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The retinoic acid receptor antagonist, BMS453, inhibits normal breast cell growth by inducing active TGFbeta and
L Yang1, J Ostrowski, P Reczek
1Baylor Breast Center, Baylor Medical College, One Baylor Plaza, MS600, Houston, Texas, TX 77030, USA.
Abstract:
We have previously shown that a retinoic acid receptor (RAR) antagonist BMS453, which does not activate RAR-dependent gene transcription in breast cells, inhibits normal breast cell growth. In this study we have investigated the mechanisms by which this retinoid receptor antagonist inhibits cell growth. Both all trans retinoic acid (atRA) and BMS453 inhibited the proliferation of normal breast cell growth without significantly inducing apoptosis. Both retinoids caused a G1 block in the cell cycle with an increase in the proportion of cells in G0/G1 and a decrease in the proportion of cells in S phase. We then investigated the effects of the retinoids on molecules that regulate the G1 to S transition. These studies demonstrated that both atRA and BMS453 induce Rb hypophosphorylation and decrease CDK2 kinase activity. We then studied the effect of the retinoids on the expression of CDK inhibitors. atRA and BMS453 increased total p21 protein levels and CDK2-bound p21 protein, but did not change CDK4-bound p21. These results suggest that atRA and BMS453 increase p21, decrease CDK2 kinase activity, which in turn leads to hypophosphorylation of Rb and G1 arrest. Because transforming growth factor beta (TGFbeta) has been proposed as a mediator of retinoid-induced growth inhibition, we next investigated whether TGFbeta mediates the anti-proliferative effect of atRA and BMS453 in normal breast cells. These studies showed that atRA and BMS453 increased total TGFbeta activity by 3-5-fold. However, BMS453 increased active TGFbeta activity by 33-fold while atRA increased active TGFbeta activity by only threefold. These results suggest that BMS453 treatment induces conversion of latent TGFbeta to active TGFbeta. To investigate whether this increase in active TGFbeta mediates the anti-proliferative effects of these retinoids, a TGFbeta-blocking antibody was used in an attempt to prevent retinoid-induced growth inhibition. Results from these experiments showed that the anti-TGFbeta antibody prevented the inhibition of cell proliferation induced by BMS453, but did not prevent the inhibition of cell proliferation induced by atRA. These results demonstrate that BMS453 inhibits breast cell growth predominantly through the induction of active TGFbeta, while atRA inhibits growth through other mechanisms. These results suggest that retinoid analogs that increase active TGFbeta may be promising agents for the prevention of breast cancer.
Insights
Retinoid receptor antagonist BMS453 and all trans retinoic acid (atRA) inhibit normal breast cell growth by causing a G1 cell cycle block. BMS453 primarily uses active transforming growth factor beta (TGFbeta) to inhibit growth, while atRA uses other mechanisms.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Retinoids, including all trans retinoic acid (atRA), are known to influence cell growth and differentiation.
- Retinoic acid receptor (RAR) antagonists, like BMS453, can inhibit breast cell growth without activating RAR-dependent transcription.
- The precise mechanisms underlying retinoid-induced growth inhibition in normal breast cells require further elucidation.
Purpose of the Study:
- To investigate the mechanisms by which the RAR antagonist BMS453 inhibits normal breast cell growth.
- To compare the mechanisms of growth inhibition by BMS453 and atRA.
- To determine the role of transforming growth factor beta (TGFbeta) in mediating the anti-proliferative effects of these retinoids.
Main Methods:
- Cell proliferation assays were performed on normal breast cells treated with BMS453 and atRA.
- Cell cycle analysis (G1 block) was assessed using flow cytometry.
- Western blotting and kinase assays were used to evaluate key cell cycle regulatory proteins (Rb, CDK2, p21).
- Transforming growth factor beta (TGFbeta) activity (total and active) was measured.
- TGFbeta-blocking antibodies were employed to assess the role of TGFbeta in retinoid-induced growth inhibition.
Main Results:
- Both BMS453 and atRA inhibited normal breast cell proliferation and induced a G1 cell cycle arrest without significant apoptosis.
- Both retinoids led to Rb hypophosphorylation and decreased CDK2 kinase activity, associated with increased p21 protein levels.
- BMS453 significantly increased active TGFbeta levels, while atRA showed a more modest increase in active TGFbeta.
- Inhibition of cell proliferation by BMS453 was blocked by a TGFbeta-blocking antibody, but inhibition by atRA was not.
Conclusions:
- BMS453 inhibits normal breast cell growth predominantly by inducing active TGFbeta, leading to G1 arrest.
- atRA inhibits breast cell growth through mechanisms independent of active TGFbeta induction.
- Retinoid analogs that enhance active TGFbeta represent a potential strategy for breast cancer prevention.
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