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Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
MiR-15 and miR-16 are direct transcriptional targets of E2F1 that limit E2F-induced proliferation by targeting cyclin
Matan Ofir1, Dalia Hacohen, Doron Ginsberg
1The Mina and Everard Goodman Faculty of Life Science, Bar Ilan University, Ramat Gan 52900, Israel.
Abstract:
MicroRNAs (miR) are small noncoding RNA molecules that have recently emerged as critical regulators of gene expression and are often deregulated in cancer. In particular, miRs encoded by the miR-15a, miR-16-1 cluster seem to act as tumor suppressors. Here, we evidence that the miR-15a, miR-16-1 cluster and related miR-15b, miR-16-2 cluster comprise miRs regulated by E2F1, a pivotal transcription factor that can induce both proliferation and cell death. E2F1 is a critical downstream target of the tumor suppressor retinoblastoma (RB). The RB pathway is often inactivated in human tumors resulting in deregulated E2F activity. We show that expression levels of the 4 mature miRs, miR-15a, miR-16-1 and miR-15b, miR-16-2, as well as their precursor pri-miRNAs, are elevated upon activation of ectopic E2F1. Moreover, activation of endogenous E2Fs upregulates expression of these miRs and endogenous E2F1 binds their respective promoters. Importantly, we corroborate that miR-15a/b inhibits expression of cyclin E, the latter a key direct transcriptional target of E2F pivotal for the G(1)/S transition, raising the possibility that E2F1, miR-15, and cyclin E constitute a feed-forward loop that modulates E2F activity and cell-cycle progression. In support of this, ectopic expression of miR-15 inhibits the G(1)/S transition, and, conversely, inhibition of miR-15 expression enhances E2F1-induced upregulation of cyclin E1 levels. Furthermore, inhibition of both miR-15 and miR-16 enhances E2F1-induced G(1)/S transition. In summary, our data identify the miR-15 and miR-16 families as novel transcriptional targets of E2F, which, in turn, modulates E2F activity.
Insights
MicroRNAs (miRs) miR-15 and miR-16 act as tumor suppressors. E2F1 transcription factor regulates these miRs, forming a feedback loop that controls cell-cycle progression and impacts cancer development.
Area of Science:
- Molecular Biology
- Cancer Research
- Gene Regulation
Background:
- MicroRNAs (miRs) are key gene expression regulators frequently altered in cancer.
- The miR-15/16 family, including miR-15a/16-1 and miR-15b/16-2 clusters, are implicated as tumor suppressors.
- The retinoblastoma (RB) pathway, crucial for cell-cycle control, is often inactivated in tumors, leading to dysregulated E2F activity.
Purpose of the Study:
- To investigate the regulatory relationship between the transcription factor E2F1 and the miR-15/16 family.
- To elucidate the role of E2F1-regulated miRs in cell-cycle progression and their potential involvement in a feedback loop with E2F1 targets.
Main Methods:
- Analysis of miR and pri-miRNA expression levels upon ectopic and endogenous E2F1 activation.
- Chromatin immunoprecipitation (ChIP) to assess E2F1 binding to miR promoters.
- Experimental validation of miR-15/16 targeting of Cyclin E and assessment of cell-cycle progression under various miR and E2F1 expression conditions.
Main Results:
- Ectopic and endogenous E2F1 activation led to increased expression of miR-15a, miR-16-1, miR-15b, and miR-16-2.
- Endogenous E2F1 was shown to bind to the promoters of these miRs.
- miR-15 was confirmed to inhibit Cyclin E expression, a direct E2F1 target, suggesting a feed-forward loop. Inhibition of miR-15/16 enhanced E2F1-induced cell-cycle progression.
Conclusions:
- The miR-15 and miR-16 families are novel transcriptional targets of E2F1.
- E2F1-mediated regulation of miR-15/16 creates a feedback loop influencing E2F1 activity and cell-cycle progression.
- These findings highlight a new regulatory mechanism in cancer involving E2F1 and tumor-suppressive miRs.
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