Targeted delivery of RNA-cleaving DNA enzyme (DNAzyme) to tumor tissue by transferrin-modified, cyclodextrin-based

Suzie H Pun1, Frederik Tack, Nathalie C Bellocq

  • 1Insert Therapeutics, Inc., Pasadena, California, USA. spun@u.washington.edu

Insights

Novel transferrin-modified nanoparticles effectively deliver DNAzymes to tumors for cancer therapy. These nanoparticles concentrate in tumors, showing promise for targeted oligonucleotide delivery in vivo.

Area of Science:

  • Biotechnology
  • Nanomedicine
  • Molecular Biology

Background:

  • Short nucleic acid sequences, like DNAzymes, show anti-cancer activity against oncogenes (bcl-2, bcr-abl, c-myc) via antigene/antisense mechanisms.
  • Efficient in vivo delivery of oligonucleotides is a significant hurdle for their therapeutic use.

Purpose of the Study:

  • To develop transferrin-modified nanoparticles for targeted delivery of DNAzymes to tumors.
  • To evaluate the biodistribution and clearance kinetics of these nanoparticles in mice using various administration routes.

Main Methods:

  • DNAzymes were complexed with beta-cyclodextrin-based polymers to form sub-50 nm polyplexes.
  • Polyplexes were surface-modified with adamantane-PEG for steric stabilization and transferrin for tumor targeting.
  • Fluorescently-labeled DNAzyme-loaded nanoparticles were administered to tumor-bearing mice via intravenous, intraperitoneal, and subcutaneous routes.

Main Results:

  • DNAzymes encapsulated in polyplexes were concentrated and retained in tumor tissue and organs.
  • Unformulated DNAzymes were rapidly eliminated within 24 hours.
  • Intravenous and intraperitoneal bolus injections yielded the highest tumor site signal; only intravenous bolus showed tumor cell uptake, requiring transferrin for intracellular delivery.

Conclusions:

  • Transferrin-modified nanoparticles provide effective in vivo delivery and tumor retention of DNAzymes.
  • Targeted delivery strategies are crucial for intracellular oligonucleotide delivery and therapeutic efficacy.
  • Nanoparticle formulation significantly improves DNAzyme pharmacokinetics and biodistribution for cancer therapy.

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