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Cyclin D3 is down-regulated by rapamycin in HER-2-overexpressing breast cancer cells
Pilar García-Morales1, Eva Hernando, Estefanía Carrasco-García
1Instituto de Biología Molecular y Celular, Edificio Torregaitán, Universidad Miguel Hernández, 03202 Elche, Spain.
Abstract:
Rapamycin and its analogues are being tested as new antitumor agents. Rapamycin binds to FKBP-12 and this complex inhibits the activity of FRAP/mammalian target of rapamycin, which leads to dephosphorylation of 4EBP1 and p70 S6 kinase, resulting in blockade of translation initiation. We have found that RAP inhibits the growth of HER-2-overexpressing breast cancer cells. The phosphorylation of mammalian target of rapamycin, p70 S6 kinase, and 4EBP1 is inhibited by rapamycin and cells are arrested in the G1 phase, as determined by growth assays, fluorescence-activated cell sorting analysis, and bromodeoxyuridine incorporation studies. Rapamycin causes down-regulation of cyclin D3 protein, retinoblastoma hypophosphorylation, loss of cyclin-dependent kinase (cdk) 4, cdk6, and cdk2 activity. The half-life of cyclin D3 protein decreases after rapamycin treatment, but not its synthesis, whereas the synthesis or half-life of cyclin D1 protein is not affected by the drug. Additionally, rapamycin caused accumulation of ubiquitinated forms of cyclin D3 protein, proteasome inhibitors blocked the effect of rapamycin on cyclin D3, and rapamycin stimulated the activity of the proteasome, showing that the effect of rapamycin on cyclin D3 is proteasome proteolysis dependent. This effect depends on the activity of HER-2 because Herceptin, a neutralizing antibody against HER-2, is able to block both the induction of proteasome activity and the cyclin D3 down-regulation due to rapamycin. Furthermore, inhibition of HER-2 gene expression by using small interfering RNA blocked the rapamycin effects on cyclin D3. These data indicate that rapamycin causes a G1 arrest in HER-2-overexpressing breast cancer cells that is associated with a differential destabilization and subsequent down-regulation of cyclin D3 protein.
Insights
Rapamycin inhibits HER-2-overexpressing breast cancer cell growth by blocking translation initiation and down-regulating cyclin D3 protein, leading to G1 phase arrest. This effect is dependent on HER-2 activity and proteasome degradation of cyclin D3.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Rapamycin and its analogues are investigated as novel antitumor agents.
- Rapamycin targets the mammalian target of rapamycin (mTOR) pathway, inhibiting translation initiation.
- HER-2 overexpression is implicated in aggressive breast cancer subtypes.
Purpose of the Study:
- To investigate the effect of rapamycin on HER-2-overexpressing breast cancer cells.
- To elucidate the molecular mechanisms underlying rapamycin-induced growth inhibition and cell cycle arrest.
Main Methods:
- Cell growth assays
- Flow cytometry (FACS) for cell cycle analysis
- Bromodeoxyuridine incorporation studies
- Western blotting for protein levels and phosphorylation
- Proteasome activity assays
- Small interfering RNA (siRNA) for HER-2 gene silencing
- Herceptin treatment
Main Results:
- Rapamycin inhibited the growth of HER-2-overexpressing breast cancer cells.
- Rapamycin treatment led to G1 phase cell cycle arrest, dephosphorylation of 4EBP1 and p70 S6 kinase, and down-regulation of cyclin D3 protein.
- The observed effects were dependent on HER-2 activity, as Herceptin and HER-2 siRNA blocked rapamycin's effects.
- Rapamycin induced proteasome-dependent degradation of cyclin D3.
Conclusions:
- Rapamycin induces G1 arrest in HER-2-overexpressing breast cancer cells.
- The mechanism involves the down-regulation of cyclin D3 protein via proteasome-mediated degradation, dependent on HER-2 signaling.
- Rapamycin shows potential as a therapeutic agent for HER-2-positive breast cancers.
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