Tropical Medicine and Hygiene.
[22] David L. Smith,et al. Ross, Macdonald, and a Theory for the Dynamics and Control of Mosquito-Transmitted Pathogens , 2012, PLoS pathogens.
[23] C. S. Holling. The components of prédation as revealed by a study of small-mammal prédation of the European pine sawfly. , 1959 .
[24] R. Ostfeld,et al. Effects of species diversity on disease risk. , 2006, Ecology letters.
[25] Thomas Smith,et al. Comparing the Effectiveness of Malaria Vector-Control Interventions Through a Mathematical Model , 2010, The American journal of tropical medicine and hygiene.
[26] Joanna Rencławowicz,et al. Transmission assumptions generate conflicting predictions in host-vector disease models: a case study in West Nile virus. , 2006, Ecology letters.
[27] R. Ostfeld,et al. Effects of Host Diversity on Infectious Disease , 2012 .
[28] M. Hassell,et al. A Generalized Model of Parasitoid, Venereal, and Vector-Based Transmission Processes , 1995, The American Naturalist.
[29] A. Fairhall,et al. Mosquitoes Use Vision to Associate Odor Plumes with Thermal Targets , 2015, Current Biology.
[30] A. Dobson. Population Dynamics of Pathogens with Multiple Host Species , 2004, The American Naturalist.
[31] A. Wiratsudakul,et al. Dynamics of Zika virus outbreaks: an overview of mathematical modeling approaches , 2018, PeerJ.
[32] A. Huppert,et al. The Effects of Host Diversity on Vector-Borne Disease: The Conditions under Which Diversity Will Amplify or Dilute the Disease Risk , 2013, PloS one.
[33] J. Watmough,et al. Reproduction numbers and sub-threshold endemic equilibria for compartmental models of disease transmission. , 2002, Mathematical biosciences.
[34] A. James,et al. orco mutant mosquitoes lose strong preference for humans and are not repelled by volatile DEET , 2013, Nature.
[35] Huaiping Zhu,et al. A mathematical model for assessing control strategies against West Nile virus , 2005, Bulletin of mathematical biology.
[36] W. Takken,et al. Effect of insecticide-treated bed nets on house-entry by malaria mosquitoes: The flight response recorded in a semi-field study in Kenya. , 2017, Acta tropica.
[37] RONALD ROSS,et al. Some Quantitative Studies in Epidemiology , 1911, Nature.
[38] Herbert W. Hethcote,et al. The Mathematics of Infectious Diseases , 2000, SIAM Rev..
[39] Ring T. Cardé,et al. Moment-to-moment flight manoeuvres of the female yellow fever mosquito (Aedes aegypti L.) in response to plumes of carbon dioxide and human skin odour , 2011, Journal of Experimental Biology.
[40] J. Havumaki,et al. Coverage, use and maintenance of bed nets and related influence factors in Kachin Special Region II, northeastern Myanmar , 2015, Malaria Journal.
[41] Paul J. Hurtado,et al. Vector host-feeding preferences drive transmission of multi-host pathogens: West Nile virus as a model system , 2012, Proceedings of the Royal Society B: Biological Sciences.
[42] Charly Favier,et al. Influence of spatial heterogeneity on an emerging infectious disease: the case of dengue epidemics , 2005, Proceedings of the Royal Society B: Biological Sciences.
[43] Suzanne Lenhart,et al. OPTIMAL CONTROL OF THE SPREAD OF MALARIA SUPERINFECTIVITY , 2013 .
[44] S. Sinha,et al. Mathematical models of malaria - a review , 2011, Malaria Journal.
[45] S. D. Del Valle,et al. The impact of bed-net use on malaria prevalence. , 2013, Journal of theoretical biology.
[46] M. Wilson,et al. Insecticide-treated net use before and after mass distribution in a fishing community along Lake Victoria, Kenya: successes and unavoidable pitfalls , 2014, Malaria Journal.
[47] C. S. Holling. Some Characteristics of Simple Types of Predation and Parasitism , 1959, The Canadian Entomologist.
[48] Thomas A. Smith,et al. Importance of factors determining the effective lifetime of a mass, long-lasting, insecticidal net distribution: a sensitivity analysis , 2012, Malaria Journal.
[49] L. Yakob. How do biting disease vectors behaviourally respond to host availability? , 2016, Parasites & Vectors.
[50] J. Dushoff,et al. The risk of incomplete personal protection coverage in vector-borne disease , 2016, Journal of The Royal Society Interface.