ROS-Activatable siRNA-Engineered Polyplex for NIR-Triggered Synergistic Cancer Treatment

Mengjie Zhang1, Yuhua Weng1, Ziyang Cao2

  • 1School of Life Science; Advanced Research Institute of Multidisciplinary Science; Institute of Engineering Medicine; Key Laboratory of Molecular Medicine and Biotherapy, Beijing Institute of Technology, Beijing 100081, P. R. China.

Insights

This study developed a novel polyplex for combined cancer therapy. The reactive oxygen species-activatable complex enhances siRNA and photodynamic therapy delivery, effectively inhibiting tumor growth with good safety.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Cancer Therapeutics

Background:

  • Small interfering RNA (siRNA) and photodynamic therapy (PDT) show promise for cancer treatment but face challenges with effective delivery.
  • Insufficient delivery of therapeutic agents to cancer cells limits the clinical application of siRNA and PDT.

Purpose of the Study:

  • To engineer a novel reactive oxygen species (ROS)-activatable polyplex for combined siRNA-based gene silencing and PDT.
  • To enhance the delivery and efficacy of siRNA and photosensitizer for hepatocellular carcinoma treatment.

Main Methods:

  • Development of a PEGylated cationic polymer complex (PPTC/siRNA) containing a photosensitizer (Ce6) and RRM2-targeting siRNA.
  • Utilizing near-infrared (NIR) light to trigger ROS generation, polyplex disassembly, and enhanced cellular uptake.
  • Evaluating in vitro gene silencing and in vivo tumor inhibition in xenograft models.

Main Results:

  • The polyplex efficiently delivered siRNA and photosensitizer, leading to effective gene silencing and photodynamic killing of cancer cells.
  • PPTC/siRNA demonstrated synergistic inhibition of tumor growth in both cell line-derived and patient-derived xenograft models.
  • The developed polyplex exhibited favorable safety profiles in cellular and animal studies.

Conclusions:

  • The engineered ROS-activatable polyplex provides a novel strategy for combined RNA interference and PDT cancer therapy.
  • NIR-triggered polyplex disassembly enhances therapeutic agent delivery and efficacy.
  • This approach offers a promising platform for advanced cancer treatment with improved safety and effectiveness.

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