Systemic siRNA delivery to tumors by cell-penetrating α-helical polypeptide-based metastable nanoparticles

Yang Liu1, Ziyuan Song, Nan Zheng

  • 1Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Illinois 61801, USA. jianjunc@illinois.edu.

Nanoscale
|August 3, 2018
PubMed

Insights

This study developed novel nanoparticles for targeted siRNA cancer therapy. These nanoparticles overcome biological barriers, enhancing delivery and efficacy for improved cancer treatment outcomes.

Area of Science:

  • Biomaterials Science
  • Nanotechnology
  • Cancer Therapeutics

Background:

  • Systemic, non-viral small interfering RNA (siRNA) delivery for cancer treatment faces challenges including poor serum stability, non-specific tissue interactions, and inefficient in vivo gene knockdown.
  • Current cationic materials for siRNA condensation exhibit limitations in stability and cellular uptake.

Purpose of the Study:

  • To design a metastable, cancer-targeting siRNA delivery system with charge-reversal properties to overcome biological barriers for enhanced systemic siRNA delivery.
  • To improve serum stability, tumor accumulation, penetration, cellular internalization, and endolysosomal escape for effective gene knockdown in cancer treatment.

Main Methods:

  • Developed metastable nanoparticles (PSPP NPs) using a cationic polypeptide (PVBLG-8) and an anionic polypeptide (PLG) for siRNA encapsulation and surface charge reversal.
  • Utilized the enhanced permeability and retention (EPR) effect for tumor accumulation and pH-triggered dissociation of PLG coating in the tumor microenvironment to expose the cell-penetrating PVBLG-8.

Main Results:

  • PSPP NPs demonstrated enhanced serum stability, tumor accumulation, penetration, and cellular uptake compared to non-coated nanoparticles (PSP NPs) and commercial reagents.
  • siRNA targeting epidermal growth factor receptor (EGFR) encapsulated in PSPP NPs effectively silenced EGFR and inhibited glioblastoma tumor growth in vitro and in vivo.
  • The charge-reversal mechanism facilitated efficient endolysosomal escape and improved gene silencing efficacy.

Conclusions:

  • The developed metastable, charge-reversal nanoparticles offer a facile and unique design approach to overcome biological barriers for systemic siRNA delivery in cancer therapy.
  • This strategy holds significant promise for advancing non-viral siRNA-based cancer treatments by improving delivery efficiency and therapeutic outcomes.

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