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Carbamate and Pyrethroid Resistance in the Akron Strain of Anopheles Gambiae

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Specialties Biology
Toxicology
Date 2015 Jun 6
PMID 26047119
Citations 16
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Abstract

Insecticide resistance in the malaria vector, Anopheles gambiae, is a serious problem, epitomized by the multi-resistant Akron strain, originally isolated in the country of Benin. Here we report resistance in this strain to pyrethroids and DDT (13-fold to 35-fold compared to the susceptible G3 strain), but surprisingly little resistance to etofenprox, a compound sometimes described as a "pseudo-pyrethroid." There was also strong resistance to topically-applied commercial carbamates (45-fold to 81-fold), except for the oximes aldicarb and methomyl. Biochemical assays showed enhanced cytochrome P450 monooxygenase and carboxylesterase activity, but not that of glutathione-S-transferase. A series of substituted α,α,α,-trifluoroacetophenone oxime methylcarbamates were evaluated for enzyme inhibition potency and toxicity against G3 and Akron mosquitoes. The compound bearing an unsubstituted phenyl ring showed the greatest toxicity to mosquitoes of both strains. Low cross resistance in Akron was retained by all analogs in the series. Kinetic analysis of acetylcholinesterase activity and its inhibition by insecticides in the G3 strain showed inactivation rate constants greater than that of propoxur, and against Akron enzyme inactivation rate constants similar to that of aldicarb. However, inactivation rate constants against recombinant human AChE were essentially identical to that of the G3 strain. Thus, the acetophenone oxime carbamates described here, though potent insecticides that control resistant Akron mosquitoes, require further structural modification to attain acceptable selectivity and human safety.

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References
1.
Pridgeon J, Pereira R, Becnel J, Allan S, Clark G, Linthicum K . Susceptibility of Aedes aegypti, Culex quinquefasciatus Say, and Anopheles quadrimaculatus Say to 19 pesticides with different modes of action. J Med Entomol. 2008; 45(1):82-7. DOI: 10.1603/0022-2585(2008)45[82:soaacq]2.0.co;2. View

2.
Hemingway J . Efficacy of etofenprox against insecticide susceptible and resistant mosquito strains containing characterized resistance mechanisms. Med Vet Entomol. 1995; 9(4):423-6. DOI: 10.1111/j.1365-2915.1995.tb00017.x. View

3.
Killeen G, Smith T, Ferguson H, Mshinda H, Abdulla S, Lengeler C . Preventing childhood malaria in Africa by protecting adults from mosquitoes with insecticide-treated nets. PLoS Med. 2007; 4(7):e229. PMC: 1904465. DOI: 10.1371/journal.pmed.0040229. View

4.
Diallo D, Cousens S, Cuzin-Ouattara N, Nebie I, Ilboudo-Sanogo E, Esposito F . Child mortality in a West African population protected with insecticide-treated curtains for a period of up to 6 years. Bull World Health Organ. 2004; 82(2):85-91. PMC: 2585912. View

5.
Ranson H, NGuessan R, Lines J, Moiroux N, Nkuni Z, Corbel V . Pyrethroid resistance in African anopheline mosquitoes: what are the implications for malaria control?. Trends Parasitol. 2010; 27(2):91-8. DOI: 10.1016/j.pt.2010.08.004. View