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Updated: Apr 10, 2026

An Orthotopic Bladder Tumor Model and the Evaluation of Intravesical saRNA Treatment
Published on: July 28, 2012
Patient Mutation Directed shRNA Screen Uncovers Novel Bladder Tumor Growth Suppressors
Jonathan Hensel1, Jason E Duex1, Charles Owens1
1Departments of Surgery (Urology) and Pharmacology, University of Colorado, Aurora, Colorado.
Unlabelled:
Next-generation sequencing (NGS) of human bladder cancer has revealed many gene alterations compared with normal tissue, with most being predicted to be "loss of function." However, given the high number of alterations, evaluating the functional impact of each is impractical. Here, we develop and use a high-throughput, in vivo strategy to determine which alterations are loss of function in tumor growth suppressors. Genes reported as altered by NGS in bladder cancer patients were bioinformatically processed by MutationTaster and MutationAssessor, with 283 predicted as loss of function. An shRNA lentiviral library targeting these genes was transduced into T24 cells, a nontumorigenic human bladder cancer cell line, followed by injection into mice. Tumors that arose were sequenced and the dominant shRNA constructs were found to target IQGAP1, SAMD9L, PCIF1, MED1, and KATNAL1 genes. In vitro validation experiments revealed that shRNA molecules directed at IQGAP1 showed the most profound increase in anchorage-independent growth of T24 cells. The clinical relevance of IQGAP1 as a tumor growth suppressor is supported by the finding that its expression is lower in bladder cancer compared with benign patient urothelium in multiple independent datasets. Lower IQGAP1 protein expression associated with higher tumor grade and decreased patient survival. Finally, depletion of IQGAP1 leads to increased TGFBR2 with TGFβ signaling, explaining in part how reduced IQGAP1 promotes tumor growth. These findings suggest IQGAP1 is a bladder tumor growth suppressor that works via modulating TGFβ signaling and is a potentially clinically useful biomarker.
Implications:
This study used gene mutation information from patient-derived bladder tumor specimens to inform the development of a screen used to identify novel tumor growth suppressors. This included identification of the protein IQGAP1 as a potent bladder cancer growth suppressor.
Insights
Researchers identified IQ motif containing GTPase activating protein 1 (IQGAP1) as a key bladder cancer growth suppressor. Lower IQGAP1 levels correlate with increased tumor grade and reduced survival, suggesting its role in bladder tumor progression.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Next-generation sequencing (NGS) reveals numerous gene alterations in bladder cancer, many predicted as loss-of-function.
- Assessing the functional impact of each alteration individually is challenging due to their high number.
Purpose of the Study:
- To develop and implement a high-throughput in vivo strategy to identify functional loss-of-function alterations in bladder cancer tumor suppressors.
- To pinpoint specific genes that, when mutated, promote bladder tumor growth.
Main Methods:
- Bioinformatic analysis of NGS data predicted 283 loss-of-function alterations.
- A lentiviral shRNA library targeting these genes was used in T24 bladder cancer cells, followed by in vivo tumor formation in mice.
- Sequencing of tumors identified dominant shRNA targets, with subsequent in vitro validation and analysis of IQGAP1 expression and signaling pathways.
Main Results:
- IQGAP1, SAMD9L, PCIF1, MED1, and KATNAL1 were identified as key targets of loss-of-function alterations.
- IQGAP1 depletion significantly increased anchorage-independent growth of T24 cells.
- Lower IQGAP1 expression in bladder tumors correlated with higher grade, decreased survival, and was linked to increased TGFβ signaling.
Conclusions:
- IQGAP1 functions as a critical tumor growth suppressor in bladder cancer.
- Reduced IQGAP1 expression promotes tumor growth, partly through modulation of TGFβ signaling.
- IQGAP1 represents a potential therapeutic target and a clinically relevant biomarker for bladder cancer.

