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An Orthotopic Model of Serous Ovarian Cancer in Immunocompetent Mice for in vivo Tumor Imaging and Monitoring of Tumor Immune Responses
Published on: November 28, 2010
A genetically defined mouse ovarian carcinoma model for the molecular characterization of pathway-targeted therapy
1Massachusetts General Hospital, Harvard Medical School, Charlestown, MA 02129, USA.
Abstract:
Cell lines and tumors with defined genetic alterations provide ideal systems in which to test the molecular mechanisms of tumor sensitivity to pathway-targeted therapy. We have generated mouse ovarian epithelial tumor cell lines that contain various combinations of genetic alterations in the p53, c-myc, K-ras and Akt genes. Using both in vitro and in vivo approaches, we investigated the effect of rapamycin on cell proliferation, tumor growth, and the accumulation of peritoneal ascites. We demonstrated that rapamycin effectively inhibits the growth of tumors that rely on Akt signaling for proliferation, whereas tumors in which Akt signaling is not the driving force in proliferation are resistant to rapamycin. The introduction of activated Akt to the rapamycin-resistant cells does not render the cells susceptible to rapamycin if they can use alternative pathways for survival and proliferation. Accordingly, the rapamycin-sensitive tumors develop resistance to rapamycin when presented with alternative survival pathways, such as the mitogen-activated extracellular kinase signaling pathway. The combination of rapamycin and the mitogen-activated extracellular kinase inhibitor PD98059 is required to diminish proliferation in these cell lines. Our results indicate that mammalian target of rapamycin inhibitors may be effective in a subset of tumors that depend on Akt activity for survival but not effective in all tumors that exhibit Akt activation. Tumors with alternative survival pathways may require the inactivation of multiple individual pathways for successful treatment.
Insights
Rapamycin effectively targets tumors driven by Akt signaling but not those with alternative survival pathways. Combination therapy, like rapamycin with PD98059, is crucial for treating resistant ovarian tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Targeted therapies are crucial for cancer treatment.
- Understanding genetic alterations in tumors guides therapeutic strategies.
- The Akt signaling pathway is implicated in various cancers.
Purpose of the Study:
- To investigate the efficacy of rapamycin in mouse ovarian tumor models with defined genetic alterations.
- To determine the role of Akt signaling in tumor sensitivity to rapamycin.
- To explore resistance mechanisms and combination therapies.
Main Methods:
- Generation of mouse ovarian epithelial tumor cell lines with genetic alterations (p53, c-myc, K-ras, Akt).
- In vitro and in vivo studies assessing rapamycin's effect on proliferation, tumor growth, and ascites.
- Evaluation of alternative signaling pathways (e.g., MEK) in rapamycin resistance.
Main Results:
- Rapamycin inhibited tumors reliant on Akt signaling.
- Tumors with alternative survival pathways, like MEK signaling, were resistant to rapamycin.
- Combined rapamycin and MEK inhibitor (PD98059) diminished proliferation in resistant cell lines.
- Activated Akt did not overcome resistance if alternative pathways were present.
Conclusions:
- Mammalian target of rapamycin (mTOR) inhibitors are effective in a subset of tumors dependent on Akt activity.
- Tumors with alternative survival pathways require multi-pathway inhibition for effective treatment.
- Targeted therapy efficacy is dependent on the specific genetic alterations and signaling networks within tumors.
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