Vector Control, Pest Management, Resistance, Repellents Plant pollen as a resource affecting the development and survival of the mosquitoes Anopheles quadrimaculatus and Culex quinquefasciatus (Diptera: Culicidae)
暂无分享,去创建一个
[1] J. E. Staples,et al. West Nile Virus and Other Domestic Nationally Notifiable Arboviral Diseases — United States, 2019 , 2021, MMWR. Morbidity and mortality weekly report.
[2] J. Martínez‐de la Puente,et al. Implications of diet on mosquito life history traits and pathogen transmission. , 2021, Environmental research.
[3] T. Monath. The Arboviruses: Epidemiology and Ecology , 2019 .
[4] B. Alto,et al. Linking nutrient stoichiometry to Zika virus transmission in a mosquito , 2019, Oecologia.
[5] D. Yee,et al. Response of Aedes aegypti and Aedes albopictus (Diptera: Culicidae) Survival, Life History, and Population Growth to Oak Leaf and Acorn Detritus , 2019, Journal of Medical Entomology.
[6] M. Vignuzzi,et al. Taking a bite out of nutrition and arbovirus infection , 2018, PLoS neglected tropical diseases.
[7] R. Ignell,et al. Grass Pollen Affects Survival and Development of Larval Anopheles arabiensis (Diptera: Culicidae) , 2017, Journal of insect science.
[8] G. Christophides,et al. Larval diet affects mosquito development and permissiveness to Plasmodium infection , 2016, Scientific Reports.
[9] J. F. Day. Mosquito Oviposition Behavior and Vector Control , 2016, Insects.
[10] P. Basu,et al. The Southern House Mosquito, Culex quinquefasciatus: profile of a smart vector , 2016 .
[11] D. Yee,et al. How Diverse Detrital Environments Influence Nutrient Stoichiometry between Males and Females of the Co-Occurring Container Mosquitoes Aedes albopictus, Ae. aegypti, and Culex quinquefasciatus , 2015, PloS one.
[12] A. Pouyan Nejadhashemi,et al. Climate change and eastern Africa: a review of impact on major crops , 2015 .
[13] S. Munga,et al. Performance of Five Food Regimes on Anopheles gambiae Senso Stricto Larval Rearing to Adult Emergence in Insectary , 2014, PloS one.
[14] D. Yee,et al. Behavioral Differences among Four Co-Occurring Species of Container Mosquito Larvae: Effects of Depth and Resource Environments , 2014, Journal of medical entomology.
[15] A. Covich,et al. Nutrient Enrichment Affects Immature Mosquito Abundance and Species Composition in Field-Based Mesocosms in the Coastal Plain of Georgia , 2014, Environmental entomology.
[16] A. Githeko,et al. Evaluating larval mosquito resource partitioning in western Kenya using stable isotopes of carbon and nitrogen , 2013, Parasites & Vectors.
[17] D. Yee,et al. Variation in performance of two co‐occurring mosquito species across diverse resource environments: insights from nutrient and stable isotope analyses , 2012 .
[18] M. Berenbaum,et al. Larval environmental stress alters Aedes aegypti competence for Sindbis virus , 2011, Tropical medicine & international health : TM & IH.
[19] P. Pulkkinen,et al. The size and germinability of Scots pine pollen in different temperatures in vitro , 2011 .
[20] Laura C. Harrington,et al. Epidemiology of vector-borne diseases , 2010 .
[21] E. Walker,et al. Stable isotope analysis reveals detrital resource base sources of the tree hole mosquito, Aedes triseriatus , 2010, Ecological entomology.
[22] M. Reiskind,et al. Leaf species identity and combination affect performance and oviposition choice of two container mosquito species , 2009, Ecological entomology.
[23] K. Ng’habi,et al. Sexual selection in mosquito swarms: may the best man lose? , 2008, Animal Behaviour.
[24] S. Juliano,et al. Detritus Type Alters the Outcome of Interspecific Competition Between Aedes aegypti and Aedes albopictus (Diptera: Culicidae) , 2008, Journal of medical entomology.
[25] C. Schölzel,et al. Stable isotope ratios of carbon and nitrogen in pollen grains in order to characterize plant functional groups and photosynthetic pathway types. , 2007, The New phytologist.
[26] W. Goedkoop,et al. Trophic fractionation of carbon and nitrogen stable isotopes in Chironomus riparius reared on food of aquatic and terrestrial origin , 2006 .
[27] J. Mccann,et al. New evidence of the effects of agro-ecologic change on malaria transmission. , 2005, The American journal of tropical medicine and hygiene.
[28] A. Liston,et al. Phylogeny and classification of Pinus , 2005 .
[29] Navin Ramankutty,et al. Geographic distribution of major crops across the world , 2004 .
[30] R. Pollack,et al. A Component of Maize Pollen That Stimulates Larval Mosquitoes (Diptera: Culicidae) to Feed and Increases Toxicity of Microbial Larvicides , 2003, Journal of medical entomology.
[31] R. Pollack,et al. Enhancement of development of larval Anopheles arabiensis by proximity to flowering maize (Zea mays) in turbid water and when crowded. , 2003, The American journal of tropical medicine and hygiene.
[32] William K. Reisen,et al. Vector Competence of California Mosquitoes for West Nile virus , 2002, Emerging infectious diseases.
[33] D. Aylor,et al. Settling speed of corn (Zea mays) pollen , 2002 .
[34] H. Briegel,et al. Aedes aegypti: size, reserves, survival, and flight potential. , 2001, Journal of vector ecology : journal of the Society for Vector Ecology.
[35] R. Pollack,et al. Enhanced development in nature of larval Anopheles arabiensis mosquitoes feeding on maize pollen. , 2000, The American journal of tropical medicine and hygiene.
[36] M. Turell,et al. Potential for New York mosquitoes to transmit West Nile virus. , 2000, The American journal of tropical medicine and hygiene.
[37] Michael W. Parker,et al. Origin of the West Nile virus responsible for an outbreak of encephalitis in the northeastern United States. , 1999, Science.
[38] H. Briegel,et al. Larval growth and biosynthesis of reserves in mosquitoes. , 1999, Journal of insect physiology.
[39] M. Mulla,et al. Factors influencing ingestion of particulate materials by mosquito larvae (Diptera: Culicidae). , 1989, Journal of medical entomology.
[40] M. Laird. The Natural History of Larval Mosquito Habitats , 1988 .
[41] D. K. Shortess. Variability of a water-insoluble protein fraction from maize pollen , 1983 .
[42] E. K. Porter. Origins and genetic nonvariability of the proteins which diffuse from maize pollen. , 1981, Environmental health perspectives.
[43] R. J. Anderson,et al. ANALYSIS AND COMPOSITION OF CORN POLLEN PRELIMINARY REPORT , 1922 .
[44] W. Foster,et al. Effects of Available Sugar on the Reproductive Fitness and Vectorial Capacity of the Malaria Vector Anopheles gambiae (Diptera: Culicidae) , 2001, Journal of medical entomology.
[45] E. Walker,et al. Feeding behavior, natural food, and nutritional relationships of larval mosquitoes. , 1992, Annual review of entomology.
[46] V. Resh,et al. Interactions among aquatic vegetation, predators and mosquitoes: implications for management of Anopheles mosquitoes in a freshwater marsh , 1991 .
[47] V. Resh,et al. Experimental test of the influence of aquatic macrophyte cover on the survival of Anopheles larvae. , 1989, Journal of the American Mosquito Control Association.
[48] C. Dahl,et al. Functional analysis of the suspension feeding system in mosquitoes (Diptera: Culicidae) , 1988 .
[49] Stanley J. Carpenter,et al. Mosquitoes of North America (north of Mexico) , 1955 .