Related Experiment Video
Updated: May 13, 2025

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Selective targeting of oncogenic KRAS G12D using peptide nucleic acid oligomers attached to cell-penetrating peptides
Abstract:
KRAS is a proto-oncogene that contains activating mutations in up to 30% of tumors. Many conventional therapies inhibit both cancerous and normal cells, which may cause toxicity. Thus, programmable mutant-selective targeted inhibitors are needed. Peptide nucleic acids (PNAs) incorporate base sequences analogous to DNA, with modified peptide backbones instead of ribose-phosphate backbones, allowing PNAs to hybridize with DNA with high avidity to suppress transcription. Here, we developed KRAS G12D-selective PNA oligomers with novel cell-penetrating flanking regions. Fluorescein-labeled PNA oligomers displayed high uptake rates in cells and nuclei. Exposure to PNA-delivery peptide conjugates resulted in repression of KRAS G12D mRNA and protein expression within 2 hours and lasting up to 48 hours. Varying cell-penetrating peptide (CPP) compositions and lengths of complementary KRAS sequences were tested using dose-response cell viability assays. These experiments identified configurations that were effective at selectively preventing growth of on-target KRAS G12D cells, while relatively sparing off-target KRAS G12C cells. Electrophoretic mobility shift assays demonstrated in vitro binding and selectivity for KRAS G12D DNA sequences. CPP-PNA-G12D-1 was effective against a panel of pancreatic ductal adenocarcinoma cell lines and patient-derived xenografts in vivo . These results show promise for an enhanced PNA-delivery peptide conjugate strategy as both a tool for studying tumors driven by oncogenic point mutations and as a potential therapeutic strategy to selectively target mutant cancer cells.
Insights
Researchers developed peptide nucleic acid (PNA) oligomers to selectively target KRAS G12D mutations in cancer. This novel approach shows promise for targeted cancer therapies with reduced toxicity.
Area of Science:
- Molecular Biology
- Oncology
- Drug Discovery
Background:
- Activating mutations in the KRAS proto-oncogene are prevalent in numerous cancers.
- Conventional therapies often lack specificity, leading to toxicity by affecting both cancerous and normal cells.
- There is a critical need for targeted inhibitors that can selectively target mutant KRAS proteins.
Purpose of the Study:
- To develop and evaluate KRAS G12D-selective peptide nucleic acid (PNA) oligomers for targeted cancer therapy.
- To assess the efficacy and selectivity of PNA-delivery peptide conjugates in preclinical cancer models.
Main Methods:
- Design and synthesis of KRAS G12D-selective PNA oligomers with cell-penetrating peptide (CPP) conjugates.
- Evaluation of cellular uptake, mRNA and protein expression knockdown, and cell viability assays.
- In vitro binding assays (electrophoretic mobility shift assays) and in vivo studies using pancreatic cancer models.
Main Results:
- Fluorescein-labeled PNA oligomers demonstrated high cellular and nuclear uptake.
- PNA-delivery peptide conjugates effectively repressed KRAS G12D mRNA and protein expression within 2 hours, lasting up to 48 hours.
- Optimized CPP-PNA-G12D-1 selectively inhibited the growth of KRAS G12D cells while sparing KRAS G12C cells, and showed efficacy in pancreatic cancer models.
Conclusions:
- Peptide nucleic acid-delivery peptide conjugates represent a promising strategy for selectively targeting KRAS G12D-mutant cancer cells.
- This approach offers potential as a research tool for studying oncogenic point mutations and as a therapeutic strategy for mutant-driven cancers.
More Related Videos
09:04Sequence-specific and Selective Recognition of Double-stranded RNAs over Single-stranded RNAs by Chemically Modified Peptide Nucleic Acids
Published on: September 21, 2017
08:35Therapeutic Gene Delivery and Transfection in Human Pancreatic Cancer Cells using Epidermal Growth Factor Receptor-targeted Gelatin Nanoparticles
Published on: January 4, 2012