Maximizing the Potential of Attractive Targeted Sugar Baits (ATSBs) for Integrated Vector Management
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[1] Sarita Kumar,et al. Laboratory evaluation of the efficacy of deltamethrin-laced attractive toxic sugar bait formulation on Anopheles stephensi , 2023, Malaria Journal.
[2] John M. Miller,et al. Feeding rates of malaria vectors from a prototype attractive sugar bait station in Western Province, Zambia: results of an entomological validation study , 2023, Malaria Journal.
[3] J. Gimnig,et al. Natural sugar feeding rates of Anopheles mosquitoes collected by different methods in western Kenya , 2022, Scientific Reports.
[4] S. Karunaratne,et al. Mosquito control: A review on the past, present and future strategies , 2022, Journal of the National Science Foundation of Sri Lanka.
[5] E. Walker,et al. Ingestion of spinosad-containing toxic sugar bait alters Aedes albopictus vector competence and vectorial capacity for dengue virus , 2022, Frontiers in Microbiology.
[6] John M. Miller,et al. Attractive targeted sugar bait phase III trials in Kenya, Mali, and Zambia , 2022, Trials.
[7] P. Pennington,et al. Effective Oral RNA Interference (RNAi) Administration to Adult Anopheles gambiae Mosquitoes. , 2022, Journal of visualized experiments : JoVE.
[8] P. Rezende-Teixeira,et al. What can we learn from commercial insecticides? Efficacy, toxicity, environmental impacts, and future developments. , 2022, Environmental pollution.
[9] G. Kumar,et al. Laboratory evaluation of the efficacy of boric acid containing toxic sugar baits against Anopheles culicifacies, An. stephensi and Aedes aegypti mosquitoes , 2022, Journal of vector borne diseases.
[10] J. Roethele,et al. A Yeast RNA-Interference Pesticide Targeting the Irx Gene Functions as a Broad-Based Mosquito Larvicide and Adulticide , 2021, Insects.
[11] J. Roethele,et al. A Broad-Based Mosquito Yeast Interfering RNA Pesticide Targeting Rbfox1 Represses Notch Signaling and Kills Both Larvae and Adult Mosquitoes , 2021, Pathogens.
[12] John M. Marshall,et al. Combating mosquito-borne diseases using genetic control technologies , 2021, Nature Communications.
[13] R. Xue,et al. Evaluation of Bacillus thuringiensis israelensis as toxic sugar bait against adult Aedes aegypti, Aedes albopictus, and Culex quinquefasciatus mosquitoes , 2021, Journal of Vector Ecology.
[14] R. Nauen,et al. Insecticide resistance management and industry: the origins and evolution of the Insecticide Resistance Action Committee (IRAC) and the mode of action classification scheme , 2021, Pest management science.
[15] G. Kumar,et al. Applicability of Attractive Toxic Sugar Baits as a mosquito vector control tool in the context of India: a review. , 2020, Pest management science.
[16] S. Majambere,et al. Testing configurations of attractive toxic sugar bait (ATSB) stations in Mali, West Africa, for improving the control of malaria parasite transmission by vector mosquitoes and minimizing their effect on non-target insects , 2020, Malaria journal.
[17] D. Severson,et al. Characterization of a dual-action adulticidal and larvicidal interfering RNA pesticide targeting the Shaker gene of multiple disease vector mosquitoes , 2020, PLoS neglected tropical diseases.
[18] M. Duman-Scheel,et al. Advances in oral RNAi for disease vector mosquito research and control. , 2020, Current opinion in insect science.
[19] D. Severson,et al. Characterization of an adulticidal and larvicidal interfering RNA pesticide that targets a conserved sequence in mosquito G protein-coupled dopamine 1 receptor genes. , 2020, Insect biochemistry and molecular biology.
[20] S. Majambere,et al. Large-scale field trial of attractive toxic sugar baits (ATSB) for the control of malaria vector mosquitoes in Mali, West Africa , 2020, Malaria Journal.
[21] M. Rowland,et al. Indoor use of attractive toxic sugar bait in combination with long-lasting insecticidal net against pyrethroid-resistant Anopheles gambiae: an experimental hut trial in Mbé, central Côte d’Ivoire , 2020, Malaria journal.
[22] L. Garver,et al. Sodium Ascorbate as a Potential Toxicant in Attractive Sugar Baits for Control of Adult Mosquitoes (Diptera: Culicidae) and Sand Flies (Diptera: Psychodidae) , 2019, Journal of Medical Entomology.
[23] M. Duman-Scheel. Saccharomyces cerevisiae (Baker’s Yeast) as an Interfering RNA Expression and Delivery System , 2019, Current drug targets.
[24] A. A. Silva,et al. Evaluation of attractive toxic sugar baits (ATSB) against Aedes aegypti (Diptera: Culicidae) in laboratory. , 2019, Tropical biomedicine.
[25] W. Silva,et al. Insecticide resistance in mosquitoes: Development, mechanisms and monitoring , 2018, Ceylon Journal of Science.
[26] John M. Marshall,et al. Attacking the mosquito on multiple fronts: Insights from the Vector Control Optimization Model (VCOM) for malaria elimination , 2017, PloS one.
[27] D. Severson,et al. Yeast interfering RNA larvicides targeting neural genes induce high rates of Anopheles larval mortality , 2017, Malaria Journal.
[28] D. Severson,et al. Lure-and-Kill Yeast Interfering RNA Larvicides Targeting Neural Genes in the Human Disease Vector Mosquito Aedes aegypti , 2017, Scientific Reports.
[29] M. Maia,et al. The development of an ivermectin-based attractive toxic sugar bait (ATSB) to target Anopheles arabiensis , 2017, Malaria Journal.
[30] L. Choi,et al. Larviciding to control malaria , 2017 .
[31] Rui-De Xue,et al. Attractive Toxic Sugar Bait (ATSB) For Control of Mosquitoes and Its Impact on Non-Target Organisms: A Review , 2017, International journal of environmental research and public health.
[32] Paul M. Airs,et al. RNA Interference for Mosquito and Mosquito-Borne Disease Control , 2017, Insects.
[33] R. Xue,et al. Evaluations of dual attractant toxic sugar baits for surveillance and control of Aedes aegypti and Aedes albopictus in Florida , 2017, Parasites & Vectors.
[34] R. Xue,et al. Attractive Toxic Sugar Bait (ATSB) Mixed With Pyriproxyfen for Control of Larval Aedes albopictus (Diptera: Culicidae) Through Fecal Deposits of Adult Mosquitoes , 2016, Journal of Medical Entomology.
[35] G. Killeen,et al. Mind the gap: residual malaria transmission, veterinary endectocides and livestock as targets for malaria vector control , 2016, Malaria Journal.
[36] John M. Marshall,et al. Modelling optimum use of attractive toxic sugar bait stations for effective malaria vector control in Africa , 2015, Malaria Journal.
[37] J. Beier,et al. Efficacy of attractive toxic sugar baits (ATSB) against Aedes albopictus with garlic oil encapsulated in beta-cyclodextrin as the active ingredient. , 2015, Acta tropica.
[38] J. Beier,et al. Formulation of attractive toxic sugar bait (ATSB) with safe EPA-exempt substance significantly diminishes the Anopheles sergentii population in a desert oasis. , 2015, Acta tropica.
[39] J. Beier,et al. Indoor use of attractive toxic sugar bait (ATSB) to effectively control malaria vectors in Mali, West Africa , 2015, Malaria Journal.
[40] G. Müller,et al. Decrease of larval and subsequent adult Anopheles sergentii populations following feeding of adult mosquitoes from Bacillus sphaericus-containing attractive sugar baits , 2015, Parasites & Vectors.
[41] W. Takken,et al. Effects of fungal infection on feeding and survival of Anopheles gambiae (Diptera: Culicidae) on plant sugars , 2015, Parasites & Vectors.
[42] G. Killeen. Characterizing, controlling and eliminating residual malaria transmission , 2014, Malaria Journal.
[43] G. Killeen,et al. Persistently high estimates of late night, indoor exposure to malaria vectors despite high coverage of insecticide treated nets , 2014, Parasites & Vectors.
[44] R. Xue,et al. Attractive Toxic Sugar Baits Mixed with Pyriproxyfen Sprayed on Plants Against Adult and Larval Aedes albopictus (Diptera: Culicidae) , 2014, Journal of medical entomology.
[45] J. Beier,et al. Evaluation of attractive toxic sugar bait (ATSB)-Barrier for control of vector and nuisance mosquitoes and its effect on non-target organisms in sub-tropical environments in Florida. , 2014, Acta tropica.
[46] M. Rowland,et al. Indoor Application of Attractive Toxic Sugar Bait (ATSB) in Combination with Mosquito Nets for Control of Pyrethroid-Resistant Mosquitoes , 2013, PloS one.
[47] J. Beier,et al. Attractive Toxic Sugar Baits: Control of Mosquitoes With the Low-Risk Active Ingredient Dinotefuran and Potential Impacts on Nontarget Organisms in Morocco , 2013, Environmental entomology.
[48] John M. Marshall,et al. Quantifying the mosquito’s sweet tooth: modelling the effectiveness of attractive toxic sugar baits (ATSB) for malaria vector control , 2013, Malaria Journal.
[49] J. Beier,et al. Evaluation of boric acid sugar baits against Aedes albopictus (Diptera: Culicidae) in tropical environments , 2013, Parasitology Research.
[50] W. Qualls,et al. Implications for operational control of adult mosquito production in cisterns and wells in St. Augustine, FL using attractive sugar baits. , 2012, Acta tropica.
[51] Kristopher L Arheart,et al. Attractive toxic sugar bait (ATSB) methods decimate populations of Anopheles malaria vectors in arid environments regardless of the local availability of favoured sugar-source blossoms , 2012, Malaria Journal.
[52] Y. Ahn,et al. Insecticidal and repellent activities of insecticide-sucrose solutions to Culex pipiens molestus (Diptera: Culicidae) under laboratory and field conditions. , 2011, Pest management science.
[53] C. Stone,et al. A survival and reproduction trade-off is resolved in accordance with resource availability by virgin female mosquitoes , 2011, Animal Behaviour.
[54] R. Xue,et al. Effect of Application Rate and Persistence of Boric Acid Sugar Baits Applied to Plants for Control of Aedes albopictus , 2011, Journal of the American Mosquito Control Association.
[55] L. Foil,et al. Laboratory Evaluation of Insecticide-Treated Sugar Baits for Control of Phlebotomine Sand Flies (Diptera: Psychodidae) , 2010, Journal of the American Mosquito Control Association.
[56] G. Müller,et al. Experimental control of Phlebotomus papatasi by spraying attractive toxic sugar bait (ATSB) on vegetation. , 2010, Transactions of the Royal Society of Tropical Medicine and Hygiene.
[57] J. Beier,et al. Successful field trial of attractive toxic sugar bait (ATSB) plant-spraying methods against malaria vectors in the Anopheles gambiae complex in Mali, West Africa , 2010, Malaria Journal.
[58] D. J. Lewis,et al. Sugar meals in Phlebotominae and Simuliidae (Diptera) , 2009 .
[59] R. Xue,et al. Field Evaluation of Boric Acid- and Fipronil-Based Bait Stations Against Adult Mosquitoes , 2008, Journal of the American Mosquito Control Association.
[60] G. Müller,et al. Efficacy of toxic sugar baits against adult cistern-dwelling Anopheles claviger. , 2008, Transactions of the Royal Society of Tropical Medicine and Hygiene.
[61] G. Müller,et al. An Approach to Mosquito Control: Using the Dominant Attraction of Flowering Tamarix jordanis Trees Against Culex pipiens , 2008, Journal of medical entomology.
[62] G. Müller,et al. Decline Of Anopheles sergentii and Aedes caspius Populations Following Presentation Of Attractive Toxic (Spinosad) Sugar Bait Stations In An Oasis , 2008, Journal of the American Mosquito Control Association.
[63] J. Lindh,et al. Re-introducing bacteria in mosquitoes--a method for determination of mosquito feeding preferences based on coloured sugar solutions. , 2006, Acta tropica.
[64] W. Takken,et al. Nectar-related vs. human-related volatiles: behavioural response and choice by female and male Anopheles gambiae (Diptera: Culicidae) between emergence and first feeding , 2004, Bulletin of Entomological Research.
[65] R. Wirtz,et al. Phlebotomine sand fly control using bait-fed adults to carry the larvicide Bacillus sphaericus to the larval habitat. , 1997, Journal of the American Mosquito Control Association.
[66] E. Hodgson,et al. Pesticides: an important but underused model for the environmental health sciences. , 1996, Environmental health perspectives.
[67] H. Pener,et al. Bait‐fed adult Culex pipiens carry the larvicide Bacillus sphaericus to the larval habitat , 1990, Medical and veterinary entomology.
[68] G. Esenther,et al. Attractant-Mirex Bait Suppresses Activity of Reticulitermes Spp. , 1974 .
[69] D. Singh,et al. Advances in Plant Biopesticides , 2014, Springer India.
[70] J. Beier,et al. Control of Aedes albopictus with attractive toxic sugar baits (ATSB) and potential impact on non-target organisms in St. Augustine, Florida , 2013, Parasitology Research.
[71] T. Scott,et al. Longitudinal Studies of Aedes aegypti (Diptera: Culicidae) in Thailand and Puerto Rico: Blood Feeding Frequency , 2000, Journal of medical entomology.
[72] W. Foster,et al. Mosquito sugar feeding and reproductive energetics. , 1995, Annual review of entomology.
[73] M. Berenbaum. Bugs In The System: Insects And Their Impact On Human Affairs , 1995 .
[74] M. Jacobson. Chemical insect attractants and repellents. , 1966, Annual review of entomology.
[75] A. O. Lea. Sugar-Baited Insecticide Residues against Mosquitoes. , 1965 .