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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.
Abstract:
The lysosomes of drug-resistant tumor cells transport doxorubicin (DOX) and its nanocarriers into lysosomes through a sequestration mechanism, making it difficult for DOX to reach the therapeutic concentration. In this study, a nanodrug delivery system (Dp/DGPP) capable of overcoming tumor lysosomal resistance was developed. The system consists of three parts: graphene oxide (GO)-Se-Se-DOX, polyethyleneimine-pluronic F127 (PEI-PF127) for improved biocompatibility, and Dp44mT for amplifying reactive oxygen species (ROS) and disrupting lysosomes. After entering MCF-7/ADR tumor cells, loading Dp44mT can reduce the permeability of lysosomal membranes by increasing the level of ROS. DOX subsequently escapes from lysosomes and breaks the diselenide bond to complete its release. The experiment proved that Dp/DGPP exhibited a significant ROS-dependent response to the release of DOX. Compared with the other groups, it had greater cytotoxicity, and the IC50 value of DOX against MCF-7/ADR cells was as low as 6.71 μM. Compared with the DOX group, the Dp/DGPP group exhibited greater DOX accumulation in MCF-7/ADR cells, with 1.5-fold greater fluorescence at 4 h. Meanwhile, Dp/DGPP can cause lysosomal dysfunction by reducing lysosomal membrane permeability. Western blot results revealed that the expression of Pgp protein decreased in the Dp/DGPP group, whereas the expression of autophagy related LC3-II and P62 protein increased, which confirmed that autophagic flux was blocked. This reduces potential drug resistance and promotes cell death. In addition, the Dp/DGPP group achieved a 70 % inhibition rate in MCF-7/ADR tumors in vivo. This nanodrug delivery system provides a potential strategy to overcome tumor DOX resistance via lysosomes.
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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