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Published on: May 1, 2020
Rapamycin inhibits hTERT telomerase mRNA expression, independent of cell cycle arrest
Victoria L Bae-Jump1, Chunxiao Zhou, Paola A Gehrig
1Division of Gynecologic Oncology, Department of Obstetrics and Gynecology, Lineberger Comprehensive Cancer Center, University of North Carolina at Chapel Hill, CB# 7570, Chapel Hill, NC 27599, USA.
Objectives:
Rapamycin and its analogues have been shown to be promising as anti-neoplastic agents but have not been extensively studied in gynecologic malignancies. Our goal was to examine the ability of rapamycin to suppress growth and regulate telomerase activity in cervical and ovarian cancer cell lines.
Methods:
Cell proliferation was assessed after exposure to rapamycin. Cell cycle progression was determined by flow cytometry, and apoptosis was evaluated by DNA fragmentation. hTERT mRNA levels were quantified by real-time RT-PCR. Western blot analysis was performed to assess PTEN status, phosphorylated S6 and total S6 expression.
Results:
Rapamycin inhibited growth of all the cervical cancer cell lines and 3 of the 4 ovarian cancer cell lines in a dose-dependent manner with IC50 values <50 nM. Loss of PTEN protein expression was seen in only one of the cervical cancer cell lines. Rapamycin induced G1 arrest in those cell lines sensitive to its growth inhibitory effects. In all cell lines, rapamycin rapidly inhibited phosphorylation of S6 and resulted in decreased levels of total S6 protein. Treatment with rapamycin reduced hTERT mRNA expression in both rapamycin-sensitive and -resistant cell lines within 24 h. Thus, the effect of rapamycin on hTERT expression was not dependent on its ability to induce G1 cell cycle arrest.
Conclusions:
Our data suggest that rapamycin may potentially exert its anti-tumor effects through two independent pathways by G1 cell cycle arrest as well as suppression of telomerase activity by inhibition of hTERT mRNA transcription.
Insights
Rapamycin effectively inhibited cervical and ovarian cancer cell growth by inducing cell cycle arrest and suppressing telomerase activity through reduced human telomerase reverse transcriptase (hTERT) mRNA transcription.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Rapamycin and analogues show anti-neoplastic potential but lack extensive study in gynecologic cancers.
- Investigating rapamycin's effects on cervical and ovarian cancer cell lines is crucial.
Purpose of the Study:
- To evaluate rapamycin's efficacy in suppressing growth of cervical and ovarian cancer cell lines.
- To determine rapamycin's impact on telomerase activity regulation in these cell lines.
Main Methods:
- Cell proliferation, cell cycle progression (flow cytometry), and apoptosis (DNA fragmentation) were assessed post-rapamycin exposure.
- Human telomerase reverse transcriptase (hTERT) mRNA levels were quantified via real-time RT-PCR.
- PTEN status and S6 phosphorylation/expression were analyzed using Western blot.
Main Results:
- Rapamycin inhibited growth in most cervical and ovarian cancer cell lines (IC50 <50 nM) and induced G1 arrest in sensitive lines.
- Rapamycin rapidly reduced S6 phosphorylation and total S6 protein levels across all cell lines.
- hTERT mRNA expression decreased within 24h in both sensitive and resistant cell lines, independent of G1 arrest.
Conclusions:
- Rapamycin may exert anti-tumor effects via two independent pathways: G1 cell cycle arrest and telomerase activity suppression.
- Inhibition of hTERT mRNA transcription is a key mechanism for rapamycin's anti-telomerase effects.
- Rapamycin demonstrates potential as a therapeutic agent for gynecologic malignancies.
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