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Genetic analysis of Drosophila virilis sex pheromone: genetic mapping of the locus producing Z-(ll)-pentacosene

Published online by Cambridge University Press:  14 April 2009

Motomichi Doi*
Affiliation:
Institute of Biological Sciences, University of Tsukuba, 1-1-1, Tsukuba, Ibaraki 305, Japan
Masatoshi Tomaru
Affiliation:
Institute of Biological Sciences, University of Tsukuba, 1-1-1, Tsukuba, Ibaraki 305, Japan
Kiyo Yamanoi
Affiliation:
Institute of Biological Sciences, University of Tsukuba, 1-1-1, Tsukuba, Ibaraki 305, Japan
Yuzuru Oguma
Affiliation:
Institute of Biological Sciences, University of Tsukuba, 1-1-1, Tsukuba, Ibaraki 305, Japan
*
* Corresponding author.
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Z-(ll)-pentacosene, Drosophila virilis sex pheromone, is predominant among the female cuticular hydrocarbons and can elicit male courtship behaviours. To evaluate the genetic basis of its production, interspecific crosses between D. novamexicana and genetically marked D. virilis were made and hydrocarbon profiles of their backcross progeny were analysed. The production of Z-(ll)-pentacosene was autosomally controlled and was recessive. Of the six D. virilis chromosomes only the second and the third chromosomes showed significant contributions to sex pheromone production, and acted additively. Analysis of recombinant females indicated that the locus on the second chromosome mapped to the proximity of position 2–218.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1996

References

Alexander, M. L. (1979). The genetics of Drosophila virilis. In The Genetics and Biology of Drosophila, vol. 1c (ed. Ashburner, M. and Novitski, E.), pp. 1365–427. London: Academic Press.Google Scholar
Antony, C. & Jallon, J.-M. (1982). The chemical basis for sex recognition in Drosophila melanogaster. Journal of Insect Physiology 28, 873880.CrossRefGoogle Scholar
Antony, C., Davis, T. L., Carlson, D. A., Pechine, J.-M. & Jallon, J.-M. (1985). Compared behavioral responses of male Drosophila melanogaster (Canton S) to natural and synthetic aphrodisiacs. Journal of Chemical Ecology 11, 16171629.CrossRefGoogle Scholar
Bartelt, R. J., Armold, M. T., Schaner, A. M. & Jackson, L. L. (1986). Comparative analysis of cuticular hydrocarbons in the Drosophila virilis species group. Comparative Biochemical Physiology 83B, 731742.Google Scholar
Cobb, M. & Jallon, J.-M. (1990). Pheromones, mate recognition and courtship stimulation in the Drosophila melanogaster species sub-group. Animal Behaviour 39, 10581067.CrossRefGoogle Scholar
Coyne, J. A., Crittenden, A. P. & Mah, K. (1994). Genetics of a pheromonal difference contributing to reproductive isolation in Drosophila. Science 265, 14611464.CrossRefGoogle ScholarPubMed
Ferveur, J.-F. (1991). Genetic control of pheromones in Drosophila simulans. I. Ngbo, a locus on the second chromosome. Genetics 128, 293301.CrossRefGoogle Scholar
Ferveur, J.-F. & Jallon, J.-M. (1993). Genetic control of pheromones in Drosophila.simulans. II. kete, a locus on the X chromosome. Genetics 133, 561567.CrossRefGoogle ScholarPubMed
Gubenko, I. S. & Evgen'ev, M. B. (1984). Cytological and linkage maps of Drosophila virilis chromosome. Genetica 64, 127139.CrossRefGoogle Scholar
Jackson, L. L. & Bartelt, R. J. (1986). Cuticular hydrocarbons of Drosophila virilis: comparison by age and sex. Insect Biochemistry 16, 433439.CrossRefGoogle Scholar
Jallon, J.-M. (1984). A few chemical words exchanged by Drosophila during courtship and mating. Behavior Genetics 14, 441478.CrossRefGoogle ScholarPubMed
Lofstedt, C. & Van Der Pers, N. C. (1985). Sex pheromones and reproductive isolation in four European small ermine moths. Journal of Chemical Ecology 11, 649666.CrossRefGoogle ScholarPubMed
Nemoto, T., Doi, M., Oshio, K., Matsubayashi, H., Oguma, Y., Suzuki, T. & Kuwahara, Y. (1994). (Z, Z)-5, 27-Tritriacontadiene: major sex pheromone of Drosophila pallidosa (Diptera; Drosophilidae). Journal of Chemical Ecology 20, 30293037.CrossRefGoogle Scholar
Oguma, Y., Nemoto, T. & Kuwahara, Y. (1992). (Z)-ll-Pentacosene is the major sex pheromone component in Drosophila.virilis (Diptera). Chemoecology 3, 6064.CrossRefGoogle Scholar
Roitberg, B. D. & Isman, M. B. (1992). Insect Chemical Ecology. New York: Chapman & Hall.Google Scholar
Scott, D. & Richmond, R. (1988). A genetic analysis of male-predominant pheromones in Drosophila melanogaster. Genetics 119, 639646.CrossRefGoogle ScholarPubMed
Spicer, G. S. (1991). The genetic basis of a species-specific character in the Drosophila virilis species group. Genetics 128, 331337.CrossRefGoogle ScholarPubMed
Spicer, G. S. (1992). Reevaluation of the phylogeny of the Drosophila virilis species group (Diptera: Drosphilidae). Annals of the Entomological Society of America 85, 1125.CrossRefGoogle Scholar
Throckmorton, L. H. (1982). The virilis species group. In The Genetics and Biology of Drosophila, Vol. 3b (ed. Ashburner, M. & Carson, H.L.), pp. 227296. London: Academic Press.Google Scholar
Zar, J. H. (1984). Biostatistical Analysis, 2nd edn. New Jersey: Prentice-Hall.Google Scholar