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Published on: August 18, 2018
Rapamycin selectively reduces the association of transcripts containing complex 5' UTRs with ribosomes in C4-2B
Lynn M Opdenaker1, Mary C Farach-Carson
1Department of Biological Sciences, University of Delaware, Newark, Delaware 19716, USA.
Abstract:
mTOR pathway inhibitors, specifically rapamycin and its derivatives, are promising therapeutics that targets downstream pathways including protein translation. We examined the effects of a series of inhibitors targeting various pathways on ribosomal polysome distribution, overall translation rates, and translation of specific mRNAs in the bone derived prostate cancer cell line, C4-2B. Treatment with either rapamycin, PD98059 or LY294002 failed to change the distribution of polysomes in sucrose gradients. Although no change in the accumulation of heavy polysomes was observed, there was an overall decrease in the rate of translation caused by treatment with rapamycin or LY294002. Inhibiting the MAPK pathway with PD98059 decreased overall translation by 20%, but had no effect on mRNAs containing a 5' terminal oligopyrimidine tract (TOP) sequences or those with complex 5' UTRs. In contrast, treatment with rapamycin for 24 h reduced overall translation by approximately 45% and affected the translation of mRNAs with complex 5' UTRs, specifically VEGF and HIF1alpha. After 24 h, LY294002 treatment alone decreased overall translation by 60%, more than was observed with rapamycin. Although LY294002 and similar inhibitors are effective at blocking prostate cancer cell growth, they act upstream of AKT and PTEN and cancer cells can find a way to bypass this inhibition. Thus, we propose that inhibiting downstream targets such as mTOR or targets of mTOR will provide rational approaches to developing new combination therapies focused on reducing growth of prostate cancer after arrival in the bone environment.
Insights
mTOR pathway inhibitors like rapamycin and LY294002 reduce protein translation rates in prostate cancer cells. Targeting downstream pathways, such as mTOR, offers a rational approach for new combination therapies against bone metastasis.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Prostate cancer bone metastasis is a significant clinical challenge.
- mTOR pathway inhibitors show promise for cancer therapeutics.
- Understanding translation regulation is key to developing effective treatments.
Purpose of the Study:
- To investigate the effects of various pathway inhibitors on protein translation in prostate cancer cells.
- To evaluate the impact of mTOR, MAPK, and PI3K/Akt pathway inhibitors on mRNA translation.
- To identify rational targets for combination therapies against prostate cancer bone metastasis.
Main Methods:
- Utilized the C4-2B prostate cancer cell line.
- Administered rapamycin (mTOR inhibitor), PD98059 (MAPK inhibitor), and LY294002 (PI3K/Akt inhibitor).
- Assessed ribosomal polysome distribution, overall translation rates, and specific mRNA translation via sucrose gradient analysis.
Main Results:
- Rapamycin and LY294002 decreased overall translation rates; PD98059 showed a modest decrease.
- Rapamycin selectively affected translation of mRNAs with complex 5' UTRs (VEGF, HIF1alpha).
- LY294002 demonstrated the most significant reduction in overall translation (60%).
Conclusions:
- Inhibitors targeting upstream pathways like PI3K/Akt may be bypassed by cancer cells.
- Targeting downstream effectors, such as mTOR or its downstream targets, presents a rational strategy.
- Combination therapies inhibiting downstream pathways could reduce prostate cancer growth in bone.
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