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Antiproliferative activity of a triplex-forming oligonucleotide recognizing a Ki-ras polypurine/polypyrimidine motif
Susanna Cogoi1, Maurizio Ballico, Gian-Maria Bonora
1Dipartimento di Scienze e Tecnologie Biomediche, Piazzale Kolbe 4, Università di Udine, 33100 Udine, Italy.
Abstract:
The Ki-ras gene is frequently mutated and/or overexpressed in human cancer. Since it is suspected to play a key role in the pathogenesis of many tumors, there is interest to search for strategies aiming at the specific inhibition of this oncogene. In this paper, we investigated the capacity of a 20 mer G-rich oligonucleotide (ODN20) conjugated to high molecular weight monomethoxy polyethylene glycol (MPEG) to inhibit the expression of the Ki-ras gene and the proliferation of pancreatic cancer cells. The conjugate, MPEG ODN20, was designed to form a triplex with a critical pur/pyr sequence located in the promoter of the Ki-ras gene. To make the conjugate resistant to endogenous and exogenous nucleases, five phosphorothioate linkages were introduced in its backbone. Confocal microscopy and FACS experiments showed that MPEG ODN20 had a higher capacity to penetrate the cell membranes and accumulate in the nucleus of Panc-1 cells than ODN20. Incubation of Panc-1 cells with MPEG ODN20 reduced specifically the levels of Ki-ras mRNA and RAS protein p21RAS. A single-dose administration of MPEG ODN20 was sufficient to inhibit cell proliferation by about 50% compared with control. By contrast, the antiproliferative activity of the unconjugated ODN20 analog was found to be not significant. Band-shift and footprinting experiments showed that MPEG ODN20 formed a weak triplex (Kd approximately 1.5 microM at 37 degrees C, 50 mM Tris-acetate, pH 7.4, 10 mM NaCl, 10 mM MgCl2, 5 mM spermidine) with the Ki-ras pyr/pur motif, suggesting that its bioactivity can hardly be mediated by a triplex-based mechanism. Here, we provide evidence that, in vitro, ODN20 and MPEG ODN20 competitively inhibit the binding to the Ki-ras pur/pyr motif of a nuclear protein, suggesting that the activity of MPEG ODN20 occurs with an aptameric mechanism. The biological implications of this study are discussed.
Insights
A novel conjugate, MPEG ODN20, effectively inhibits Ki-ras gene expression and pancreatic cancer cell proliferation. This G-rich oligonucleotide derivative shows enhanced cellular uptake and activity, suggesting an aptameric mechanism for its anti-cancer effects.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The Ki-ras gene is frequently implicated in human cancer pathogenesis.
- Targeting oncogenes like Ki-ras is a key strategy for cancer therapy.
Purpose of the Study:
- To investigate the efficacy of a G-rich oligonucleotide (ODN20) conjugated to monomethoxy polyethylene glycol (MPEG) in inhibiting Ki-ras gene expression and pancreatic cancer cell proliferation.
- To elucidate the mechanism of action of the MPEG-ODN20 conjugate.
Main Methods:
- Synthesis and characterization of the MPEG-ODN20 conjugate with phosphorothioate linkages.
- Confocal microscopy and FACS for cellular uptake and nuclear accumulation studies.
- Quantitative analysis of Ki-ras mRNA and p21RAS protein levels.
- In vitro proliferation assays and nuclease resistance evaluation.
- Band-shift, footprinting, and protein binding inhibition assays to determine the mechanism of action.
Main Results:
- MPEG-ODN20 demonstrated superior cell membrane penetration and nuclear accumulation in Panc-1 cells compared to unconjugated ODN20.
- Specific reduction in Ki-ras mRNA and p21RAS protein levels was observed following MPEG-ODN20 treatment.
- A single dose of MPEG-ODN20 inhibited pancreatic cancer cell proliferation by approximately 50%.
- Evidence suggests an aptameric mechanism, rather than triplex formation, mediates the bioactivity of MPEG-ODN20.
Conclusions:
- MPEG-ODN20 is a potent inhibitor of Ki-ras expression and pancreatic cancer cell growth.
- The conjugate exhibits enhanced cellular uptake and stability, leading to significant anti-proliferative effects.
- The findings suggest a novel aptameric mechanism for MPEG-ODN20's anti-cancer activity, offering a promising therapeutic strategy.
