Effective delivery of siRNA into cancer cells and tumors using well-defined biodegradable cationic star polymers

Cyrille Boyer1, Joann Teo, Phoebe Phillips

  • 1Tumour Biology and Targeting Program, Children's Cancer Institute Australia, Lowy Cancer Research Centre, University of New South Wales, NSW, Australia.

Insights

Novel cationic star polymers effectively deliver short interfering RNA (siRNA) to pancreatic and lung cancer cells. These biodegradable polymers form non-toxic nanoparticles that silence target genes, offering a promising new therapy for difficult-to-treat cancers.

Area of Science:

  • Biomaterials Science
  • Nanotechnology
  • Cancer Therapeutics

Background:

  • Cancer remains a leading cause of death globally, with pancreatic and lung cancers exhibiting high mortality rates.
  • Chemotherapy resistance and metastasis present significant challenges in current cancer treatment strategies.
  • Targeting and silencing disease-causing genes is a crucial unmet need for novel cancer therapies.

Purpose of the Study:

  • To design and synthesize novel biodegradable cationic star polymers for efficient siRNA delivery.
  • To evaluate the potential of these star polymers as non-toxic vehicles for gene silencing in pancreatic and lung cancer cells.
  • To assess the in vitro and in vivo efficacy of siRNA delivered by star polymers in reducing target gene expression.

Main Methods:

  • Synthesis of biodegradable cationic star polymers using reversible addition-fragmentation transfer polymerization (RAFT) and chain extension.
  • Characterization of star polymers using transmission electron microscopy, dynamic light scattering, ζ potential, and gel permeation chromatography.
  • Formation and characterization of star polymer-siRNA nanoparticles, followed by in vitro and in vivo gene silencing assays.

Main Results:

  • Well-defined, biodegradable cationic star polymers were successfully synthesized and characterized.
  • Star polymers efficiently complexed with siRNA to form uniform, non-toxic nanoparticles.
  • In vitro studies demonstrated significant siRNA uptake and target gene mRNA/protein reduction in cancer cells.
  • In vivo studies showed 50% target gene silencing in a tumor setting with clinically relevant siRNA amounts.

Conclusions:

  • Cationic star polymers represent a novel and effective delivery system for siRNA in pancreatic and lung cancers.
  • These biodegradable nanoparticles offer a promising platform for developing new therapies against chemotherapy resistance and metastasis.
  • The study provides the first evidence of well-defined small cationic star polymers for active siRNA delivery in these cancer types.

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