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INVERSION IN THE ORDER OF FOOD SUPERIORITY BETWEEN TEMPERATURES EFFECTED BY NUTRIENT BALANCE IN THE FLY LARVA AGRIA HOUSEI (DIPTERA: SARCOPHAGIDAE)

Published online by Cambridge University Press:  31 May 2012

H. L. House
Affiliation:
Research Institute, Canada Department of Agriculture, Belleville, Ontario

Abstract

The food value of two synthetic diets for the fly larva Agria housei inverted between two temperatures, 15 °C and 30 °C. The balance of nutrients, particularly effected by the amino acid and lipid mixtures, glucose, thiamine HCl, and calcium pantothenate, was varied in the design of the two diets so that the rate of larval development axenically on one diet was superior to that on the other diet at 30 °C, but inferior to that on the other diet at 15 °C, relatively; for in any case the rate was slower at 15 °C. Differences between the rates on the diets within each given temperature were statistically significant.

Type
Articles
Copyright
Copyright © Entomological Society of Canada 1972

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References

Heilbrunn, L. V. 1947. An outline of general physiology, 2nd ed. Saunders, Philadelphia.Google Scholar
House, H. L. 1954. Nutritional studies with Pseudosarcophaga affinis (Fall.), a dipterous parasite of the spruce budworm, Choristoneura fumiferana (Clem.) 1. A chemically defined medium and aseptic-culture technique. Can. J. Zool. 32: 331341.CrossRefGoogle Scholar
House, H. L. 1965. Effects of low levels of the nutrient content of a food and of nutrient imbalance on the feeding and the nutrition of a phytophagous larva, Celerio euphorbiae (Linnaeus) (Lepidoptera: Sphingidae). Can. Ent. 97: 6268.CrossRefGoogle Scholar
House, H. L. 1966 a. Effect of temperature on the nutritional requirements of an insect, Pseudosarcophaga affinis auct. nec Fallén (Diptera: Sarcophagidae), and its probable ecological significance. Ann. ent. Soc. Am. 59: 12631267.CrossRefGoogle Scholar
House, H. L. 1966 b. Effects of varying the ratio between the amino acids and the other nutrients in conjunction with a salt mixture on the fly Agria affinis (Fall.). J. Insect Physiol. 12: 299310.CrossRefGoogle Scholar
House, H. L. 1966 c. Effects and interactions of varied levels of temperature, amino acids, and a vitamin on the rate of larval development in the fly Pseudosarcophaga affinis. J. Insect Physiol. 12: 14931501.CrossRefGoogle Scholar
House, H. L. 1967. The role of nutritional factors in food selection and preference as related to larval nutrition of an insect, Pseudosarcophaga affinis (Diptera: Sarcophagidae), on synthetic diets. Can. Ent. 99: 13101321.CrossRefGoogle Scholar
House, H. L. 1971 a. Changes from initial food choice in a fly larva, Agria affinis, as related to dietary proprotions of nutrients. J. Insect Physiol. 17: 10511059.CrossRefGoogle Scholar
House, H. L. 1971 b. Relations between dietary proportions of nutrients, growth rate, and choice of food in the fly larva Agria affinis. J. Insect Physiol. 17: 12251238.CrossRefGoogle Scholar
House, H. L. and Barlow, J. S.. 1956. Nutritional studies with Pseudosarcophaga affinis (Fall.), a dipterous parasite of the spruce budworm, Choristoneura fumiferana (Clem.) V. Effects of various concentrations of the amino acid mixture, dextrose, potassium ion, the salt mixture, and lard on growth development; and a substitute for lard. Can. J. Zool. 34: 182189.CrossRefGoogle Scholar
House, H. L. and Barlow, J. S.. 1960. Effects of oleic and other fatty acids on the growth rate of Agria affinis (Fall.) (Diptera: Sarcophagidae). J. Nutr. 72: 409414.CrossRefGoogle Scholar
House, H. L. and Barlow, J. S.. 1965. Effects of a new salt mixture developed for Agria affinis (Fallén) (Diptera: Sarcophagidae) on the growth rate, body weight, and protein content of the larvae. J. Insect Physiol. 11: 915918.CrossRefGoogle Scholar
House, H. L., Riordan, D. F., and Barlow, J. S.. 1958. Effects of thermal conditioning and of degree of saturation of dietary lipids on resistance of an insect to high temperature. Can. J. Zool. 36: 629632.CrossRefGoogle Scholar
Maynard, L. A. 1937. Animal nutrition. McGraw-Hill, New York.Google Scholar
Schaefer, C. H. 1968. The relation of the fatty acid composition of Heliothis zea larvae to that of its diet. J. Insect Physiol. 14: 171178.CrossRefGoogle Scholar
Shewell, G. E. 1971. On the type of Agria, with description of a new nearctic species (Diptera: Sarcophagidae). Can. Ent. 103: 11791191.CrossRefGoogle Scholar
Smith, D. S. 1960. Effects of changing phosphorus content of the food plant on the migratory grasshopper Melanoplus bilituratus (Walker) (Orthoptera: Acrididae). Can. Ent. 92: 103107.CrossRefGoogle Scholar
Smith, D. S. and Northcott, F. E.. 1951. The effects on the grasshopper, Melanoplus mexicanus mexicanus (Sauss.) of varying the nitrogen content in its food. Can. J. Res. 29: 297304.Google Scholar
Snedecor, G. W. 1946. Statistical methods, 4th ed. Iowa State College Press, Ames.Google ScholarPubMed