Matches in SemOpenAlex for { <https://semopenalex.org/work/W2022333447> ?p ?o ?g. }
- W2022333447 abstract "Based on highly successful demonstrations in Israel that attractive toxic sugar bait (ATSB) methods can decimate local populations of mosquitoes, this study determined the effectiveness of ATSB methods for malaria vector control in the semi-arid Bandiagara District of Mali, West Africa. Control and treatment sites, selected along a road that connects villages, contained man-made ponds that were the primary larval habitats of Anopheles gambiae and Anopheles arabiensis. Guava and honey melons, two local fruits shown to be attractive to An. gambiae s.l., were used to prepare solutions of Attractive Sugar Bait (ASB) and ATSB that additionally contained boric acid as an oral insecticide. Both included a color dye marker to facilitate determination of mosquitoes feeding on the solutions. The trial was conducted over a 38-day period, using CDC light traps to monitor mosquito populations. On day 8, ASB solution in the control site and ATSB solution in the treatment site were sprayed using a hand-pump on patches of vegetation. Samples of female mosquitoes were age-graded to determine the impact of ATSB treatment on vector longevity. Immediately after spraying ATSB in the treatment site, the relative abundance of female and male An. gambiae s.l. declined about 90% from pre-treatment levels and remained low. In the treatment site, most females remaining after ATSB treatment had not completed a single gonotrophic cycle, and only 6% had completed three or more gonotrophic cycles compared with 37% pre-treatment. In the control site sprayed with ASB (without toxin), the proportion of females completing three or more gonotrophic cycles increased from 28.5% pre-treatment to 47.5% post-treatment. In the control site, detection of dye marker in over half of the females and males provided direct evidence that the mosquitoes were feeding on the sprayed solutions. This study in Mali shows that even a single application of ATSB can substantially decrease malaria vector population densities and longevity. It is likely that ATSB methods can be used as a new powerful tool for the control of malaria vectors, particularly since this approach is highly effective for mosquito control, technologically simple, inexpensive, and environmentally safe." @default.
- W2022333447 created "2016-06-24" @default.
- W2022333447 creator A5020122496 @default.
- W2022333447 creator A5039688624 @default.
- W2022333447 creator A5044679867 @default.
- W2022333447 creator A5054654748 @default.
- W2022333447 creator A5062690919 @default.
- W2022333447 creator A5075570673 @default.
- W2022333447 creator A5086483149 @default.
- W2022333447 creator A5090692917 @default.
- W2022333447 date "2010-07-21" @default.
- W2022333447 modified "2023-10-16" @default.
- W2022333447 title "Successful field trial of attractive toxic sugar bait (ATSB) plant-spraying methods against malaria vectors in the Anopheles gambiae complex in Mali, West Africa" @default.
- W2022333447 cites W1831100553 @default.
- W2022333447 cites W1960085621 @default.
- W2022333447 cites W1977949214 @default.
- W2022333447 cites W1989318293 @default.
- W2022333447 cites W2001940951 @default.
- W2022333447 cites W2015057765 @default.
- W2022333447 cites W2016967651 @default.
- W2022333447 cites W2024349624 @default.
- W2022333447 cites W2025103983 @default.
- W2022333447 cites W2039249071 @default.
- W2022333447 cites W2063076911 @default.
- W2022333447 cites W2089482510 @default.
- W2022333447 cites W2116721397 @default.
- W2022333447 cites W2125962513 @default.
- W2022333447 cites W2135734379 @default.
- W2022333447 cites W2139802987 @default.
- W2022333447 cites W2144676553 @default.
- W2022333447 cites W2150402679 @default.
- W2022333447 cites W2159864479 @default.
- W2022333447 cites W2174825254 @default.
- W2022333447 cites W2177118588 @default.
- W2022333447 cites W2201943174 @default.
- W2022333447 cites W2423925624 @default.
- W2022333447 cites W4237563992 @default.
- W2022333447 cites W4238809063 @default.
- W2022333447 cites W4253747524 @default.
- W2022333447 doi "https://doi.org/10.1186/1475-2875-9-210" @default.
- W2022333447 hasPubMedCentralId "https://www.ncbi.nlm.nih.gov/pmc/articles/2914067" @default.
- W2022333447 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/20663142" @default.
- W2022333447 hasPublicationYear "2010" @default.
- W2022333447 type Work @default.
- W2022333447 sameAs 2022333447 @default.
- W2022333447 citedByCount "170" @default.
- W2022333447 countsByYear W20223334472012 @default.
- W2022333447 countsByYear W20223334472013 @default.
- W2022333447 countsByYear W20223334472014 @default.
- W2022333447 countsByYear W20223334472015 @default.
- W2022333447 countsByYear W20223334472016 @default.
- W2022333447 countsByYear W20223334472017 @default.
- W2022333447 countsByYear W20223334472018 @default.
- W2022333447 countsByYear W20223334472019 @default.
- W2022333447 countsByYear W20223334472020 @default.
- W2022333447 countsByYear W20223334472021 @default.
- W2022333447 countsByYear W20223334472022 @default.
- W2022333447 countsByYear W20223334472023 @default.
- W2022333447 crossrefType "journal-article" @default.
- W2022333447 hasAuthorship W2022333447A5020122496 @default.
- W2022333447 hasAuthorship W2022333447A5039688624 @default.
- W2022333447 hasAuthorship W2022333447A5044679867 @default.
- W2022333447 hasAuthorship W2022333447A5054654748 @default.
- W2022333447 hasAuthorship W2022333447A5062690919 @default.
- W2022333447 hasAuthorship W2022333447A5075570673 @default.
- W2022333447 hasAuthorship W2022333447A5086483149 @default.
- W2022333447 hasAuthorship W2022333447A5090692917 @default.
- W2022333447 hasBestOaLocation W20223334471 @default.
- W2022333447 hasConcept C104317684 @default.
- W2022333447 hasConcept C150903083 @default.
- W2022333447 hasConcept C18903297 @default.
- W2022333447 hasConcept C203014093 @default.
- W2022333447 hasConcept C2776802408 @default.
- W2022333447 hasConcept C2778048844 @default.
- W2022333447 hasConcept C2779565104 @default.
- W2022333447 hasConcept C2779985137 @default.
- W2022333447 hasConcept C2781375639 @default.
- W2022333447 hasConcept C33070731 @default.
- W2022333447 hasConcept C40767141 @default.
- W2022333447 hasConcept C42972112 @default.
- W2022333447 hasConcept C55493867 @default.
- W2022333447 hasConcept C6557445 @default.
- W2022333447 hasConcept C71924100 @default.
- W2022333447 hasConcept C86803240 @default.
- W2022333447 hasConcept C92087593 @default.
- W2022333447 hasConceptScore W2022333447C104317684 @default.
- W2022333447 hasConceptScore W2022333447C150903083 @default.
- W2022333447 hasConceptScore W2022333447C18903297 @default.
- W2022333447 hasConceptScore W2022333447C203014093 @default.
- W2022333447 hasConceptScore W2022333447C2776802408 @default.
- W2022333447 hasConceptScore W2022333447C2778048844 @default.
- W2022333447 hasConceptScore W2022333447C2779565104 @default.
- W2022333447 hasConceptScore W2022333447C2779985137 @default.
- W2022333447 hasConceptScore W2022333447C2781375639 @default.
- W2022333447 hasConceptScore W2022333447C33070731 @default.
- W2022333447 hasConceptScore W2022333447C40767141 @default.
- W2022333447 hasConceptScore W2022333447C42972112 @default.
- W2022333447 hasConceptScore W2022333447C55493867 @default.
- W2022333447 hasConceptScore W2022333447C6557445 @default.
- W2022333447 hasConceptScore W2022333447C71924100 @default.