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Updated: Jan 20, 2026

Culture of Bladder Cancer Organoids as Precision Medicine Tools
Published on: December 28, 2021
Metformin targets a YAP1-TEAD4 complex via AMPKα to regulate CCNE1/2 in bladder cancer cells
Yanju Wu1, Qianqian Zheng2, Yan Li3
1Department of Biochemistry and Molecular Biology, School of Life Sciences, China Medical University, No.77 Puhe Road, Shenyang North New Area, Shenyang, Shenyang, 110122, Liaoning Province, China.
Background:
Metformin has been reported to function as the anti-tumor inhibiting the growth of different types of cancers, including bladder cancer. But there are few reports on the roles of Yap1, the key molecule of Hippo pathway, in the metformin induced inhibition of bladder cancer (BLCA). We are wondering if the inhibitory effect of metformin on bladder cancer is fulfilled via Yap1 and exploring the related mechanism.
Methods:
MTS and colony formation assays were used to explore the cellular viabilities and proliferation of BLCA cells challenged by metformin at different concentrations, in vitro. Flow Cytometry (FCM) was used to analyze the cell cycle and the cellular apoptosis of the BLCA cells. Western Blot was performed to detect the expressions of AMPKα, Yap1, CCND1, CCNE1/2 and CDK2/4/6 in the metformin-treated BLCA cell lines. RNAi method was used for the related genetic functional analysis. The relationships among Yap1, TEADs and CCNE1/2 were predicted and evaluated using bioinformatics, dual-luciferase reporter and co-immunoprecipitation (Co-IP) assays. For in vivo experiments, a xenograft model was used to investigate the effects of metformin on the proliferation of BLCA cells. And Immunohistochemistry (IHC) assay was performed to assess the expressions of CCNE1/2 and Yap1 proteins in the tumor tissues from the model.
Results:
Metformin could inhibit the proliferation of the BLCA cells via inducing the G1 cell cycle arrest without apoptosis. And metformin upregulated the phosphorylated AMPKα and decreased the expressions of Yap1 and CCND1, CCNE1/2 and CDK4/6. AMPK inhibition by compound C (CC) restored the cell proliferation and the G1 cell cycle arrest induced by metformin, in vivo. Knockdown of YAP1 inhibited the proliferation of BLCA cells and caused the cell cycle arrest at G1 phase by decreasing the expressions of CCNE1/2 and other G1 phase related molecules, which has been restored by the Yap 5SA mutant. Bioinformatics analysis showed that trans-factor TEAD4 was highly expressed and positively associated with the expressions of CCNE1 and CCNE2 in BLCA and only TEAD4 was precipitated by Yap1 in the BLCA cells. Further studies demonstrated that Yap1 positively regulated both CCNE1 and CCNE2 expressions via forming complex with TEAD4. Furthermore, we observed that metformin inhibited the cell proliferation by decreasing the expressions of Yap1 and both CCNE1 and CCNE2 in xenograft model.
Conclusions:
The results of our study reveal a new potential regulatory pathway in which metformin inhibits cell proliferation via AMPKα/Yap1/TEAD4/CCNE1/2 axis in BLCA cells, providing new insights into novel molecular therapeutic targets for BLCA.
Insights
Metformin inhibits bladder cancer (BLCA) cell growth by targeting the AMPKα/Yap1/TEAD4/CCNE1/2 pathway. This study reveals a novel mechanism for metformin
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Metformin exhibits anti-tumor properties against various cancers, including bladder cancer (BLCA).
- The role of Yap1, a key component of the Hippo pathway, in metformin's anti-cancer effects on BLCA remains largely unexplored.
- This study investigates the involvement of Yap1 in metformin-induced inhibition of BLCA.
Purpose of the Study:
- To elucidate the mechanism by which metformin inhibits bladder cancer cell proliferation.
- To determine the role of Yap1 in metformin's anti-tumor effects on BLCA.
- To identify potential therapeutic targets for BLCA treatment.
Main Methods:
- Cell viability and proliferation assays (MTS, colony formation) were performed on BLCA cells treated with metformin.
- Flow cytometry analyzed cell cycle and apoptosis.
- Western blotting detected protein expression levels of AMPKα, Yap1, CCND1, CCNE1/2, and CDK2/4/6.
- RNA interference (RNAi) and xenograft models were used for genetic and in vivo validation.
- Bioinformatics, dual-luciferase reporter, and co-immunoprecipitation assays investigated Yap1-TEAD interactions and regulation of CCNE1/2.
Main Results:
- Metformin inhibited BLCA cell proliferation by inducing G1 cell cycle arrest without affecting apoptosis.
- Metformin treatment increased phosphorylated AMPKα and decreased Yap1, CCND1, CCNE1/2, and CDK4/6 expression.
- AMPK inhibition reversed metformin's effects on cell proliferation and cell cycle arrest.
- YAP1 knockdown inhibited BLCA cell proliferation and induced G1 arrest, effects reversed by a Yap 5SA mutant.
- Yap1 positively regulated CCNE1 and CCNE2 expression through complex formation with TEAD4.
- Metformin reduced Yap1, CCNE1, and CCNE2 expression in a xenograft model.
Conclusions:
- Metformin inhibits BLCA cell proliferation through the AMPKα/Yap1/TEAD4/CCNE1/2 signaling axis.
- This pathway represents a novel mechanism for metformin's anti-cancer activity in BLCA.
- The identified pathway offers potential molecular therapeutic targets for bladder cancer treatment.
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