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Updated: Feb 27, 2026

Murine Model for Non-invasive Imaging to Detect and Monitor Ovarian Cancer Recurrence
Published on: November 2, 2014
Celastrol inhibits migration and invasion through blocking the NF-κB pathway in ovarian cancer cells
Zhongye Wang1, Zhenyuan Zhai1, Xiulan Du1
1Department of Obstetrics and Gynecology, Weihai Central Hospital, Weihai, Shandong 264400, P.R. China.
Abstract:
Metastatic ovarian cancer is a major clinical challenge with poor prognosis and high mortality. Celastrol is a natural compound that has exhibits antiproliferative activity; however, its effects on metastasis-related phenotypes in ovarian cancer models are unclear. In the current study, the anti-invasive activities and associated signaling pathways of celastrol were determined in ovarian cancer cells. Cell proliferation was tested by MTT assay. Cell migration was detected by wound healing and Transwell assays, while cell invasion was detected by a Matrigel-coated Transwell method. In addition, nuclear factor (NF)-κB and matrix metalloproteinase (MMP) expression was examined by western blotting, and MMP-2/-9 activities were determined by gelatin zymography. At sub-toxic concentrations (<0.5 µM), celastrol inhibited migration and invasion in a concentration-dependent manner in SKOV-3 and OVCAR-3 cells. At the molecular level, celastrol blocked the canonical NF-κB pathway by inhibiting IκBα phosphorylation, and preventing IκBα degradation and p65 accumulation. Furthermore, the expression and activity of the NF-κB target protein MMP-9, but not MMP-2, were inhibited by celastrol. Furthermore, celastrol showed no synergistic effect with MG132, an NF-κB inhibitor. In conclusion, celastrol exhibited significant anti-invasive activities in ovarian cancer cells. Such functions may be mediated via NF-κB pathway blockade. The results of this in vitro study strengthen the value of applying celastrol as a potential clinical intervention modality for delaying ovarian cancer metastasis. This, celastrol warrants further preclinical investigation.
Insights
Celastrol, a natural compound, significantly inhibits ovarian cancer cell migration and invasion by blocking the nuclear factor-kappa B (NF-κB) pathway. This study highlights celastrol
Area of Science:
- Oncology
- Molecular Biology
- Natural Products Chemistry
Background:
- Metastatic ovarian cancer presents a significant clinical challenge with poor prognosis.
- Celastrol, a natural compound, shows antiproliferative activity, but its anti-metastatic effects in ovarian cancer are not well understood.
Purpose of the Study:
- To investigate the anti-invasive effects of celastrol on ovarian cancer cells.
- To elucidate the molecular mechanisms underlying celastrol's action, focusing on the NF-κB pathway and matrix metalloproteinases (MMPs).
Main Methods:
- Cell proliferation assessed via MTT assay.
- Cell migration and invasion evaluated using wound healing, Transwell, and Matrigel-coated Transwell assays.
- NF-κB pathway components (IκBα, p65) and MMP-2/-9 expression/activity analyzed by western blotting and gelatin zymography.
Main Results:
- Celastrol suppressed ovarian cancer cell migration and invasion in a concentration-dependent manner at sub-toxic levels.
- Celastrol inhibited the canonical NF-κB pathway by preventing IκBα phosphorylation and p65 accumulation.
- Celastrol reduced the expression and activity of MMP-9, a key NF-κB target, but not MMP-2.
Conclusions:
- Celastrol demonstrates significant anti-invasive properties in ovarian cancer cells.
- The anti-invasive effects are likely mediated through the blockade of the NF-κB signaling pathway.
- Celastrol shows potential as a therapeutic agent to delay ovarian cancer metastasis, warranting further preclinical research.
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