A basic mystery in developmental biology is how genes function to organize the growth and patterning of the developing embryo. In the fruit fly, Drosophila, genes have been identified which appear to function as developmental switches. Cells which would normally follow one developmental pathway can be switched to another by mutations in the regulatory genes. A cluster of such genes, the Antennapedia Complex (ANT-C), has been extensively studied using genetic and molecular approaches. The proposed research is directed at understanding, at the molecular level, how the genes function to control development. Within the ANT-C are several homoeotic genes in which mutations cause altered cell fates. Mutations in the Antp gene, for example, can cause legs to develop where antennae would normally be. The ANT-C also includes the segmentation gene ftz, in which mutations cause embryos to develop with half the normal number of body segments. The project is focused on Antp, ftz, and another homoeotic gene, Ser.
The specific aims are: 1) To further characterize the structure of the three genes in their wild type and mutant forms, especially to understand how the genes are expressed at the right positions and times in the embryo. 2) To determine the molecular functions of the protein products of the genes, in order to understand the basis of regulatory properties of the genes. and 3) To study the interactions between the ANT-C genes and other genes involved in controlling development. Each of the three genes contains a """"""""homoeobox"""""""", a 180 bp DNA sequence encoding a highly conserved 60 amino acid protein domain, which is hypothesized to be involved in sequence-specific DNA binding. Since homoeoboxes are present in higher vertebrates, including humans, studies of the molecular functions of the ANT-C genes may provide information relevant to human early development.

Agency
National Institute of Health (NIH)
Institute
Eunice Kennedy Shriver National Institute of Child Health & Human Development (NICHD)
Type
Research Project (R01)
Project #
5R01HD018163-09
Application #
3315155
Study Section
Genetics Study Section (GEN)
Project Start
1983-09-01
Project End
1991-11-30
Budget Start
1990-12-01
Budget End
1991-11-30
Support Year
9
Fiscal Year
1991
Total Cost
Indirect Cost
Name
Stanford University
Department
Type
Schools of Medicine
DUNS #
800771545
City
Stanford
State
CA
Country
United States
Zip Code
94305
Core, N; Charroux, B; McCormick, A et al. (1997) Transcriptional regulation of the Drosophila homeotic gene teashirt by the homeodomain protein Fushi tarazu. Mech Dev 68:157-72
Manak, J R; Mathies, L D; Scott, M P (1994) Regulation of a decapentaplegic midgut enhancer by homeotic proteins. Development 120:3605-19
Andrew, D J; Horner, M A; Petitt, M G et al. (1994) Setting limits on homeotic gene function: restraint of Sex combs reduced activity by teashirt and other homeotic genes. EMBO J 13:1132-44
Mathies, L D; Kerridge, S; Scott, M P (1994) Role of the teashirt gene in Drosophila midgut morphogenesis: secreted proteins mediate the action of homeotic genes. Development 120:2799-809
Winslow, G M; Carroll, S B; Scott, M P (1988) Maternal-effect genes that alter the fate map of the Drosophila blastoderm embryo. Dev Biol 129:72-83
Scott, M P; Carroll, S B (1987) The segmentation and homeotic gene network in early Drosophila development. Cell 51:689-98
Carroll, S B; Winslow, G M; Twombly, V J et al. (1987) Genes that control dorsoventral polarity affect gene expression along the anteroposterior axis of the Drosophila embryo. Development 99:327-32
Carroll, S B; Winslow, G M; Schupbach, T et al. (1986) Maternal control of Drosophila segmentation gene expression. Nature 323:278-80
Carroll, S B; Laymon, R A; McCutcheon, M A et al. (1986) The localization and regulation of Antennapedia protein expression in Drosophila embryos. Cell 47:113-22
Laughon, A; Boulet, A M; Bermingham Jr, J R et al. (1986) Structure of transcripts from the homeotic Antennapedia gene of Drosophila melanogaster: two promoters control the major protein-coding region. Mol Cell Biol 6:4676-89

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