Lysosome-targeted ROS-responsive graphene oxide-based drug delivery system to overcome tumor DOX resistance

Fengzhu Yang1, Jintao Deng1, Xinyu Yu1

  • 1School of Life Science and Medicine, Shandong University of Technology, Zibo, Shandong 255000, China.

Insights

A novel nanodrug delivery system (Dp/DGPP) overcomes tumor lysosomal resistance by increasing reactive oxygen species (ROS) to disrupt lysosomes. This enhances doxorubicin (DOX) release and efficacy against drug-resistant cancer cells.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Cancer Therapy

Background:

  • Lysosomal sequestration of doxorubicin (DOX) limits its efficacy in drug-resistant tumors.
  • Tumor cells utilize lysosomal mechanisms to resist chemotherapy, reducing intracellular drug concentrations.

Purpose of the Study:

  • To develop a nanodrug delivery system (Dp/DGPP) to overcome lysosomal resistance in tumors.
  • To enhance the therapeutic effect of DOX in drug-resistant cancer cells.

Main Methods:

  • Constructed Dp/DGPP using graphene oxide-selenium-selenium-DOX, polyethyleneimine-pluronic F127, and Dp44mT.
  • Investigated the ROS-dependent release of DOX and its effect on lysosomal membrane permeability.
  • Assessed cytotoxicity, cellular uptake, and effects on Pgp, LC3-II, and P62 protein expression.
  • Evaluated in vivo tumor inhibition in a xenograft model.

Main Results:

  • Dp/DGPP demonstrated significant ROS-dependent DOX release and enhanced cytotoxicity against MCF-7/ADR cells (IC50 = 6.71 μM).
  • Increased intracellular DOX accumulation (1.5-fold) and lysosomal dysfunction were observed.
  • Dp/DGPP treatment reduced Pgp expression while increasing LC3-II and P62, indicating blocked autophagic flux.
  • Achieved a 70% inhibition rate in MCF-7/ADR tumors in vivo.

Conclusions:

  • The Dp/DGPP system effectively overcomes tumor lysosomal resistance by leveraging ROS amplification.
  • This nanodrug delivery strategy enhances DOX efficacy and promotes cancer cell death.
  • Dp/DGPP presents a promising approach for treating DOX-resistant cancers.

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