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Induction and Analysis of Epithelial to Mesenchymal Transition
Published on: August 27, 2013
Sunitinib Reduced the Migration of Ectopic Endometrial Cells via p-VEGFR-PI3K-AKT-YBX1-Snail Signaling Pathway
Xiaodan Fan1,2, Yanyan Tong3, Yiting Chen2
1Ningbo Institute of Medical Science, Zhejiang, China.
Abstract:
Endometriosis (EMs) is one of the most common gynecological diseases, lacking effective treatment. EMs are currently being treated with small molecule targeted therapy, which has resulted in a significant reduction in patient suffering. Our previous studies have shown that sunitinib plays an obvious role in migration. Consequently, the purpose of this study is to explore the molecular mechanism by which sunitinib suppressed the ectopic endometrial migration. The ectopic endometrial cells from patients were divided into two groups: the control group and the sunitinib group. Co-IP and protein spectrum assay were employed to filtrate differential proteins between two groups, and then, our study discovered a signaling pathway, p-VEGFR-PI3K-AKT-YBX1-Snail, in the cell of EMs. To confirm this signaling pathway, VEGF165 was added to the sunitinib group to upregulate the expression of VEGFR. Next, the expression of p-VEGFR, PI3K, AKT, YBX1, and snail was measured in the control group and sunitinib group (compared with the control group: p-VEGFR, PI3K, AKT, YBX1, and snail, ∗∗∗∗P < 0.0001) and the VEGFR+sunitinib group (compared with the sunitinib group: p-VEGFR, PI3K, AKT, and snail, ∗∗∗∗P < 0.0001; YBX1, ∗∗∗P < 0.001); finally, the outcome was as expected. In addition to in vitro experiments, we also conducted in vivo experiments in mice. In the EMs mouse model, we found sunitinib reduced the number of heterotopic foci (t = 11.16, ∗∗∗∗P < 0.0001) and inhibited the expression of p-VEGFR, YBX1, and snail by immunofluorescence. To sum up, sunitinib exactly reduced the migration of ectopic endometrial cells with the involvement of the p-VEGFR-PI3K-AKT-YBX1-Snail signaling pathway in both in vitro and in vivo experiments. This study suggests that sunitinib presents a potential targeted drug for EMs therapy.
Insights
Sunitinib effectively suppresses endometriosis cell migration by inhibiting the p-VEGFR-PI3K-AKT-YBX1-Snail pathway. This study highlights sunitinib as a potential targeted therapy for endometriosis, demonstrating its efficacy in both lab and animal models.
Area of Science:
- Gynecological diseases
- Molecular biology
- Pharmacology
Background:
- Endometriosis (EMs) is a common gynecological disease with limited effective treatments.
- Current treatments include small molecule targeted therapy, which has shown promise in reducing patient suffering.
- Previous research indicated sunitinib's role in cell migration.
Purpose of the Study:
- To elucidate the molecular mechanism by which sunitinib suppresses ectopic endometrial migration in endometriosis.
- To investigate the involvement of the p-VEGFR-PI3K-AKT-YBX1-Snail signaling pathway in sunitinib's effect.
Main Methods:
- Utilized ectopic endometrial cells from patients and an endometriosis mouse model.
- Employed co-immunoprecipitation (Co-IP) and protein spectrum assays to identify differential proteins.
- Measured protein expression levels (p-VEGFR, PI3K, AKT, YBX1, Snail) in control, sunitinib, and VEGFR+sunitinib groups.
- Conducted in vivo experiments to assess the effect of sunitinib on heterotopic foci and protein expression.
Main Results:
- Identified the p-VEGFR-PI3K-AKT-YBX1-Snail signaling pathway in endometriosis cells.
- Sunitinib significantly suppressed ectopic endometrial cell migration in vitro.
- Upregulating VEGFR with VEGF165 in the sunitinib group confirmed the pathway's role.
- In vivo studies showed sunitinib reduced heterotopic foci and inhibited key pathway proteins.
Conclusions:
- Sunitinib effectively reduces ectopic endometrial cell migration through the p-VEGFR-PI3K-AKT-YBX1-Snail signaling pathway.
- The findings support sunitinib as a potential targeted therapeutic agent for endometriosis.
- Demonstrated efficacy in both in vitro and in vivo experimental settings.

