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Published on: October 27, 2014
The triptolide derivative MRx102 inhibits Wnt pathway activation and has potent anti-tumor effects in lung cancer
Theresa A Reno1, Sun-Wing Tong2, Jun Wu3
1Division of Thoracic Surgery, City of Hope Medical Center, 1500 E. Duarte Rd., Duarte, CA, 91010, USA. treno@coh.org.
Background:
The natural compound triptolide has been shown to decrease cell proliferation and induce apoptosis and cellular senescence. We previously demonstrated that triptolide decreases tumor formation and metastasis of human non-small cell lung cancer cells (NSCLC). Due to the toxicity of triptolide, derivatives of the natural compound have been developed that show more favorable toxicity profiles and pharmacokinetics in animal models. The purpose of this study was to evaluate MRx102 as a novel therapeutic for lung cancer.
Methods:
Mice injected subcutaneously with H460 lung cancer cells were treated with MRx102 or carboplatin to determine the effect of MRx102 on tumor formation in comparison to standard treatment. Patient-derived xenografts (PDX) with different WIF1 expression levels were treated with MRx102 or cisplatin. We tested the effects of MRx102 treatment on migration and invasion of lung cancer cells using Transwell filters coated with fibronectin and Matrigel, respectively. Tail vein injections using H460 and A549 cells were performed.
Results:
Here we report that the triptolide derivative MRx102 significantly decreases NSCLC proliferation and stimulates apoptosis. Further, MRx102 potently inhibits NSCLC haptotactic migration and invasion through Matrigel. In vivo, NSCLC tumor formation and metastasis were greatly decreased by MRx102 treatment. The decrease in tumor formation by MRx102 in the patient-derived xenograft model was WIF1-dependent, demonstrating that MRx102 is a potent inhibitor of the Wnt pathway in low WIF1 expressing NSCLC patient tumors.
Conclusions:
These results indicate that MRx102 has potent antitumor effects both in vitro and in vivo, and is a potential novel therapy for the treatment of NSCLC.
Insights
The novel triptolide derivative MRx102 effectively inhibits non-small cell lung cancer (NSCLC) growth and metastasis. This compound shows significant potential as a new therapy for lung cancer patients, especially those with low WIF1 expression.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Triptolide, a natural compound, exhibits anti-cancer properties by reducing cell proliferation and inducing apoptosis.
- Triptolide's toxicity necessitates the development of safer derivatives for therapeutic use.
- Previous studies showed triptolide's efficacy in decreasing non-small cell lung cancer (NSCLC) tumor formation and metastasis.
Purpose of the Study:
- To evaluate MRx102, a triptolide derivative, as a potential novel therapeutic agent for lung cancer.
- To assess the anti-cancer effects of MRx102 in preclinical models of NSCLC.
Main Methods:
- Tumor formation was assessed in mice bearing H460 lung cancer cells treated with MRx102 or carboplatin.
- Patient-derived xenografts (PDX) with varying WIF1 expression levels were treated with MRx102 or cisplatin.
- In vitro assays evaluated MRx102's impact on NSCLC cell migration and invasion using Transwell filters.
Main Results:
- MRx102 significantly reduced NSCLC proliferation and induced apoptosis in vitro.
- MRx102 demonstrated potent inhibition of NSCLC cell migration and invasion.
- In vivo studies showed MRx102 markedly decreased NSCLC tumor formation and metastasis.
- MRx102's anti-tumor effect in PDX models was WIF1-dependent, indicating Wnt pathway inhibition.
Conclusions:
- MRx102 exhibits significant in vitro and in vivo antitumor activity against NSCLC.
- MRx102 acts as a potent inhibitor of the Wnt pathway in NSCLC with low WIF1 expression.
- MRx102 represents a promising novel therapeutic candidate for non-small cell lung cancer treatment.
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