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Dissection and Immunostaining of Imaginal Discs from Drosophila melanogaster
Published on: September 20, 2014
Mutations in lozenge and D-Pax2 invoke ectopic patterned cell death in the developing Drosophila eye using distinct
Nicole A Siddall1, Kristina Jackson Behan, Jennifer R Crew
1Department of Genetics, University of Melbourne, Parkville, Victoria, Australia.
Abstract:
Mutations in the lozenge gene of Drosophila melanogaster elicit a pleiotropic set of adult phenotypes, including severe compound eye perturbations resulting from the defective recruitment of photoreceptors R1/6 and R7, cone and pigment cells. In this study, we show that excessive patterned apoptosis is evident at the same developmental stage in these lozenge mutants. In lozenge null mutants, apoptosis occurs prior to lozenge-dependent cell fate specification. A second gene, D-Pax2, genetically interacts with lozenge. Interestingly, D-Pax2 mutants also exhibit increased cell death, but slightly later in development than that in lozenge mutants. Although expression of the caspase inhibitor p35 eliminates death in both lozenge and D-Pax2 mutants, the lozenge mutant eye phenotypes persist because other normal Lozenge functions are still lacking. D-Pax2 eye phenotypes, in contrast, are dramatically altered in a p35 background, because cells that normally differentiate as cone and primary pigment cells are subsequently transformed into secondary pigment cells. This study leads us to propose that Lozenge, aside from its known role in gene regulation of cell-specific transcription factors, is required to contribute to the repression of cell death mechanisms, creating a permissive environment for the survival of undifferentiated cells in early eye development. Lack of lozenge expression increases the likelihood that an undifferentiated cell will initiate its default death program and die prematurely. The ectopic cell death evident in D-Pax2 mutants appears to arise from the cell fate transformation of cone cells into secondary pigment cells, either autonomously or as a result of defective signalling.
Insights
Mutations in the lozenge gene cause excessive cell death during Drosophila eye development. Lozenge normally prevents premature cell death, ensuring proper photoreceptor and pigment cell survival.
Area of Science:
- Developmental Biology
- Genetics
- Cell Biology
Background:
- Mutations in the lozenge gene in Drosophila melanogaster lead to significant compound eye defects.
- These defects involve improper recruitment of photoreceptors (R1/6, R7) and pigment cells.
Purpose of the Study:
- To investigate the role of the lozenge gene in regulating apoptosis during Drosophila eye development.
- To explore the genetic interaction between lozenge and D-Pax2 in eye development and cell survival.
Main Methods:
- Analysis of lozenge and D-Pax2 mutant phenotypes in Drosophila melanogaster.
- Utilizing the caspase inhibitor p35 to assess the role of apoptosis in mutant phenotypes.
- Examining cell fate specification and differentiation in developing eyes.
Main Results:
- Excessive patterned apoptosis occurs in lozenge mutants before cell fate specification.
- D-Pax2 mutants also show increased cell death, but at a later developmental stage.
- Inhibiting apoptosis with p35 rescues cell death but not all eye phenotypes in lozenge mutants, while it alters D-Pax2 phenotypes by transforming cells.
Conclusions:
- Lozenge is crucial for repressing cell death mechanisms, creating a permissive environment for undifferentiated cell survival in early eye development.
- Loss of lozenge function leads to premature initiation of cell death programs.
- Ectopic cell death in D-Pax2 mutants may result from cell fate transformation or signaling defects.

