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Published on: August 21, 2021
In vivo regulation of E2F1 by Polycomb group genes in Drosophila
Jun-Yuan Ji1, Wayne O Miles, Michael Korenjak
1Department of Molecular and Cellular Medicine, College of Medicine, Texas A&M Health Science Center, College Station, Texas 77843-1114, USA. ji@medicine.tamhsc.edu
Abstract:
The E2F transcription factors are important regulators of the cell cycle whose function is commonly misregulated in cancer. To identify novel regulators of E2F1 activity in vivo, we used Drosophila to conduct genetic screens. For this, we generated transgenic lines that allow the tissue-specific depletion of dE2F1 by RNAi. Expression of these transgenes using Gal4 drivers in the eyes and wings generated reliable and modifiable phenotypes. We then conducted genetic screens testing the capacity of Exelixis deficiencies to modify these E2F1-RNAi phenotypes. From these screens, we identified mutant alleles of Suppressor of zeste 2 [Su(z)2] and multiple Polycomb group genes as strong suppressors of the E2F1-RNA interference phenotypes. In validation of our genetic data, we find that depleting Su(z)2 in cultured Drosophila cells restores the cell-proliferation defects caused by reduction of dE2F1 by elevating the level of dE2f1. Furthermore, analyses of methylation status of histone H3 lysine 27 (H3K27me) from the published modENCODE data sets suggest that the genomic regions harboring dE2f1 gene and certain dE2f1 target genes display H3K27me during development and in several Drosophila cell lines. These in vivo observations suggest that the Polycomb group may regulate cell proliferation by repressing the transcription of dE2f1 and certain dE2F1 target genes. This mechanism may play an important role in coordinating cellular differentiation and proliferation during Drosophila development.
Insights
Researchers identified novel regulators of E2F1, crucial for cell cycle control, using Drosophila genetic screens. They found that Polycomb group genes, including Suppressor of zeste 2, regulate cell proliferation by controlling E2F1 transcription.
Area of Science:
- Cell Biology
- Genetics
- Developmental Biology
Background:
- E2F transcription factors are key cell cycle regulators frequently dysregulated in cancer.
- Understanding novel regulators of E2F1 is crucial for cancer research and developmental biology.
Purpose of the Study:
- To identify novel in vivo regulators of E2F1 activity using Drosophila genetic screens.
- To investigate the role of Polycomb group genes in regulating cell proliferation via E2F1.
Main Methods:
- Generated transgenic Drosophila lines for tissue-specific depletion of dE2F1 via RNA interference (RNAi).
- Conducted genetic screens using Exelixis deficiencies to identify modifiers of E2F1-RNAi phenotypes.
- Validated findings in cultured Drosophila cells and analyzed histone modification data (H3K27me).
Main Results:
- Identified Suppressor of zeste 2 [Su(z)2] and Polycomb group genes as strong suppressors of E2F1-RNAi phenotypes.
- Depletion of Su(z)2 in cultured cells restored cell proliferation defects caused by dE2F1 reduction.
- Genomic regions of dE2f1 and its target genes show H3K27me, suggesting Polycomb group repression.
Conclusions:
- Polycomb group genes likely regulate cell proliferation by repressing dE2F1 and its target gene transcription.
- This mechanism is potentially important for coordinating cell differentiation and proliferation during Drosophila development.
- Findings provide insights into E2F1 regulation and its role in developmental processes.
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