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Retinyl methyl ether down-regulates activator protein 1 transcriptional activation in breast cancer cells
A Agadir1, Y F Shealy, D L Hill
1The Burnham Institute, La Jolla Cancer Research Center, California 92037, USA.
Abstract:
Retinyl methyl ether (RME) is known to prevent the development of mammary cancer. However, the mechanism by which RME exerts its anticancer effect is presently unclear. The diverse biological functions of retinoids, the vitamin A derivatives, are mainly mediated by their nuclear receptors, retinoic acid receptors (RARs) and retinoid X receptors (RXRs). RARs and RXRs are ligand-dependent transcriptional factors that either activate gene transcription through their binding to retinoic acid response elements or repress transactivation of genes containing the activator protein 1 (AP-1) binding site. Previous studies demonstrated that RME can modulate transcriptional activity of retinoid receptors on retinoic acid response elements, suggesting that regulation of retinoid receptor activity may mediate the anticancer effect of RME. In this study, we present evidence that RME can down-regulate AP-1 activity induced by the tumor promoter 12-O-tetradecanoylphorbol-13-acetate, insulin, growth factors, and the nuclear proto-oncogenes c-Jun and c-Fos. Transient transfection assays demonstrate that inhibition of AP-1 activity occurs on the human collagenase promoter containing an AP-1 binding site or the thymidine kinase promoter linked with an AP-1 binding site. In HeLa cells, the inhibition is observed when RAR-alpha and/or RXR-alpha but not RAR-beta or RAR-gamma expression vectors are cotransfected, whereas the endogenous retinoid receptors in breast cancer cells T-47D and ZR-75-1 were sufficient to confer the inhibition by RME. Furthermore, using gel retardation assay, we show that 12-O-tetradecanoylphorbol-13-acetate- and epidermal growth factor-induced AP-1 binding activity in breast cancer cells is inhibited by RME. These results suggest that one of the mechanisms by which RME prevents cancer development may be due to the repression of AP-1-responsive genes.
Insights
Retinyl methyl ether (RME) prevents mammary cancer by down-regulating activator protein 1 (AP-1) activity. This mechanism involves retinoid receptors, suggesting RME
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Signaling
Background:
- Retinyl methyl ether (RME) is recognized for its role in preventing mammary cancer.
- The precise mechanism underlying RME's anticancer effects remains largely undetermined.
- Retinoids, vitamin A derivatives, exert biological functions via nuclear receptors, retinoic acid receptors (RARs) and retinoid X receptors (RXRs).
Purpose of the Study:
- To investigate the mechanism by which RME prevents mammary cancer development.
- To determine if RME modulates activator protein 1 (AP-1) activity.
- To explore the role of retinoid receptors in RME's anticancer effects.
Main Methods:
- Transient transfection assays were employed to assess AP-1 activity on specific promoters.
- Expression vectors for RAR-alpha, RAR-beta, RAR-gamma, and RXR-alpha were used in HeLa cells.
- Gel retardation assays were performed to analyze AP-1 binding activity in breast cancer cells.
Main Results:
- RME was found to down-regulate AP-1 activity induced by various agents, including tumor promoters and growth factors.
- Inhibition of AP-1 activity by RME was observed on collagenase and thymidine kinase promoters.
- Specific retinoid receptors (RAR-alpha and/or RXR-alpha) mediated RME's effect in HeLa cells, while endogenous receptors sufficed in breast cancer cells.
- RME inhibited AP-1 binding activity induced by 12-O-tetradecanoylphorbol-13-acetate and epidermal growth factor in breast cancer cells.
Conclusions:
- RME exerts its anticancer effects, at least in part, by repressing AP-1-responsive genes.
- The modulation of retinoid receptor activity by RME is a key factor in its cancer-preventive mechanism.
- These findings provide novel insights into the molecular pathways targeted by RME for cancer prevention.