Highly Efficient Photoswitchable Smart Polymeric Nanovehicle for Gene and Anticancer Drug Delivery in Triple-Negative

Rishik Patra1, Satyajit Halder2, Rima Saha1

  • 1Gene Therapy and Tissue Engineering Lab, Department of Polymer Science and Technology, University of Calcutta, 92, A.P.C. Road, Kolkata 700009, India.

Insights

This study developed a smart polymer for triple-negative breast cancer, detecting copper ions and delivering anticancer drugs and genes. The light-responsive system shows promise for targeted cancer therapy.

Area of Science:

  • Polymer Chemistry
  • Nanotechnology
  • Biomedical Engineering

Background:

  • Smart drug delivery systems are crucial for treating complex diseases like cancer.
  • Current methods struggle to deliver both drugs and genes effectively and safely.
  • Triple-negative breast cancer (TNBC) requires innovative therapeutic strategies.

Purpose of the Study:

  • To synthesize a photoswitchable polymeric vehicle for TNBC diagnosis and therapy.
  • To create a system capable of detecting Cu2+ ions and delivering anticancer agents and genes.
  • To evaluate the polymer's efficacy, safety, and biocompatibility for TNBC treatment.

Main Methods:

  • Synthesis of a photoswitchable spiropyran-based block copolymer using RAFT polymerization.
  • Cu2+ ion detection using the polymer with a low limit of detection.
  • In vitro studies on doxorubicin release, blood compatibility, and gene transfection efficiency in MDA-MB-231 cells.
  • Analysis of apoptosis induction and cell cycle arrest.

Main Results:

  • The polymer detected Cu2+ ions with a limit of detection of 9.06 nM.
  • Sustained doxorubicin release was observed at acidic pH.
  • High transfection efficiency (82 ± 5%) was achieved in TNBC cells.
  • The polymer demonstrated excellent blood compatibility and induced apoptosis via G2/M phase arrest.

Conclusions:

  • The light-responsive cationic polymer shows potential for TNBC diagnosis.
  • The system effectively delivers anticancer drugs and therapeutic genes.
  • This polymer represents a promising platform for future TNBC theranostics.