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mTORC2 activation is regulated by the urokinase receptor (uPAR) in bladder cancer
Andrew M Hau1, Mariah Z Leivo1, Andrew S Gilder1
1Departments of Pathology, University of California, San Diego, 9500 Gilman Drive, La Jolla, CA 92093, United States.
Abstract:
Mammalian target of rapamycin complex 2 (mTORC2) has been identified as a major regulator of bladder cancer cell migration and invasion. Upstream pathways that mediate mTORC2 activation remain poorly defined. Urokinase-type plasminogen activator receptor (uPAR) is a GPI-anchored membrane protein and known activator of cell-signaling. We identified increased uPAR expression in 94% of invasive human bladder cancers and in 54-71% of non-invasive bladder cancers, depending on grade. Normal urothelium was uPAR-immunonegative. Analysis of publicly available datasets identified uPAR gene amplification or mRNA upregulation in a subset of bladder cancer patients with reduced overall survival. Using biochemical approaches, we showed that uPAR activates mTORC2 in bladder cancer cells. Highly invasive bladder cancer cell lines, including T24, J82 and UM-UC-3 cells, showed increased uPAR mRNA expression and protein levels compared with the less aggressive cell lines, UROtsa and RT4. uPAR gene-silencing significantly reduced phosphorylation of Serine-473 in Akt, an mTORC2 target. uPAR gene-silencing also reduced bladder cancer cell migration and Matrigel invasion. S473 phosphorylation was observed by immunohistochemistry in human bladder cancers only when the tumors expressed high levels of uPAR. S473 phosphorylation was not controlled by uPAR in bladder cancer cell lines that are PTEN-negative; however, this result probably did not reflect altered mTORC2 regulation. Instead, PTEN deficiency de-repressed alternative kinases that phosphorylate S473. Our results suggest that uPAR and mTORC2 are components of a single cell-signaling pathway. Targeting uPAR or mTORC2 may be beneficial in patients with bladder cancer.
Insights
Urokinase-type plasminogen activator receptor (uPAR) activates mTORC2 signaling, driving bladder cancer cell invasion. Targeting uPAR or mTORC2 may offer new therapeutic strategies for bladder cancer patients.
Area of Science:
- Oncology
- Cell Biology
- Molecular Signaling
Background:
- Mammalian target of rapamycin complex 2 (mTORC2) regulates bladder cancer cell migration and invasion.
- Upstream pathways controlling mTORC2 activation are not well understood.
- Urokinase-type plasminogen activator receptor (uPAR) is a cell-signaling activator.
Purpose of the Study:
- To investigate the role of uPAR in activating mTORC2 signaling in bladder cancer.
- To determine the correlation between uPAR expression and bladder cancer aggressiveness.
- To explore the therapeutic potential of targeting the uPAR-mTORC2 pathway.
Main Methods:
- Immunohistochemistry to assess uPAR expression in human bladder cancers.
- Analysis of public datasets for uPAR gene amplification and mRNA levels.
- Biochemical assays to study uPAR-mediated mTORC2 activation in bladder cancer cell lines.
- Gene silencing techniques to evaluate the impact of uPAR on cell migration and invasion.
Main Results:
- Increased uPAR expression was found in 94% of invasive and 54-71% of non-invasive bladder cancers; normal urothelium was negative.
- uPAR gene amplification or mRNA upregulation correlated with reduced survival in bladder cancer patients.
- uPAR activated mTORC2, evidenced by increased Akt Serine-473 phosphorylation, and its silencing reduced bladder cancer cell migration and invasion.
- PTEN-negative bladder cancer cell lines showed altered S473 phosphorylation regulation, suggesting alternative kinase involvement.
Conclusions:
- uPAR and mTORC2 function as a single cell-signaling pathway in bladder cancer.
- uPAR expression is a potential biomarker for bladder cancer invasiveness.
- Targeting uPAR or mTORC2 presents a promising therapeutic strategy for bladder cancer.
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