POLSON, Karen A.; BROGDON, William G.; RAWLINS, Samuel C.
and
CHADEE, Dave D.. Impact of environmental temperatures on resistance to organophosphate insecticides in Aedes aegypti from Trinidad. Rev Panam Salud Publica [online].
2012,
vol.32, n.1, pp. 1-8.
ISSN 1020-4989.
http://dx.doi.org/10.1590/S1020-49892012000700001.
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2. World Health Organization. Global Alert and Response (GAR). Dengue/dengue haemorrhagic fever. Geneva: WHO; c2010. Available from: http://www.who.int/csr/disease/dengue/en Accessed 1 May 2010. [ Links ] 3. Georghiou GP, Wirth M, Tran H, Saume F, Knudsen AB. Potential for organophosphate resistance in Aedes aegypti (Diptera: Culicidae) in the Caribbean area and neighboring countries. J Med Entomol. 1987;24(3):290-4. [ Links ] 4. Pan American Health Organization. Dengue and dengue hemorrhagic fever in the Americas: guidelines for prevention and control. Washington: PAHO; 1994. (Scientific Publication No. 548). [ Links ] 5. Chadee DD, Williams FLR, Kitron UD. Epidemiology of dengue fever in Trinidad, West Indies: the outbreak of 1998. Ann Trop Med Parasitol. 2004;98(3):305-12. [ Links ] 6. Rawlins SC. Spatial distribution of insecticide resistance in Caribbean populations of Aedes aegypti and its significance. Rev Panam Salud Publica. 1998;4(4):243-51. [ Links ] 7. Polson KA, Rawlins SC, Brogdon WG, Chadee DD. Characterization of insecticide resistance in Trinidadian strains of Aedes aegypti mosquitoes. Acta Trop. 2011;117(1):31-8. [ Links ] 8. Githeko AK, Lindsay SW, Confalonieri UE, Patz JA. Climate change and vector-borne diseases: a regional analysis. Bull World Health Organ. 2000;78(9):1136-47. [ Links ] 9. Hardy JL, Houk EJ, Kramer LD, Reeves WC. Intrinsic factors affecting vector competence of mosquitoes for arboviruses. Annu Rev Entomol. 1983;28(1):229-62. [ Links ] 10. Hales S, de Wet N, Maindonald J, Woodward A. Potential effect of population and climate changes on global distribution of dengue fever: an empirical model. Lancet 2002; 360(9336):830-4. [ Links ] 11. Patz JA, Martens WJM, Focks DA, Jetten TH. Dengue fever epidemic potential as projected by general circulation models of global climate change. Environ Health Perspect. 1998;106(3):147-53. [ Links ] 12. Mohammed A, Chadee DD. Effects of different temperature regimens on the development of Aedes aegypti (L.) (Diptera: Culicidae) mosquitoes. Acta Trop. 2011;119(1):38-43. [ Links ] 13. Shope RE. Global climate change and infectious diseases. Environ Health Perspect. 1991;96:171-4. [ Links ] 14. Koopman JS, Prevots DR, Vaca Marin MA, Gomez Dantes H, Zarate Aquino ML, Longini IM Jr, et al. Determinants and predictors of dengue infection in Mexico. Am J Epidemiol. 1991;133(11):1168-78. [ Links ] 15. Intergovernmental Panel on Climate Change. Contribution of Working Group II to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change. In: Parry ML, Canziani OF, Palutikof JP, van der Linden PJ, Hanson CE, editors. Cambridge: Cambridge University Press; 2007. [ Links ] 16. Chen AA, Chadee DD, Rawlins SC, editors. Climate change impact on dengue: the Caribbean experience. Mona: University of the West Indies; 2006. [ Links ] 17. Chen AA, Taylor MA. Investigating the link between early season Caribbean rainfall and the El Niño + 1 year. Int J Climatology. 2002;22(1):87-106. [ Links ] 18. Rawlins SC. Emerging and re-emerging vector-borne diseases in the Caribbean region. West Indian Med J. 1999;48(4):252-3. [ Links ] 19. Polson KA, Rawlins SC, Brogdon WG, Chadee DD. Organophosphate resistance in Trinidad and Tobago strains of Aedes aegypti. J Am Mosq Control Assoc. 2010;26(4):403-10. [ Links ] 20. Yan G, Chadee DD, Severson DW. Evidence for genetic hitchhiking effect associated with insecticide resistance in Aedes aegypti. Genetics. 1998;148(2):793-800. [ Links ] 21. McMichael AJ, Campbell-Lendrum DH, Corvalán CF, Ebi KL, Githeko AK, Scheraga JD, et al., editors. Climate change and human health: risks and responses. Geneva: World Health Organization; 2003. [ Links ] 22. Patz JA, Epstein PR, Burke TA, Balbus JM. Global climate change and emerging infectious diseases. J Am Med Assoc. 1996;275(3):217-23. [ Links ] 23. United Nations Environment Programme; World Health Organization; World Meteorological Organization. Methods of assessing human health vulnerability and public health adaptation to climate change. Geneva: WHO; 2003. (Health and Global Environmental Series No. 1). [ Links ] 24. Reiter P, Amador MA, Conlon N. Enhancement of the CDC ovitrap with hay infusions for daily monitoring of Aedes aegypti populations. J Am Mosq Control Assoc. 1991;7(1): 52-5. [ Links ] 25. Davidson G, Zahar AR. The practical implications of resistance of malaria vectors to insecticides. Bull World Health Organ. 1973;49(5):475-83. [ Links ] 26. World Health Organization. Techniques to detect insecticide resistance mechanisms (field and laboratory manual). Geneva: WHO; 1998. (WHO/CDS/CPC/MAL/98.6). [ Links ] 27. Ministério da Saúde; Fundação Oswaldo Cruz (BR). Metodologia para quantificação de atividade de enzimas relacionadas com a resistência a inseticidas em Aedes aegypti. Brasília: MS; 2006. [ Links ] 28. Hemme RR, Tank JL, Chadee DD, Severson DW. Environmental conditions in water storage drums and influences on Aedes aegypti in Trinidad, West Indies. Acta Trop. 2009;112(1):59-66. [ Links ] 29. Chadee DD. Aedes aegypti aboard boats at Port-of-Spain, Trinidad, West Indies (1972- 82). Mosq News. 1984;44(1):1-3. [ Links ] 30. Horn DJ. Temperature synergism in integrated pest management. In: Hallman GJ, Denlinger DL, editors. Temperature sensitivity in insects and application in integrated pest management. Boulder, CO: Westview Press; 1998. Pp. 125-39. [ Links ] 31. Patil NS, Lole KS, Deobagkar DN. Adaptive larval thermotolerance and induced cross-tolerance to propoxur insecticide in mosquitoes Anopheles stephensi and Aedes aegypti. Med Vet Entomol. 1996;10(3):277-82. [ Links ] 32. Imasheva AG, Loeschcke V, Zhivotovsky LA, Lazebny OE. Effects of extreme temperatures on phenotypic variation and developmental stability in Drosophila melanogaster and Drosophila buzzatii. Biol J Linn Soc. 1997;61(1):117-26. [ Links ] 33. Brogdon WG, McAllister JC. Insecticide resistance and vector control. Emerg Infect Dis. 1998;4(4):605-13. [ Links ] 34. Hemingway J, Boodington R, Harris J. Mechanisms of insecticide resistance in Aedes aegypti (L) (Díptera: Culicidae) from Puerto Rico. Bull Entomol. 1989;79(1):123-30. [ Links ] 35. Rodríguez MM, Bisset J, de Fernandez DM, Lauzán L, Soca A. Detection of insecticide resistance in Aedes aegypti (Diptera: Culicidae) from Cuba and Venezuela. J Med Entomol. 2001;38(5):623-8. [ Links ] 36. Karunaratne SH, Vaughan A, Paton MG, Hemingway J. Amplification of a serine esterase gene is involved in insecticide resistance in Sri Lankan Culex tritaeniorhynchus. Insect Mol Biol. 1998;7(4):307-15. [ Links ] 37. Montella IR, Martins AJ, Viana-Medeiros PF, Lima JBP, Braga IA, Valle D. Insecticide resistance mechanisms of Brazilian Aedes aegypti populations from 2001 to 2004. Am J Trop Med Hyg. 2007;77(3):467-77. [ Links ] |