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Updated: Apr 25, 2026

Assessment of Ovarian Cancer Spheroid Attachment and Invasion of Mesothelial Cells in Real Time
Published on: May 20, 2014
Molecular regulation of ovarian cancer cell invasion
Ningxia Sun1, Qing Zhang, Chen Xu
1Department of Obstetrics and Gynecology, Shanghai Changzheng Hospital, Second Military Medical University, 415 Fengyang Road, Shanghai, 200003, China.
Abstract:
The molecular mechanism underlying ovarian cancer invasiveness and metastasis remains unclear. Since significant downregulation in microRNA 200 (miRNA200) family (miR200a, miR200b, and miR200c) has been reported in the invasive ovarian cancer cells, here, we used two human ovarian cancer cell lines, OVCAR3 and SKOV3, to study the molecular basis of miR200, matrix metalloproteinase 3 (MMP3) activation, and cancer invasiveness. We found that overexpression of either miR200 family member in OVCAR3 or SKOV3 cells significantly inhibited production and secretion of MMP3 and cancer invasiveness. Moreover, forced MMP3 expression abolished miR200-induced inhibition of ovarian cancer cell invasiveness, suggesting that miR200 family inhibited ovarian cell invasiveness via downregulating MMP3. Furthermore, ZEB1, a major target of miR200, was inhibited by miR200 overexpression. Forced ZEB1 expression abolished miR200-induced inhibition of ovarian cancer cell invasiveness, suggesting that ZEB1 is a direct target of miR200 for inhibiting ovarian cell invasiveness. Finally, phosphorylated SMAD3 (pSMAD3), a major partner of ZEB1, was efficiently inhibited by miR200, which could be restored by forced expression of ZEB1, but not by forced expression of MMP3, suggesting that ZEB1/pSMAD3 is signaling cascade upstream of MMP3 in this model. Taken together, our data suggest that miR200 family inhibited ovarian cancer cell invasiveness and metastasis by downregulating MMP3, possibly through ZEB1/pSMAD3.
Insights
MicroRNA 200 family inhibits ovarian cancer spread by targeting ZEB1 and downregulating matrix metalloproteinase 3 (MMP3). This pathway involves ZEB1 and phosphorylated SMAD3 (pSMAD3), controlling MMP3 activity and reducing cancer invasiveness.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Ovarian cancer invasiveness and metastasis mechanisms are not fully understood.
- The microRNA 200 (miRNA200) family is downregulated in invasive ovarian cancer cells.
- Investigating the role of miRNA200 in ovarian cancer progression is crucial.
Purpose of the Study:
- To elucidate the molecular mechanisms by which the miRNA200 family affects ovarian cancer cell invasiveness and metastasis.
- To determine the relationship between miRNA200, matrix metalloproteinase 3 (MMP3), ZEB1, and phosphorylated SMAD3 (pSMAD3) in ovarian cancer.
Main Methods:
- Utilized human ovarian cancer cell lines (OVCAR3 and SKOV3).
- Overexpressed miRNA200 family members and analyzed MMP3 production, secretion, and cancer cell invasiveness.
- Investigated the roles of ZEB1 and pSMAD3 in the miRNA200-mediated inhibition of invasiveness.
Main Results:
- Overexpression of miRNA200 family members significantly inhibited MMP3 production/secretion and ovarian cancer cell invasiveness.
- Forced MMP3 expression reversed the inhibitory effects of miRNA200 on invasiveness.
- miR200 targeted ZEB1, and ZEB1/pSMAD3 signaling cascade was found upstream of MMP3, mediating miRNA200's effect.
Conclusions:
- The miRNA200 family inhibits ovarian cancer cell invasiveness and metastasis.
- This inhibition is primarily mediated by downregulating MMP3, potentially through the ZEB1/pSMAD3 signaling pathway.
- Targeting the miRNA200/ZEB1/pSMAD3/MMP3 axis may offer therapeutic strategies for ovarian cancer.
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