Related Experiment Video
Updated: Sep 17, 2025

An Orthotopic Bladder Tumor Model and the Evaluation of Intravesical saRNA Treatment
Published on: July 28, 2012
mTOR pathway targeted inhibition via Rapamycin-loaded PLGA nanoparticles for enhanced bladder cancer therapy
Nour-Elhoda El-Hefnawy1, Magdy M Youssef1, Hassan Abol-Enein2
1Department of Chemistry, Biochemistry Division, Faculty of Science, Mansoura University, Mansoura, Egypt.
Abstract:
Bladder cancer remains a major clinical challenge due to high recurrence rates, metastatic potential, and the development of drug resistance driven by complex gene regulation. Targeting the PI3K/AKT/mTOR pathway is a promising strategy, as its dysregulation promotes tumor growth and survival. Rapamycin, Everolimus, Temsirolimus and Other ATP-competitive inhibitors work by binding to the mTOR protein and preventing it from activating downstream signaling pathways that control cell growth and division. However, the therapeutic potential of Rapamycin, an mTORC1 inhibitor, is limited by poor solubility, low bioavailability, and non-specific distribution. This study explores the use of poly (lactic-co-glycolic acid) nanoparticles to encapsulate Rapamycin for enhanced delivery and controlled release in bladder cancer therapy. Drug release followed the Korsmeyer-Peppas model, indicating sustained release behavior. In vitro cytotoxicity assays demonstrated that Rapa-PLGA NPs significantly reduced the IC50 compared to free Rapamycin in T24 bladder cancer cells. Wound healing assays revealed substantial inhibition of cancer cell migration. Gene expression analysis showed that Rapa-PLGA NPs effectively downregulated mTOR, HIF-α, BCL-2, and ABCC1, while upregulating FOXO1 and MAPK, promoting apoptosis and reducing drug resistance. These findings highlight the potential of Rapa-PLGA NPs to enhance Rapamycin's therapeutic efficacy by integrating nanotechnology-driven delivery with gene regulatory mechanisms. This nanoparticle-based system presents a promising strategy for improving targeted bladder cancer therapy and overcoming drug resistance, warranting further in vivo investigation.
Insights
Poly (lactic-co-glycolic acid) nanoparticles loaded with Rapamycin (Rapa-PLGA NPs) show promise for bladder cancer treatment. These nanoparticles enhance drug delivery, reduce cancer cell growth and migration, and overcome drug resistance by modulating gene expression.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Bladder cancer presents significant challenges due to high recurrence and drug resistance.
- The PI3K/AKT/mTOR pathway is frequently dysregulated in bladder cancer, making it a therapeutic target.
- Rapamycin (an mTORC1 inhibitor) has limitations including poor solubility and bioavailability.
Purpose of the Study:
- To develop and evaluate poly (lactic-co-glycolic acid) nanoparticles (Rapa-PLGA NPs) for enhanced Rapamycin delivery in bladder cancer.
- To investigate the in vitro efficacy of Rapa-PLGA NPs in inhibiting bladder cancer cell growth, migration, and overcoming drug resistance.
Main Methods:
- Rapamycin was encapsulated into poly (lactic-co-glycolic acid) nanoparticles (Rapa-PLGA NPs).
- Drug release kinetics were analyzed using the Korsmeyer-Peppas model.
- In vitro cytotoxicity, wound healing, and gene expression analyses were performed on T24 bladder cancer cells.
Main Results:
- Rapa-PLGA NPs demonstrated sustained drug release.
- Rapa-PLGA NPs significantly reduced the IC50 and inhibited cancer cell migration compared to free Rapamycin.
- Gene expression analysis revealed downregulation of mTOR, HIF-α, BCL-2, and ABCC1, and upregulation of FOXO1 and MAPK.
Conclusions:
- Rapa-PLGA NPs enhance Rapamycin's therapeutic efficacy for bladder cancer by improving delivery and modulating key genes.
- This nanoparticle system offers a promising strategy to overcome drug resistance in bladder cancer therapy.
- Further in vivo studies are warranted to validate the therapeutic potential of Rapa-PLGA NPs.
Related Concept Videos
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
Targeted Cancer Therapies
There are several types of targeted therapies against...
PI3K/mTOR/AKT Signaling Pathway

