Cholecystokinin Receptor-Targeted Polyplex Nanoparticle Inhibits Growth and Metastasis of Pancreatic Cancer
Julian Burks1, Sandeep Nadella2, Abdullah Mahmud3
1Department of Oncology, Georgetown University, Washington, District of Columbia.
Background & Aims:
Pancreatic ductal adenocarcinoma (PDAC) remains the most aggressive malignancy with the lowest 5-year survival rate of all cancers in part owing to the lack of tumor-specific therapy and the rapid metastatic nature of this cancer. The gastrointestinal peptide gastrin is a trophic peptide that stimulates growth of PDAC in an autocrine fashion by interaction with the cholecystokinin receptor that is overexpressed in this malignancy.
Methods:
We developed a therapeutic novel polyplex nanoparticle (NP) that selectively targets the cholecystokinin receptor on PDAC. The NP was characterized in vitro and stability testing was performed in human blood. The effects of the target-specific NP loaded with gastrin small interfering RNA (siRNA) was compared with an untargeted NP and with an NP loaded with a scrambled siRNA in vitro and in 2 orthotopic models of PDAC. A polymerase chain reaction metastasis array examined differentially expressed genes from control tumors compared with tumors of mice treated with the targeted polyplex NP.
Results:
The polyplex NP forms a micelle that safely delivers specific gastrin siRNA to the tumor without off-target toxicity. Consistent with these findings, cellular uptake was confirmed only with the targeted fluorescently labeled NP by confocal microscopy in vitro and by IVIS fluorescent based imaging in mice bearing orthotopic pancreatic cancers but not found with untargeted NPs. Tumor uptake and release of the gastrin siRNA NP was verified by decreased cellular gastrin gene expression by quantitative reverse-transcription polymerase chain reaction and peptide expression by immunohistochemistry. Growth of PDAC was inhibited in a dose-related fashion in cell culture and in vivo. The targeted NP therapy completely blocked tumor metastasis and altered tumor-specific genes.
Conclusions:
Our polyplex nanoparticle platform establishes both a strong foundation for the development of receptor-targeted therapeutics and a unique approach for the delivery of siRNA in vivo, thus warranting further exploration of this approach in other types of cancers.
Insights
A novel nanoparticle therapy targets gastrin receptors on pancreatic cancer cells, inhibiting tumor growth and metastasis. This gastrin small interfering RNA (siRNA) delivery system shows promise for treating pancreatic ductal adenocarcinoma (PDAC).
Area of Science:
- Oncology
- Nanomedicine
- Molecular Biology
Background:
- Pancreatic ductal adenocarcinoma (PDAC) is an aggressive cancer with poor survival rates.
- Gastrin, a peptide hormone, promotes PDAC growth via the cholecystokinin receptor.
- Targeting this receptor offers a potential therapeutic strategy for PDAC.
Purpose of the Study:
- To develop and evaluate a novel polyplex nanoparticle (NP) for targeted delivery of gastrin small interfering RNA (siRNA) to PDAC.
- To assess the efficacy of this targeted NP in inhibiting PDAC growth and metastasis in vitro and in vivo.
Main Methods:
- Development of a polyplex NP designed to selectively target the cholecystokinin receptor on PDAC cells.
- In vitro and in vivo characterization of NP stability, cellular uptake, and therapeutic effects.
- Comparison of targeted NP with gastrin siRNA against untargeted NP and scrambled siRNA in orthotopic PDAC models.
Main Results:
- The targeted NP safely delivered gastrin siRNA to tumors with no off-target toxicity.
- Targeted NP demonstrated significant inhibition of PDAC growth in vitro and in vivo.
- Therapy completely blocked tumor metastasis and altered key tumor-specific genes.
Conclusions:
- The developed polyplex nanoparticle platform is a promising tool for receptor-targeted therapeutics.
- This approach offers a novel method for in vivo siRNA delivery.
- Further exploration in other cancer types is warranted.
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