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Blood feeding patterns of Anopheles freeborni and Culex tarsalis (Diptera: Culicidae): effects of habitat and host abundance

Published online by Cambridge University Press:  10 July 2009

J. W. Wekesa
Affiliation:
Department of Entomology, University of California, Davis, California 95616, USA:
B. Yuval
Affiliation:
Department of Entomology, University of California, Davis, California 95616, USA:
R. K. Washino
Affiliation:
Department of Entomology, University of California, Davis, California 95616, USA:
A. M. de Vasquez
Affiliation:
Centro Conmemorativo Gorgas de Investigacion e Informacion en Salud, Ministerio de Salud, Apartado 6991, Panama 5, Republic de Panama

Abstract

The blood feeding patterns of Anopheles freeborni Aitken and Culex tarsalis Coquillett were studied, and the effects of host availability on these patterns were assessed in four different habitats within a northern California rice agroecosystem. Resting mosquitoes were collected from June to September of 1991 and 1992. The source of mosquito blood meals was identified with the modified precipitin test. Anopheles freeborni exhibited a ‘specialized’ (fixed) blood feeding pattern, predominantly (99% of the time) feeding on mammalian hosts; leporids and bovids were the major hosts, while equines, suids, and other mammals were minor hosts. Culex tarsalis exhibited a more ‘generalized’ (catholic) blood feeding pattern, taking blood meals from both birds and mammals at a ratio of 3:1 with Passeriformes being the most fed upon host group. Human blood indices were under 3% for both mosquito species, and multiple blood meals were estimated at less than 2%. The host feeding patterns for both mosquito species differed among the four (riparian, rice, pasture and mixed) habitats. The host feeding pattern for C. tarsalis reflected the distribution of both mammalian and avian hosts available. On the contrary, the host feeding patterns for A. freeborni reflected the distribution of mammalian but not the available avian hosts. Overall, host availability may be an important determinant of population size of some mosquito taxa (e.g. A. freeborni) than others (e.g. C. tarsalis) in rice culture agroecosystems.

Type
Original Articles
Copyright
Copyright © Cambridge University Press 1997

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References

Bailey, S.F. & Baerg, D.C. (1967) The flight habits of Anopheles freeborni Aitken. Proceedings of the California Mosquito Control Association 35, 5569.Google ScholarPubMed
Beier, J.C., Perkins, P.V., Wirtz, R.A., Koros, J., Diggs, D., Gargan, T.P. II, & Koech, D.K. (1988) Blood meal identification by direct enzyme-linked immunosorbent assay (ELISA), tested on Anopheles (Diptera: Culicidae) in Kenya. Journal of Medical Entomology 25, 916.CrossRefGoogle Scholar
Bruce-Chwatt, L.J., Garrett-Jones, C. & Weitz, B. (1966) Ten years' study (1955–1964) of host selection by anopheline mosquitoes. Bulletin of the World Health Organization 35, 405439.Google Scholar
Burkot, T.R. (1988) Non-random selection by anopheline mosquitoes. Parasitology Today 4, 156162.CrossRefGoogle ScholarPubMed
Campbell, G.L., Hardy, J.L., Eldridge, B.F. & Reeves, W.C. (1991) Isolation of Northway serotype and other Bunyamwera serogroup Bunyaviruses from California and Oregon mosquitoes, 1959–1985. American Journal of Tropical Medicine and Hygiene 44, 581588.CrossRefGoogle Scholar
Dschemnitz, S. (1980) Wildlife management techniques manual. 686 pp. Wildlife Society, Washington DC.Google Scholar
Edman, J.D. (1988) Disease control through manipulation of vector-host interaction: some historical and evolutionary perspective, pp. 4350. in Scott, T.W. & Grumstrup-Scott, J. (Eds) Proceedings of a symposium: the role of vector-host interactions in disease transmission.Miscellaneous publication No. 68,Entomological Society of America.CrossRefGoogle Scholar
Edman, J.D. & Bidlingmayer, W.L. (1969) Flight capacity of blood engorged mosquitoes. Mosquito News 29, 386392.Google Scholar
Edman, J.D., Webber, L.A. & Kale, H.W. II, (1972) Host feeding patterns of Florida mosquitoes II, Culiseta. Journal of Medical Entomology 9, 429434.CrossRefGoogle ScholarPubMed
Focks, D.A., Mclaughlin, R.E. & Smith, B.M. (1988) A dynamic life table model of Psoriphora columbiae in the southern Louisiana rice agroecosystem with supporting hydrological model. I. Analysis of literature and model development. Journal of the American Mosquito Control Association 4, 266281.Google ScholarPubMed
Garrett-Jones, C. (1964) The human blood index of malaria vectors in relation to epidemiological assessment. Bulletin of the World Health Organization 30, 241261.Google ScholarPubMed
Hayes, R.O., Tempelis, C.H., Hess, A.D. & Reeves, W.C. (1973) Mosquito host preference studies in Hale County, Texas. American Journal of Tropical Medicine and Hygiene 22, 270277.CrossRefGoogle ScholarPubMed
Jaenike, J. (1990) Host specialization in phytophagous insects. Annual Review of Ecology and Systematics 21, 243273.CrossRefGoogle Scholar
Kay, B.H., Boreham, P.F.L. & Edman, J.D. (1979) Application of the Feeding Index concept to studies of mosquito host feeding patterns. Mosquito News 39, 6872.Google Scholar
Lehane, M.J. (1991) Biology of blood-sucking insects. 288 pp. London, UK, Harper Collins Academic.CrossRefGoogle Scholar
Loyola, E.G., Rodriguez, M.H., Gonzalez, L., Arredondo-Jimenez, J.I., Bown, D.N. & Vaca, M.A. (1990) Effect of indoor residual spraying of DDT and Bendiocarb on the feeding patterns of Anopheles pseudopunctipennis in Mexico. Journal of the American Mosquito Control Association 6, 635640.Google ScholarPubMed
Loyola, E.G., Gonzalez-Ceron, L., Rodriquez, M.H., Arredondo-Jimenez, J.I., Bennet, S. & Bown, D.N. (1993) Anopheles albimanus (Diptera: Culicidae) host selection patterns in three ecological areas of the coastal plains of Chiapas, Southern Mexico. Journal of Medical Entomology 30, 518523.CrossRefGoogle ScholarPubMed
McHugh, C.P. (1989) Ecology of a semi-isolated population of adult Anopheles freeborni: abundance, trophic status, parity, survivorship, gonotrophic cycle length, and host selection. American Journal of Tropical Medicine and Hygiene 41, 169176.CrossRefGoogle ScholarPubMed
McLaughlin, R.E. & Vidrine, M.F. (1987) Psorophora columbiae larval counts in southwestern Louisiana rice fields as a function of cattle density. Journal of the American Mosquito Control Association 3, 633635.Google Scholar
Meyer, R.P. (1985) The “walk-in” type red box for sampling adult mosquitoes. Proceedings of the New Jersey Mosquito Control Association 72, 104105.Google Scholar
Myers, L.E. (1984) Environmental management for vector control in rice fields in the context of an integrated approach. in Environmental management for vector control in rice fields. 152 pp. FAO Irrigation and Drainage, 41.Google Scholar
Nasci, R.S. (1984) Variations in the blood feeding patterns of Aedes vexans and Aedes trivittatus (Diptera: Culicidae). Journal of Medical Entomology 21, 9599.CrossRefGoogle ScholarPubMed
Nelson, R.L., Templelis, C.H., Reeves, W.C. & Milby, M.M. (1976) Relation of mosquito density to bird:mammal feeding ratios of Culex tarsalis in stable traps. American Journal of Tropical Medicine and Hygiene 25, 644654.CrossRefGoogle ScholarPubMed
O'Meara, G.F. (1985) Gonotrophic interactions in mosquitoes: kicking the blood feeding habit. Florida Entomologist 68, 122131.CrossRefGoogle Scholar
Reeves, W.C., Tempelis, C.H., Bellamy, R.E. & Lofy, M.F. (1963) Observations on the feeding habits of Culex tarsalis in Kern County, California, using precipitating antisera produced in birds. American Journal of Tropical Medicine and Hygiene 12, 929935.CrossRefGoogle ScholarPubMed
Reisen, W.K. & Reeves, W.C. (1990) Bionomics and ecology of Culex tarsalis and other potential mosquito vectors. pp. 254358in Reeves, W.C. (Ed.) Epidemiology and control of mosquito-borne arboviruses in California, 19431987. Sacramento, California, California mosquito and Vector Control Association.Google Scholar
Singal, M., Shaw, P.K., Lindsay, R.C. & Roberto, R.R. (1977) An outbreak of introduced malaria in California possibly involving secondary transmission. American Journal of Tropical Medicine and Hygiene 26, 19.CrossRefGoogle ScholarPubMed
Spadoni, R.D., Nelson, R.L. & Reeves, W.C. (1974) Seasonal occurrence, egg production, and blood feeding activity of autogenous Culex tarsalis. Annals of the Entomological society of America 67, 895901.CrossRefGoogle Scholar
Tempelis, C.H. (1962) Use of a pheasant (Phasianus torquatus) to produce specific ant-chicken serum. Proceeding of the Society for Experimental Biology and Medicine 110, 393394.CrossRefGoogle ScholarPubMed
Templelis, C.H. (1975) Host feeding patterns of mosquitoes, with a review of advances in analysis of blood meals by serology. Journal of Medical Entomology 6, 635653.CrossRefGoogle Scholar
Tempelis, C.H. & Lofy, M.F. (1963) A modified precipitin method for identification of mosquito blood meals. American Journal of Tropical Medicine and Hygiene 12, 825831.CrossRefGoogle Scholar
Tempelis, C.H. & Washino, R.K. (1967) Host feeding patterns of Culex tarsalis in the Sacramento Valley, California, with notes on other species. Journal of Medical Entomology 4, 315318.CrossRefGoogle ScholarPubMed
Tempelis, C.H., Reeves, W.C., Bellamy, R.E. & Lofy, M.F. (1965) A three year study of the feeding habits of Culex tarsalis in Kern County, California. American Journal of Tropical Medicine and Hygiene 14, 170177.CrossRefGoogle ScholarPubMed
Tempelis, C.H., Francy, D.B., Hayes, R.O. & Lofy, M.F. (1967) Variations in feeding patterns of seven culicine mosquitoes on vertebrate hosts in Weld and Larimer Counties, Colorado. American Journal of Tropical Medicine and Hygiene 16, 111119.CrossRefGoogle ScholarPubMed
Waage, J.K. (1979) The evolution of insect-vertebrate associations. Biological Journal of the Linnean Society 12, 187224.CrossRefGoogle Scholar
Washino, R.K. & Tempelis, C.H. (1967) Host feeding patterns of Anopheles freeborni in the Sacramento Valley, California. Journal of Medical Entomology 4, 311314.CrossRefGoogle ScholarPubMed
Washino, R.K. & Tempelis, C.H. (1983) Mosquito host blood meal identification: methodology and data analysis. Annual Review of Entomology 28, 179201.CrossRefGoogle Scholar
Wekesa, J.W. (1995) The blood feeding of two sympatric mosquito species: effect of habitat and host availability on blood feeding patterns and abundance of Anopheles freeborni Aitken and Culex tarsalis Coquillett. PhD. Dissertation, University of California at Davis, USA.Google Scholar
Wekesa, J.W., Yuval, B. & Washino, R.K. (1996) Spatial distribution patterns of adult mosquitoes (Diptera: Culicidae) in habitats associated with the rice agroecosystem of northern California. Journal of Medical Entomology 33, 344350.CrossRefGoogle ScholarPubMed
Wekesa, J.W., Yuval, B. & Washino, R.K. (1997) Multiple blood feeding in Anopheles freeborni and Culex tarsalis (Diptera: Culicidae): temporal and spatial variation. Journal of Medical Entomology 34, 219225.CrossRefGoogle Scholar
Wood, B.L., Beck, L.R., Washino, R.K., Hibbard, K.A. & Salute, J.S. (1992) Estimating high mosquito-producing rice fields using spectral and spatial data. International Journal of Remote Sensing 13, 114.CrossRefGoogle Scholar
Yuval, B., Wekesa, J.W., Lemenager, D., Kaufman, E.E. & Washino, R.K. (1993) Seasonal variation in body size of mosquitoes in a rice culture agroecosystem. Environmental Entomology 22, 459463.CrossRefGoogle Scholar