Interactive Effects of Rearing Temperature and Oxygen on the Development ofDrosophila melanogaster
- 1 September 2001
- journal article
- Published by University of Chicago Press in Physiological and Biochemical Zoology
- Vol. 74 (5) , 641-650
- https://doi.org/10.1086/322172
Abstract
Although higher temperatures strongly stimulate ectothermic metabolic rates, they only slightly increase oxygen diffusion rates and decrease oxygen solubility. Consequently, we predicted that insect gas exchange systems would have more difficulty meeting tissue oxygen demands at higher temperatures. In this study, Drosophila melanogaster were reared from egg to adult in hyperoxic (40%), hypoxic (10%), and normoxic (21%) conditions and in temperatures ranging from 15 degrees -31.5 degrees C to examine the interactive effect of temperature and oxygen on development. Hyperoxia generally increased mass and growth rate at higher rearing temperatures. At lower rearing temperatures, however, hyperoxia had a very small effect on mass, did not affect growth rate, and lengthened time to eclosion. Relative to normoxia, flies reared in hypoxic conditions were generally smaller (mass and thorax length), had longer eclosion times, slower growth rates, and reduced survival. At cooler temperatures, hypoxia had relatively modest or nonsignificant effects on development, while at higher temperatures, the effects of hypoxia were large. These results suggest that higher temperatures reduce oxygen delivery capacity relative to tissue oxygen needs, which may partially explain why ectotherms are smaller when development occurs at higher temperatures.Keywords
This publication has 40 references indexed in Scilit:
- Egg-Mass Size and Cell Size: Effects of Temperature on Oxygen DistributionAmerican Zoologist, 1999
- Oxygen uptake in coprophilous beetles (Aphodius, Geotrupes, Sphaeridium) at low oxygen and high carbon dioxide concentrationsPhysiological Entomology, 1997
- On the Solutions to a Major Life-History PuzzleOikos, 1996
- Gas exchange in the insect tracheal systemJournal of Theoretical Biology, 1995
- Oceanic stable isotope composition and a scenario for the Permo‐Triassic crisisHistorical Biology, 1989
- A brachiopod calcite record of the oceanic carbon and oxygen isotope shifts at the Permian/Triassic transitionNature, 1989
- Behavioral temperature regulation by aquatic ectotherms during hypoxiaCanadian Journal of Zoology, 1988
- Mass extinction among non-marine tetrapodsNature, 1985
- Size of the Permo-Triassic Bottleneck and Its Evolutionary ImplicationsScience, 1979
- Respiration of Decapitated MosquitoesNature, 1960