Novel delivery system for T-oligo using a nanocomplex formed with an alpha helical peptide for melanoma therapy

Srijayaprakash B Uppada1, Terrianne Erickson1, Luke Wojdyla1

  • 1Department of Biomedical Sciences, University of Illinois College of Medicine at Rockford, Rockford, IL, USA.

Insights

Novel T-oligo-PVBLG nanocomplexes enhance anticancer effects by increasing cellular uptake and inducing apoptosis and senescence. This peptide-nucleic acid complex shows promise as an effective therapeutic for melanoma, particularly through p73-mediated pathways.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Nanotechnology

Background:

  • Oligonucleotides targeting telomeres (T-oligos) can induce cancer cell death but have poor in vivo stability.
  • Developing stable and effective T-oligo formulations is crucial for therapeutic applications.

Purpose of the Study:

  • To investigate the antitumor efficacy of T-oligos complexed with a novel peptide (PVBLG-8) in a p53-null melanoma model.
  • To elucidate the mechanism of action of T-oligo-PVBLG nanocomplexes in cancer therapy.

Main Methods:

  • In vitro and in vivo studies using a p53-null melanoma cell line (MM-AN) and immunodeficient mice.
  • Assessment of cellular uptake, growth inhibition, tumor volume reduction, apoptosis, senescence, and gene expression.
  • Utilized immunofluorescence, flow cytometry, and siRNA knockdown of p73.

Main Results:

  • T-oligo-PVBLG nanocomplexes showed a 15-fold increase in cellular uptake and a 3-fold increase in growth inhibition compared to T-oligos alone.
  • In vivo, nanocomplex treatment led to a 3-fold reduction in tumor volume, associated with increased apoptosis and thrombospondin-1 expression.
  • T-oligo treatment induced senescence, upregulated melanoma antigens (MART-1, tyrosinase, thrombospondin-1), and this effect was dependent on p73.

Conclusions:

  • The T-oligo-PVBLG nanocomplex is an effective strategy to enhance T-oligo delivery and antitumor activity.
  • p73 plays a critical role in mediating the anticancer effects of T-oligos, including the upregulation of tumor-associated antigens.
  • This novel nanocomplex represents a promising therapeutic approach for melanoma treatment.

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