THE EFFECTS OF ATMOSPHERIC PRESSURE AND COMPOSITION ON THE FLIGHT OF DROSOPHILA
- 1 October 1949
- journal article
- research article
- Published by University of Chicago Press in The Biological Bulletin
- Vol. 97 (2) , 115-137
- https://doi.org/10.2307/1538291
Abstract
Wingbeat frequency of P. repleta was measured stroboscopically at 25[degree]C as a function of atmospheric pressure, over the range from 100 mm. Hg to 3860 mm. Hg in air, in nitrogen-oxygen mixtures containing either more or less oxygen than air, and in 2 helium-oxygen mixtures. Similar measurements were made with D. virilis at 19.3[degree]C and 25.9oC in air over the pressure range from 100 mm. Hg to 1520 mm. Hg; and at 760 mm. Hg, 25.9[degree]C, in a mixture of 6.1% oxygen in nitrogen. The flight response was inhibited when total pressure was less than 80 to 100 mm. Hg, or when the oxygen tension was less than 15-20 mm. Hg. Increasing the partial pressure of oxygen above the value for air did not increase the rate of wingbeat. Within the limits of exptl. error, the rate was found equal at equal densities, irrespective of the medium in which it was measured. Wingbeat frequency is therefore independent of total pressure as such, and varies inversely in a logarithmic relationship with the density. The exponents measured for this relationship varied with different individuals between -0.03 and -0.15, approximately. The helium-oxygen mixtures had a detrimental effect on the response of the insects, which was less evident at higher pressures and reversed when the specimens were returned to air. Amputation of the halteres did not disturb the relationship between wingbeat frequency and density. Clipping portions from the wingtips increased the frequency of wingbeat. When only one wing was clipped, the increase was less than when both were shortened by equal amount. Oxygen consumption of D. virilis was measured during flight in an oxygen atmosphere at 19.3[degree]C, at 760 mm. Hg, 400 mm. Hg and 200 mm. Hg and was found to be relatively unaffected by variation in density. Since wingbeat frequency varied less rapidly with changes in density than would be expected if both power output and stroke volume were to remain constant, it is reasoned that partial compensation is effected through adjustments in stroke volume. A decrease in stroke amplitude can increase enough at lower densities to account for the stroke volume required. Arguments are given to show that the remaining compensation needed may be furnished by lateration within reasonable limits of the angle of attack. It is concluded that insect flight exhibits homeostatic characteristics, in that the strain which results from density change is distributed over several elements in the wing motion.Keywords
This publication has 6 references indexed in Scilit:
- The gyroscopic mechanism of the halteres of DipteraPhilosophical Transactions Of The Royal Society B-Biological Sciences, 1948
- THE RESPIRATORY QUOTIENT OF DROSOPHILA IN FLIGHTThe Biological Bulletin, 1947
- Physiological Effects of Genes: The Flight of Drosophila Considered in Relation to Gene MutationsThe American Naturalist, 1944
- THE UTILIZATION OF GLYCOGEN BY FLIES DURING FLIGHT AND SOME ASPECTS OF THE PHYSIOLOGICAL AGEING OF DROSOPHILAThe Biological Bulletin, 1943
- FREQUENCY OF WING-BEAT AS A CHARACTER FOR SEPARATING SPECIES RACES AND GEOGRAPHIC VARIETIES OF DROSOPHILAGenetics, 1942
- Human physiology under high pressure: I. Effects of Nitrogen, Carbon dioxide, and ColdEpidemiology and Infection, 1941