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Published on: March 15, 2019
Dominant suppressor genes of p53-induced apoptosis in Drosophila melanogaster
Tamás Szlanka1,2,3, Tamás Lukacsovich4, Éva Bálint1,3
1Institute of Biochemistry, HUN-REN Biological Research Centre, 6726 Szeged, Hungary.
Abstract:
One of the major functions of programmed cell death (apoptosis) is the removal of cells that suffered oncogenic mutations, thereby preventing cancerous transformation. By making use of a Double-Headed-EP (DEP) transposon, a P element derivative made in our laboratory, we made an insertional mutagenesis screen in Drosophila melanogaster to identify genes that, when overexpressed, suppress the p53-activated apoptosis. The DEP element has Gal4-activatable, outward-directed UAS promoters at both ends, which can be deleted separately in vivo. In the DEP insertion mutants, we used the GMR-Gal4 driver to induce transcription from both UAS promoters and tested the suppression effect on the apoptotic rough eye phenotype generated by an activated UAS-p53 transgene. By DEP insertions, 7 genes were identified, which suppressed the p53-induced apoptosis. In 4 mutants, the suppression effect resulted from single genes activated by 1 UAS promoter (Pka-R2, Rga, crol, and Spt5). In the other 3 (Orct2, Polr2M, and stg), deleting either UAS promoter eliminated the suppression effect. In qPCR experiments, we found that the genes in the vicinity of the DEP insertion also showed an elevated expression level. This suggested an additive effect of the nearby genes on suppressing apoptosis. In the eukaryotic genomes, there are coexpressed gene clusters. Three of the DEP insertion mutants are included, and 2 are in close vicinity of separate coexpressed gene clusters. This raises the possibility that the activity of some of the genes in these clusters may help the suppression of the apoptotic cell death.
Insights
Researchers identified seven genes that suppress programmed cell death (apoptosis) in Drosophila, a key process for preventing cancer. This discovery offers new insights into apoptosis regulation and potential cancer therapies.
Area of Science:
- Genetics
- Molecular Biology
- Developmental Biology
Background:
- Programmed cell death (apoptosis) is crucial for eliminating oncogenic cells and preventing cancer.
- Understanding the genetic regulation of apoptosis is vital for developing cancer therapies.
Purpose of the Study:
- To identify genes that suppress p53-activated apoptosis using insertional mutagenesis in Drosophila melanogaster.
- To investigate the role of gene clusters in apoptosis suppression.
Main Methods:
- Utilized a Double-Headed-EP (DEP) transposon for insertional mutagenesis in Drosophila.
- Employed the GMR-Gal4 driver to induce gene expression and assess suppression of the apoptotic rough eye phenotype.
- Performed qPCR to analyze gene expression levels in DEP insertion mutants.
Main Results:
- Identified seven genes that suppress p53-induced apoptosis.
- Four mutants showed suppression by single genes (Pka-R2, Rga, crol, Spt5).
- Three mutants (Orct2, Polr2M, stg) exhibited suppression dependent on both DEP promoters, suggesting complex regulation.
- Elevated expression of nearby genes was observed, indicating potential additive effects and involvement of coexpressed gene clusters.
Conclusions:
- Discovered novel genes involved in suppressing apoptosis, highlighting their role in preventing oncogenic transformation.
- Suggests that coexpressed gene clusters may play a significant role in regulating apoptotic cell death.
- Provides a foundation for further research into apoptosis regulation and potential therapeutic targets for cancer.
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