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An Orthotopic Bladder Tumor Model and the Evaluation of Intravesical saRNA Treatment
Published on: July 28, 2012
Intravesical Delivery of P21 mRNA-Loaded Lipid Nanoparticles as a Tumor Suppressor Replacement Therapy for Bladder
Jie Zeng1,2, Ziyi Cao1,2, Chenghe Wang3
1Department of Biochemistry and Molecular Cell Biology, Shanghai Key Laboratory for Tumor Microenvironment and Inflammation, Shanghai Jiao Tong University School of Medicine, Shanghai, People's Republic of China.
Abstract:
Bladder cancer is characterized by high recurrence rates and limited long-term benefit from current intravesical therapies, highlighting the need for alternative localized treatment strategies. Among tumor suppressors altered in bladder cancer, CDKN1A, which encodes the cyclin-dependent kinase inhibitor p21, is recurrently inactivated and downregulated, supporting its potential as a target for tumor suppressor replacement. Here, we developed a non-viral therapeutic strategy based on chemically modified p21 mRNA encapsulated in lipid nanoparticles (p21-LNP) for intravesical delivery. Public dataset analysis, tissue microarray staining, and cell line validation showed that p21 expression decreases during bladder cancer progression and that endogenous p21 protein levels are very low in bladder cancer cells. In vitro, synthetic p21 mRNA achieved robust nuclear p21 expression and markedly suppressed bladder cancer cell proliferation, viability, and clonogenicity. Mechanistically, p21 restoration reduced retinoblastoma protein (Rb) phosphorylation, decreased Cyclin E, Cyclin B, and proliferating cell nuclear antigen (PCNA) expression, increased γ-H2A.X accumulation, and promoted apoptosis. The resulting p21-LNP showed favorable physicochemical properties for intravesical administration. In vivo, reporter mRNA-LNP mediated strong bladder-localized protein expression with limited and transient systemic distribution. In an orthotopic bladder cancer mouse model, repeated intravesical administration of p21-LNP significantly suppressed tumor growth, restored p21 expression in bladder tissues, and preserved urothelial architecture without obvious adverse effects. Together, these findings establish intravesical delivery of p21 mRNA-LNP as a clinically compatible strategy for localized tumor suppressor replacement therapy in bladder cancer.
Insights
This study introduces a novel non-viral therapy using p21 mRNA encapsulated in lipid nanoparticles (p21-LNP) for bladder cancer. Intravesical delivery of p21-LNP effectively suppresses tumor growth and restores tumor suppressor function in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Biotechnology
Background:
- Bladder cancer exhibits high recurrence rates and limited efficacy of current intravesical therapies.
- The tumor suppressor CDKN1A (p21) is frequently inactivated in bladder cancer, indicating its therapeutic potential.
- There is a critical need for novel, localized treatment strategies for bladder cancer.
Purpose of the Study:
- To develop and evaluate a non-viral therapeutic strategy for localized bladder cancer treatment using p21 mRNA delivered via lipid nanoparticles (p21-LNP).
- To investigate the efficacy of intravesical p21-LNP delivery in suppressing bladder cancer progression and restoring tumor suppressor function.
Main Methods:
- Analysis of public datasets and tissue microarrays to confirm decreased p21 expression in bladder cancer.
- In vitro studies using synthetic p21 mRNA to assess its effects on bladder cancer cell proliferation, viability, and apoptosis.
- Development and in vivo evaluation of p21-LNP for intravesical delivery in an orthotopic bladder cancer mouse model.
Main Results:
- Synthetic p21 mRNA effectively suppressed bladder cancer cell proliferation, viability, and clonogenicity in vitro.
- p21 restoration modulated key cell cycle regulators (Rb, Cyclin E, Cyclin B, PCNA) and induced apoptosis.
- In vivo intravesical administration of p21-LNP demonstrated significant bladder-localized protein expression, suppressed tumor growth, and preserved tissue architecture in a mouse model.
Conclusions:
- Intravesical delivery of p21 mRNA-LNP represents a promising, clinically compatible strategy for localized tumor suppressor replacement therapy in bladder cancer.
- This approach offers a potential alternative to current therapies with high recurrence rates and limited long-term benefits.
