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Updated: May 25, 2026

Patient-derived Orthotopic Xenograft Models for Human Urothelial Cell Carcinoma and Colorectal Cancer Tumor Growth and Spontaneous Metastasis
Published on: May 12, 2019
Urothelial tumor initiation requires deregulation of multiple signaling pathways: implications in target-based
Haiping Zhou1, Hong-ying Huang, Ellen Shapiro
1Department of Urology, NYU Cancer Institute, New York University School of Medicine, New York, NY 10016, USA.
Abstract:
Although formation of urothelial carcinoma of the bladder (UCB) requires multiple steps and proceeds along divergent pathways, the underlying genetic and molecular determinants for each step and pathway remain undefined. By developing transgenic mice expressing single or combinatorial genetic alterations in urothelium, we demonstrated here that overcoming oncogene-induced compensatory tumor barriers was critical for urothelial tumor initiation. Constitutively active Ha-ras (Ras*) elicited urothelial hyperplasia that was persistent and did not progress to tumors over a 10 months period. This resistance to tumorigenesis coincided with increased expression of p53 and all pRb family proteins. Expression of a Simian virus 40 T antigen (SV40T), which disables p53 and pRb family proteins, in urothelial cells expressing Ras* triggered early-onset, rapidly-growing and high-grade papillary UCB that strongly resembled the human counterpart (pTaG3). Urothelial cells expressing both Ras* and SV40T had defective G(1)/S checkpoint, elevated Ras-GTPase and hyperactivated AKT-mTOR signaling. Inhibition of the AKT-mTOR pathway with rapamycin significantly reduced the size of high-grade papillary UCB but hyperactivated mitogen-activated protein kinase (MAPK). Inhibition of AKT-mTOR, MAPK and STAT3 altogether resulted in much greater tumor reduction and longer survival than did inhibition of AKT-mTOR pathway alone. Our studies provide the first experimental evidence delineating the combinatorial genetic events required for initiating high-grade papillary UCB, a poorly defined and highly challenging clinical entity. Furthermore, they suggest that targeted therapy using a single agent such as rapamycin may not be highly effective in controlling high-grade UCB and that combination therapy employing inhibitors against multiple targets are more likely to achieve desirable therapeutic outcomes.
Insights
Overcoming tumor barriers is key for urothelial carcinoma of the bladder (UCB) initiation. Combining genetic alterations like Ha-ras (Ras*) and SV40 T antigen (SV40T) triggers high-grade UCB, suggesting combination therapy is vital.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Urothelial carcinoma of the bladder (UCB) formation involves multiple genetic steps, but determinants remain unclear.
- Oncogene-induced compensatory tumor barriers impede urothelial tumor initiation.
Purpose of the Study:
- To define genetic and molecular events critical for high-grade UCB initiation.
- To investigate the role of oncogene-induced tumor barriers in UCB development.
Main Methods:
- Utilized transgenic mice with single or combinatorial genetic alterations in urothelium.
- Expressed constitutively active Ha-ras (Ras*) and Simian virus 40 T antigen (SV40T) in urothelial cells.
- Assessed tumor initiation, progression, signaling pathways (AKT-mTOR, MAPK, STAT3), and therapeutic interventions.
Main Results:
- Ras* alone caused persistent hyperplasia but not tumors, associated with increased p53 and pRb.
- Co-expression of Ras* and SV40T triggered early-onset, high-grade papillary UCB with defective checkpoints and hyperactivated AKT-mTOR signaling.
- Rapamycin (AKT-mTOR inhibitor) reduced tumor size but increased MAPK activity.
- Combined inhibition of AKT-mTOR, MAPK, and STAT3 significantly reduced tumors and improved survival.
Conclusions:
- Defines combinatorial genetic events essential for high-grade UCB initiation.
- Highlights the inadequacy of single-agent therapy for high-grade UCB.
- Supports combination therapy targeting multiple pathways for effective UCB treatment.
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