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Abstract 


Polytene section 17 of the X chromosome of Drosophila melanogaster, previously known to contain six putative lethal complementation groups important in oogenesis and embryogenesis, has here been further characterized genetically and developmentally. We constructed fcl+Y, a duplication of this region, which allowed us to conduct mutagenesis screens specific for the region and to perform complementation analyses (previously not possible). We recovered 67 new lethal mutations which defined 15 complementation groups within Df(1)N19 which deletes most of polytene section 17. The zygotic lethal phenotypes of these and preexisting mutations within polytene section 17 were examined, and their maternal requirements were analysed in homozygous germline clones using the dominant female sterile technique. We present evidence that an additional gene, which produces two developmentally regulated transcripts, is located in this region and is involved in embryogenesis, although no mutations in this gene were identified. In this interval of 37 to 43 polytene chromosome bands we have defined 17 genes, 12 (71%) of which are of significance to oogenesis or embryogenesis.

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Genetics. 1992 Mar; 130(3): 569–583.
PMCID: PMC1204874
PMID: 1551578

Genetic and Developmental Analysis of Polytene Section 17 of the X Chromosome of Drosophila Melanogaster

Abstract

Polytene section 17 of the X chromosome of Drosophila melanogaster, previously known to contain six putative lethal complementation groups important in oogenesis and embryogenesis, has here been further characterized genetically and developmentally. We constructed fcl(+)Y, a duplication of this region, which allowed us to conduct mutagenesis screens specific for the region and to perform complementation analyses (previously not possible). We recovered 67 new lethal mutations which defined 15 complementation groups within Df(1)N19 which deletes most of polytene section 17. The zygotic lethal phenotypes of these and preexisting mutations within polytene section 17 were examined, and their maternal requirements were analysed in homozygous germline clones using the dominant female sterile technique. We present evidence that an additional gene, which produces two developmentally regulated transcripts, is located in this region and is involved in embryogenesis, although no mutations in this gene were identified. In this interval of 37 to 43 polytene chromosome bands we have defined 17 genes, 12 (71%) of which are of significance to oogenesis or embryogenesis.

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Selected References

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  • Busson D, Gans M, Komitopoulou K, Masson M. Genetic Analysis of Three Dominant Female-Sterile Mutations Located on the X Chromosome of DROSOPHILA MELANOGASTER. Genetics. 1983 Oct;105(2):309–325. [Europe PMC free article] [Abstract] [Google Scholar]
  • COUNCE SJ. Studies on female-sterility genes in Drosophila melanogaster. II. The effects of the gene fused on embryonic development. Z Indukt Abstamm Vererbungsl. 1956;87(3):462–481. [Abstract] [Google Scholar]
  • Dura JM, Randsholt NB, Deatrick J, Erk I, Santamaria P, Freeman JD, Freeman SJ, Weddell D, Brock HW. A complex genetic locus, polyhomeotic, is required for segmental specification and epidermal development in D. melanogaster. Cell. 1987 Dec 4;51(5):829–839. [Abstract] [Google Scholar]
  • Eberl DF, Hilliker AJ. Characterization of X-linked recessive lethal mutations affecting embryonic morphogenesis in Drosophila melanogaster. Genetics. 1988 Jan;118(1):109–120. [Europe PMC free article] [Abstract] [Google Scholar]
  • Elkins T, Zinn K, McAllister L, Hoffmann FM, Goodman CS. Genetic analysis of a Drosophila neural cell adhesion molecule: interaction of fasciclin I and Abelson tyrosine kinase mutations. Cell. 1990 Feb 23;60(4):565–575. [Abstract] [Google Scholar]
  • Feinberg AP, Vogelstein B. A technique for radiolabeling DNA restriction endonuclease fragments to high specific activity. Anal Biochem. 1983 Jul 1;132(1):6–13. [Abstract] [Google Scholar]
  • Ferrús A, Llamazares S, de la Pompa JL, Tanouye MA, Pongs O. Genetic analysis of the Shaker gene complex of Drosophila melanogaster. Genetics. 1990 Jun;125(2):383–398. [Europe PMC free article] [Abstract] [Google Scholar]
  • Judd BH, Shen MW, Kaufman TC. The anatomy and function of a segment of the X chromosome of Drosophila melanogaster. Genetics. 1972 May;71(1):139–156. [Europe PMC free article] [Abstract] [Google Scholar]
  • Knust E, Dietrich U, Tepass U, Bremer KA, Weigel D, Vässin H, Campos-Ortega JA. EGF homologous sequences encoded in the genome of Drosophila melanogaster, and their relation to neurogenic genes. EMBO J. 1987 Mar;6(3):761–766. [Europe PMC free article] [Abstract] [Google Scholar]
  • Komitopoulou K, Gans M, Margaritis LH, Kafatos FC, Masson M. Isolation and Characterization of Sex-Linked Female-Sterile Mutants in DROSOPHILA MELANOGASTER with Special Attention to Eggshell Mutants. Genetics. 1983 Dec;105(4):897–920. [Europe PMC free article] [Abstract] [Google Scholar]
  • Mariol MC, Preat T, Limbourg-Bouchon B. Molecular cloning of fused, a gene required for normal segmentation in the Drosophila melanogaster embryo. Mol Cell Biol. 1987 Sep;7(9):3244–3251. [Europe PMC free article] [Abstract] [Google Scholar]
  • Mattox WW, Davidson N. Isolation and characterization of the Beadex locus of Drosophila melanogaster: a putative cis-acting negative regulatory element for the heldup-a gene. Mol Cell Biol. 1984 Jul;4(7):1343–1353. [Europe PMC free article] [Abstract] [Google Scholar]
  • Ng SC, Perkins LA, Conboy G, Perrimon N, Fishman MC. A Drosophila gene expressed in the embryonic CNS shares one conserved domain with the mammalian GAP-43. Development. 1989 Mar;105(3):629–638. [Abstract] [Google Scholar]
  • Perrimon N. Clonal Analysis of Dominant Female-Sterile, Germline-Dependent Mutations in DROSOPHILA MELANOGASTER. Genetics. 1984 Dec;108(4):927–939. [Europe PMC free article] [Abstract] [Google Scholar]
  • Perrimon N, Engstrom L, Mahowald AP. Zygotic lethals with specific maternal effect phenotypes in Drosophila melanogaster. I. Loci on the X chromosome. Genetics. 1989 Feb;121(2):333–352. [Europe PMC free article] [Abstract] [Google Scholar]
  • Perrimon N, Mohler D, Engstrom L, Mahowald AP. X-linked female-sterile loci in Drosophila melanogaster. Genetics. 1986 Jul;113(3):695–712. [Europe PMC free article] [Abstract] [Google Scholar]
  • Préat T, Thérond P, Lamour-Isnard C, Limbourg-Bouchon B, Tricoire H, Erk I, Mariol MC, Busson D. A putative serine/threonine protein kinase encoded by the segment-polarity fused gene of Drosophila. Nature. 1990 Sep 6;347(6288):87–89. [Abstract] [Google Scholar]
  • Smouse D, Perrimon N. Genetic dissection of a complex neurological mutant, polyhomeotic, in Drosophila. Dev Biol. 1990 May;139(1):169–185. [Abstract] [Google Scholar]
  • Sturtevant AH, Beadle GW. The Relations of Inversions in the X Chromosome of Drosophila Melanogaster to Crossing over and Disjunction. Genetics. 1936 Sep;21(5):554–604. [Europe PMC free article] [Abstract] [Google Scholar]
  • Tanouye MA, Ferrus A, Fujita SC. Abnormal action potentials associated with the Shaker complex locus of Drosophila. Proc Natl Acad Sci U S A. 1981 Oct;78(10):6548–6552. [Europe PMC free article] [Abstract] [Google Scholar]
  • Tautz D, Pfeifle C. A non-radioactive in situ hybridization method for the localization of specific RNAs in Drosophila embryos reveals translational control of the segmentation gene hunchback. Chromosoma. 1989 Aug;98(2):81–85. [Abstract] [Google Scholar]
  • Thummel CS, Boulet AM, Lipshitz HD. Vectors for Drosophila P-element-mediated transformation and tissue culture transfection. Gene. 1988 Dec 30;74(2):445–456. [Abstract] [Google Scholar]

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