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Published on: February 20, 2017
Smoothened antagonists reverse taxane resistance in ovarian cancer
Adam D Steg1, Ashwini A Katre, Kerri S Bevis
1Department of Obstetrics and Gynecology, University of Alabama at Birmingham, Birmingham, Alabama 35294, USA.
Abstract:
The hedgehog pathway has been implicated in the formation and maintenance of a variety of malignancies, including ovarian cancer; however, it is unknown whether hedgehog signaling is involved in ovarian cancer chemoresistance. The goal of this study was to determine the effects of antagonizing the hedgehog receptor, Smoothened (Smo), on chemotherapy response in ovarian cancer. Expression of hedgehog pathway members was assessed in three pairs of parental and chemotherapy-resistant ovarian cancer cell lines (A2780ip2/A2780cp20, SKOV3ip1/SKOV3TRip2, HeyA8/HeyA8MDR) using quantitative PCR and Western blot analysis. Cell lines were exposed to increasing concentrations of two different Smo antagonists (cyclopamine, LDE225) alone and in combination with carboplatin or paclitaxel. Selective knockdown of Smo, Gli1, or Gli2 was achieved using siRNA constructs. Cell viability was assessed by MTT assay. A2780cp20 and SKOV3TRip2 orthotopic xenografts were treated with vehicle, LDE225, paclitaxel, or combination therapy. Chemoresistant cell lines showed higher expression (>2-fold, P < 0.05) of hedgehog signaling components compared with their respective parental lines. Smo antagonists sensitized chemotherapy-resistant cell lines to paclitaxel, but not to carboplatin. LDE225 treatment also increased sensitivity of ALDH-positive cells to paclitaxel. A2780cp20 and SKOV3TRip2 xenografts treated with combined LDE225 and paclitaxel had significantly less tumor burden than those treated with vehicle or either agent alone. Increased taxane sensitivity seems to be mediated by a decrease in P-glycoprotein (MDR1) expression. Selective knockdown of Smo, Gli1, or Gli2 all increased taxane sensitivity. Smo antagonists reverse taxane resistance in chemoresistant ovarian cancer models, suggesting combined anti-hedgehog and chemotherapies could provide a useful therapeutic strategy for ovarian cancer.
Insights
Targeting the hedgehog pathway with Smo antagonists reverses taxane resistance in ovarian cancer. This combination therapy shows promise for treating chemoresistant ovarian cancers, reducing tumor burden and increasing sensitivity to paclitaxel.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- The hedgehog pathway is implicated in various cancers, including ovarian cancer.
- Its role in ovarian cancer chemoresistance remains unclear.
- Understanding hedgehog signaling's impact on treatment resistance is crucial for developing effective therapies.
Purpose of the Study:
- To investigate the effect of antagonizing the hedgehog receptor, Smoothened (Smo), on chemotherapy response in ovarian cancer.
- To determine if Smo antagonists can overcome chemoresistance in ovarian cancer models.
Main Methods:
- Assessed hedgehog pathway member expression in parental and chemoresistant ovarian cancer cell lines using qPCR and Western blot.
- Treated cell lines and orthotopic xenografts with Smo antagonists (cyclopamine, LDE225) alone and with carboplatin or paclitaxel.
- Utilized siRNA for selective knockdown of Smo, Gli1, or Gli2.
- Assessed cell viability via MTT assay and tumor burden in xenografts.
Main Results:
- Chemoresistant cell lines exhibited significantly higher hedgehog signaling component expression.
- Smo antagonists sensitized resistant cell lines to paclitaxel, but not carboplatin.
- Combination therapy with LDE225 and paclitaxel significantly reduced tumor burden in xenografts.
- Increased taxane sensitivity was linked to decreased P-glycoprotein (MDR1) expression.
Conclusions:
- Smo antagonists reverse taxane resistance in chemoresistant ovarian cancer models.
- Combined anti-hedgehog therapy and chemotherapy represent a potential therapeutic strategy for ovarian cancer.
- Targeting the hedgehog pathway offers a novel approach to overcoming treatment resistance.
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