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Updated: May 5, 2026

Bioluminescent Orthotopic Model of Pancreatic Cancer Progression
Published on: June 28, 2013
Target-Specific Locked Nucleic Acid Gapmer Decreases Growth and Metastases of Pancreatic Cancer
Jill P Smith1, Narayan Shivapurkar1, Wenqiang Chen1
1Department of Medicine, Georgetown University, Washington, District of Columbia.
Abstract:
Precision medicine and genomic profiling with target-specific therapy directed to cancer cell receptors have improved the outcome of many recalcitrant cancers. Strategies to deliver gene therapy to downregulate cancer driver genes have been challenging in vivo. Pancreatic cancer has the poorest survival of all solid tumors due to the lack of target-specific therapies and its characteristic tumor microenvironment with dense fibrosis and abundant immunosuppressive M2-polarized macrophages. In this study, we designed a panel of locked nucleic acid gapmer antisense oligonucleotides directed to human gastrin mRNA. We tested their efficacy by downregulation of mRNA and growth inhibition in vitro. The most effective gapmer, gapmer-90, was modified for in vivo therapeutics by thiol-maleimide click chemistry to render it target-specific to the cholecystokinin-B receptor. This G-protein-coupled receptor is overexpressed in pancreatic cancers. Mice bearing orthotopic human pancreatic tumors were treated with PBS (control), an untargeted gapmer, or receptor-targeted gapmers at low (60 nmol/L) and high (120 nmol/L) concentrations. Uptake of the gapmer was measured in tissues using a complementary probe. We found that the receptor-targeted gapmer significantly enhanced uptake in vivo and decreased growth and metastases of human pancreatic tumors in a dose-related fashion without off-target toxicity. The target-specific gapmer also altered the tumor microenvironment by decreasing fibrosis and reducing M2-polarized macrophages. Collectively, our results provide evidence that locked nucleic acid gapmers are a unique tool to deliver antisense oligonucleotides for therapy to recalcitrant cancers. Rendering the gapmers target-specific allows for selective uptake by receptor internalization, improving efficacy and decreasing off-target toxicity.
Insights
Targeted gene therapy using locked nucleic acid (LNA) gapmer antisense oligonucleotides (ASO) effectively reduced pancreatic tumor growth and metastasis in vivo. This novel approach enhanced therapeutic delivery by targeting cancer cell receptors, improving efficacy and reducing toxicity.
Area of Science:
- Oncology
- Molecular Biology
- Gene Therapy
Background:
- Precision medicine offers targeted therapies for recalcitrant cancers, but in vivo gene delivery remains a challenge.
- Pancreatic cancer exhibits poor survival due to limited targeted therapies and a suppressive tumor microenvironment.
- Antisense oligonucleotides (ASO) can downregulate cancer driver genes, but efficient in vivo delivery is difficult.
Purpose of the Study:
- To design and evaluate locked nucleic acid (LNA) gapmer antisense oligonucleotides (ASO) for targeted pancreatic cancer therapy.
- To assess the in vivo efficacy of receptor-targeted LNA gapmers in reducing tumor growth and metastasis.
- To investigate the impact of targeted LNA gapmers on the pancreatic tumor microenvironment.
Main Methods:
- Developed LNA gapmer antisense oligonucleotides (ASO) targeting human gastrin mRNA.
- Modified an effective gapmer (Gapmer-90) for receptor-specific delivery to the CCK-B receptor via click chemistry.
- Administered targeted and untargeted gapmers to mice with orthotopic human pancreatic tumors and assessed tumor growth, metastasis, and tissue uptake.
Main Results:
- Receptor-targeted LNA gapmers significantly enhanced in vivo uptake in pancreatic tumors.
- Targeted gapmers reduced tumor growth and metastasis in a dose-dependent manner without off-target toxicity.
- Treatment with targeted gapmers decreased tumor fibrosis and the population of M2-polarized macrophages.
Conclusions:
- LNA gapmers represent a promising tool for delivering antisense oligonucleotides for cancer therapy.
- Targeting gapmers to specific receptors enhances selective uptake, improving therapeutic efficacy and reducing toxicity.
- This strategy shows potential for treating pancreatic cancer by modulating the tumor microenvironment and inhibiting tumor progression.

