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Updated: Sep 8, 2025

3-D Cell Culture System for Studying Invasion and Evaluating Therapeutics in Bladder Cancer
Published on: September 13, 2018
TET3 facilitates bladder cancer progression through targeted modulation of stemness pathways
Zhiren Cai1, Yanqi Xie2, Luyao Li3
1Department of Urology, Central People's Hospital of Zhanjiang, Zhanjiang, China.
Abstract:
Bladder cancer is a major health concern, and understanding its molecular mechanisms is essential for developing effective therapies. TET3, a DNA hydroxymethylase, has been linked to tumor progression, but its role in bladder cancer remains unclear. We analyzed single-cell RNA sequencing data and identified TET3 as a key regulator in tumor-promoting cells using scissor analysis. Functional experiments were performed to evaluate the effects of TET3 knockdown on cell proliferation, migration, and gene expression. In vivo tumor growth assays and histological analyses were conducted to assess the role of TET3 in tumor progression. Additionally, we assessed the impact of TET3 on stemness-associated gene expression and performed sphere formation assays to evaluate tumor cell self-renewal capacity. TET3 was highly expressed in tumor-promoting cells. Its knockdown significantly reduced cell proliferation, migration, and tumor growth in vivo. Tumors with TET3 knockdown had lower volumes, weights, and Ki67-positive cells. Mechanistically, TET3 regulated key tumor-related genes and pathways and reduced DNA 5hmC levels. Notably, TET3 knockdown downregulated multiple stemness-related transcription factors such as SOX2 and NANOG, and impaired sphere-forming efficiency, suggesting its essential role in maintaining cancer cell stemness. This study reveals that TET3 promotes tumor growth and progression in bladder cancer partly through modulation of the stemness pathway, highlighting its potential as a therapeutic target and prognostic marker.
Insights
TET3 promotes bladder cancer growth by enhancing cancer stemness. Inhibiting TET3 reduces tumor progression and proliferation, suggesting it as a potential therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Bladder cancer necessitates understanding molecular drivers for effective therapy.
- The role of TET3 (ten-eleven translocation 3), a DNA hydroxymethylase, in bladder cancer is not well understood.
- Identifying key regulators is crucial for targeted treatment strategies.
Purpose of the Study:
- To investigate the role and mechanism of TET3 in bladder cancer progression.
- To evaluate TET3 as a potential therapeutic target and prognostic marker.
Main Methods:
- Analysis of single-cell RNA sequencing data to identify TET3 in tumor-promoting cells.
- Functional assays including TET3 knockdown, in vivo tumor growth, and sphere formation assays.
- Assessment of stemness-associated gene expression (SOX2, NANOG) and DNA 5-hydroxymethylation (5hmC) levels.
Main Results:
- TET3 is highly expressed in bladder tumor-promoting cells.
- TET3 knockdown significantly inhibited cell proliferation, migration, and in vivo tumor growth.
- TET3 knockdown reduced stemness markers (SOX2, NANOG) and sphere formation, impairing cancer cell self-renewal.
- TET3 regulates key tumor-related genes/pathways and affects DNA 5hmC levels.
Conclusions:
- TET3 promotes bladder cancer growth and progression by modulating the cancer stemness pathway.
- TET3 plays a critical role in maintaining cancer cell stemness and self-renewal capacity.
- TET3 represents a promising therapeutic target and prognostic marker for bladder cancer.
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