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The role of blood intake in density regulation of populations of Triatoma infestans (Klug) (Hemiptera: Reduviidae)

Published online by Cambridge University Press:  10 July 2009

C. J. Schofield
Affiliation:
Department of Entomology, London School of Hygiene and Tropical Medicine, Keppel Street, London WC1E 7HT, UK

Abstract

The growth of populations of Triatoma infestans (Klug) depends on temperature and blood-intake. Experiments are described which demonstrated the density-dependent relationship between population size, blood intake and population growth at different temperatures. The number of bugs feeding and their mean blood intake was lower at high bug densities than at low ones, both with restrained chickens and with unrestrained mice as hosts. When blood intake was restricted, the development times of all nymphal stages were increased, and female fecundity was decreased. Previous work showed also that reduced blood intake led to an increased tendency for adult flight. It is thought that at high bug density the three factors, increased development times, decreased fecundity and increased flight, operate to restore the population to a stable density without promoting an increase in mortality. The mechanism linking population density to nutritional status seemed to depend on host irritability, which interrupted the bugs' feeding. Bugs which passed a certain threshold meal size would not resume feeding if interrupted, even though their blood intake was well below normal. The difference between the minimal threshold meal and a normal meal is thought to provide the nutritional elasticity within which the development processes are regulated. It is suggested that this mechanism is characteristic of K-strategists, whereas r–strategists such as mosquitoes tend to continue attacking, even if interrupted, until they achieve a normal meal.

Type
Original Articles
Copyright
Copyright © Cambridge University Press 1982

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References

Anwyl, R. (1972). The structure and properties of an abdominal stretch receptor in Rhodnius prolixus.—J. Insect Physiol. 18, 21432153.CrossRefGoogle Scholar
Carr, D. S. & Harris, B. L. (1949). Solutions for maintaining constant relative humidity.—Ind. Engng Chem. 41, 20142015.CrossRefGoogle Scholar
Ekkens, D. B. (1981). Nocturnal flights of Triatoma (Hemiptera: Reduviidae) in Sabino Canyon, Arizona. I. Light collections.—J. med. Entomol. 18, 211227.CrossRefGoogle Scholar
Friend, W. G., Choy, C. T. H. & Cartwright, E. (1965). The effect of nutrient intake on the development and the egg production of Rhodnius prolixus Ståhl (Hemiptera:Reduviidae).—Can. J. Zool. 43, 891904.CrossRefGoogle ScholarPubMed
Friend, W. G. & Smith, J. J. B. (1977). Factors affecting feeding by bloodsucking insects.—A. Rev. Ent. 22, 309331.CrossRefGoogle ScholarPubMed
Gringorten, J. L. & Friend, W. G. (1979). Tissue development in Rhodnius prolixus (Hemiptera: Reduviidae): dry-weight changes in fed and unfed post-ecdysial males.—Can. Ent. 111, 735740.CrossRefGoogle Scholar
Haridass, E. T. & Ananthakrishnan, T. N. (1980). Models for the predatory behaviour of some reduviids from southern India (Insecta-Heteroptera-Reduviidae).—Proc. Indian Acad. Sci. (Anim. Sci.) 89, 387402.CrossRefGoogle Scholar
Lehane, M. J. & Schofield, C. J. (1981). Field experiments of dispersive flight by Triatoma infestans.—Trans. R. Soc. trap. Med. Hyg. 75, 399400.CrossRefGoogle ScholarPubMed
Lehane, M. J. & Schofield, C. J. (1982). Flight initiation in Triatoma infestans (Klug)(Hemiptera: Reduviidae).—Bull. ent. Res. 72, 497510.CrossRefGoogle Scholar
MacArthur, R. H. & Wilson, E. O. (1967). The theory of island biogeography.—203 pp.Princeton, New Jersey, Princeton University Press.Google Scholar
Maddrell, S. H. P. (1963). Control of ingestion in Rhodnius prolixus Stål.—Nature, Lond. 198, 210.CrossRefGoogle Scholar
Nicholson, A. J. (1954). An outline of the dynamics of animal populations.—Aust. J. Zool. 2, 965.CrossRefGoogle Scholar
Patterson, J. W. (1979). The effect of larval nutrition on egg production in Rhodnius prolixus.—J. Insect Physiol. 25, 3117ndash;314.CrossRefGoogle Scholar
Rabinovich, J. E. (1974). Demographic strategies in animal populations: a regression analysis.—pp. 1940 in Golloy, F. B. & Medina, E. (Eds.) Tropical ecological systems.—New York, Springer Verlag.Google Scholar
Rodríguez, D. & Rabinovich, J. (1980). The effect of density on some population parameters of Rhodnius prolixus (Hemiptera: Reduviidae) under laboratory conditions.—J. med. Entomol. 17, 165171.CrossRefGoogle Scholar
Ryckman, R. E. & Ryckman, J. V. (1967). Epizootiology of Trypanosoma cruzi in south western North America. Part XII: does Gause's rule apply to the ectoparasitic Triatominae? (Hemiptera: Reduviidae) (Kinetoplastidae: Trypanosomidae) (Rodentia: Cricetidae).—J. med. Entomol. 4, 379386.CrossRefGoogle Scholar
Schofield, C. J. (1979). The behaviour of Triatominae (Hemiptera: Reduviidae): a review.—Bull. ent. Res. 69,363379.CrossRefGoogle Scholar
Schofield, C. J. (1980 a). Density regulation of domestic populations of Triatoma infestans in Brazil.—Trans. R. Soc. trap. Med. Hyg. 74, 761769.CrossRefGoogle ScholarPubMed
Schofield, C. J. (1980 b). Nutritional status of domestic populations of Triatoma infestansTrans. R. Soc. trop. Med. Hyg. 74, 770778.CrossRefGoogle ScholarPubMed
Schofield, C. J. & Marsden, P. D. (1980). The effect of wall plaster on a domestic population of Triatoma infestans.—6 pp. Geneva, Wld Hlth Org. (WHO/VBC/80.757).Google Scholar
Schofield, C. J. & Marsden, P. D. (1982). Efecto del revoque de las paredes sobre una població;n doméstica de Triatoma infestans.—Boln Of. sanit. pan-am. 93, 39.Google Scholar
Snedecor, G. W. & Cochran, W. G. (1969). Statistical methods.—6th edn, 593 pp. Ames, Iowa State University Press.Google Scholar
Waage, J. K. (1979). The evolution of insect/vertebrate associations.—Biol. J. Linnean Soc.Lond. 12, 187224.CrossRefGoogle Scholar
Waage, J. K. & Nondo, J. (1982). Host behaviour and mosquito feeding success: an experimental study.—Trans. R. Soc. trop. Med. Hyg. 76, 119122.CrossRefGoogle ScholarPubMed
Wigglesworth, V. B. (1934). The physiology of ecdysis in Rhodnius prolixus (Hemiptera).II. Factors controlling moulting and “metamorphosis ”.—Q. Jl microsc. Sci. 77, 191222.Google Scholar
Zeledón, R. (1974). Epidemiology, modes of transmission and reservoir hosts of Chagas'disease.—Ciba Foundation Symposium no. 20, 5185.Google Scholar