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Insects and Other Arthropods as Food 637
Bilby, L. and Widdowson, E. (1971). Chemical composition of growth in nestling blackbirds and
thrushes. British Journal of Nutrition 25: 127–134.
Bodnaryk, R.P. (1981). The biosynthesis, function and fate of taurine during the metamorphosis of the
noctuid moth Mamestra configurata Wlk. Insect Biochemistry 11: 199–205.
Bukkens, S.G.F. (1997). The nutritional value of edible insects. Ecology of Food and Nutrition 36: 287–319.
Bureš, S. and Weidinger, K. (2003). Sources and timing of calcium intake during reproduction in
flycatchers. Oecologia 137 (4): 634–641. https://doi.org/10.1007/s00442-003-1380-7.
Capinera, J. (2010). Insects and Wildlife: Arthropods and their Relationships with Wild Vertebrate
Animals. Hoboken, NJ: Wiley-Blackwell.
Cerda, H., Martinez, R., Briceno, N. et al. (2001). Palm worm: (Rhynchophorus palmarum) traditional
food in Amazonas, Venezuela – nutritional composition, small scale production and tourist
palatability. Ecology of Food and Nutrition 40: 13–32.
Dhondt, A.A. and Hochachka, W.M. (2001). Variations in calcium use by birds during the breeding
season. The Condor 103 (3): 592–598.
Duerr, R. (2007). Passerines: hand-feeding diets. In: Hand-Rearing Birds (eds. L. Gage and R. Duerr),
377–380. Ames, IA: Blackwell Publishing.
Eeva, T., Helle, S., Salmine, J.P., and Hakkarainen, H. (2010). Carotenoid composition of invertebrates
consumed by two insectivorous bird species. Journal of Chemical Ecology 36: 608–613.
Finke, M.D. (2002). Complete nutrient composition of commercially raised invertebrates used as food
for insectivores. Zoo Biology 21 (3): 269–285.
Finke, M.D. (2003). Gut loading to enhance the nutrient content of insects as food for reptiles: a
mathematical approach. Zoo Biology 22: 147–162.
Finke, M.D. (2007). Estimate of chitin in raw whole insects. Zoo Biology 26: 105–115.
Finke, M.D. (2013). Complete nutrient content of four species of feeder insects. Zoo Biology 32: 27–36.
Finke, M.D. (2015a). Complete nutrient content of three species of wild caught insects, pallid-winged
grasshopper, rhinoceros beetles and white-lined sphinx moth. Journal of Insects as Food and Feed 1:
281–292.
Finke, M.D. (2015b). Complete nutrient content of four species of commercially available feeder
insects fed enhanced diets during growth. Zoo Biology 34: 554–564.
Finke, M.D. and Oonincx, D.G.A.B. (2017). Nutrient content of insects. In: Insects as Food and Feed
from Production to Consumption (eds. A. Van Huis and J.K. Tomberlin), 290–316. Wageningen:
Wageningen Academic Publishers.
Finke, M. and Winn, D. (2004). Insects and related arthropods: a nutritional primer for rehabilitators.
Journal of Wildlife Rehabilitation 27: 14–27.
Finke, M., Dunham, S., and Cole, J. (2004). Evaluation of various calcium-fortified high moisture
commercial products for improving the calcium content of crickets, Acheta domesticus. Journal of
Herpetological Medicine and Surgery 14: 6–9.
Finke, M., Dunham, S., and Kwabi, C. (2005). Evaluation of four dry commercial gut loading products
for improving the calcium content of crickets, Acheta domesticus. Journal of Herpetological Medicine
and Surgery 15: 7–12.
Fontaneto, D., Tommaseo-Ponzetta, M., Galli, C. et al. (2011). Differences in fatty acid composition
between aquatic and terrestrial insects used as food in human nutrition. Ecology of Food and
Nutrition 50: 351–367.
Fritsche, K. (2006). Fatty acids as modulators of the immune response. Annual Review of Nutrition 26:
45–73.
Fusté, E., Obon, E., and Olid, L. (2013). Hand-reared common swifts (Apus apus) in a wildlife
rehabilitation centre: assessment of growth rates using different diets. Journal of Zoo and Aquarium
Research 1 (2): 61–68.