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Self-Amplifying Redox Dyshomeostasis: An All-Active Fenton/Diselenium-Based Nanocomposite for Multimechanistic Cancer
Wenxuan Wu1, Yixiu Wang2, Chen Zhou1
1School of Materials and Science and Engineering, East China University of Science and Technology, Shanghai, China.
Abstract:
Anticancer strategies based on redox modulation, including the induction of reactive oxygen species (ROS) generation and the depletion of the antioxidant glutathione (GSH), have shown significant efficacy toward precision tumor suppression. However, the clinical translation of Fenton catalysts focused on Fe2+ is limited by insufficient endogenous tumor substrate H2O2 and high dose requirements for ROS inducers. In addition, the dose-dependent constraint between the efficacy and toxicity of some GSH-depleting agents remains to be resolved. In order to efficiently disrupt the tumor redox homeostasis, an all-active Fe-Se synergistic nanocomposite system (denoted NSe-GFe) is designed in this study by combining the block polycarbonate mPEG-b-P(MSeSe-co-TMC) (PSe) and the Fenton catalyst GA-Fe (II) (denoted GFe) via thin-film hydration. NSe-GFe can simultaneously affect redox levels through the production of toxic •OH and the substantial depletion of GSH. The "seesaw strategy" compensates for the limited efficacy of GFe due to insufficient H2O2, as well as the side-effects associated with NSe (nanomicelles formed by PSe) as a GSH-depleting agent. NSe-GFe induces ferroptosis and apoptosis in Hep3b cells and inhibits tumor angiogenesis by downregulating the expression of vascular endothelial growth factor A (VEGFA), thus ensuring both biosafety and tumor suppression in vivo. The efficacy of multiple pathways gives this composite nanoparticle potential in the treatment of cancer.
Insights
A novel iron-selenium nanocomposite (NSe-GFe) effectively targets cancer by inducing reactive oxygen species (ROS) and depleting glutathione (GSH). This dual action promotes cancer cell death and inhibits tumor growth with enhanced biosafety.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Research
Background:
- Redox modulation, including ROS generation and GSH depletion, shows promise for cancer therapy.
- Clinical application of Fenton catalysts is limited by low H2O2 levels and high ROS inducer doses.
- GSH-depleting agents face challenges with dose-dependent efficacy and toxicity.
Purpose of the Study:
- To design an Fe-Se synergistic nanocomposite (NSe-GFe) to disrupt tumor redox homeostasis.
- To address limitations of existing Fenton catalysts and GSH-depleting agents.
- To evaluate the anticancer efficacy and biosafety of the NSe-GFe system.
Main Methods:
- Fabrication of NSe-GFe via thin-film hydration, combining mPEG-b-P(MSeSe-co-TMC) (PSe) and GA-Fe(II) (GFe).
- Assessment of simultaneous ROS production and GSH depletion by NSe-GFe.
- In vitro evaluation of ferroptosis and apoptosis induction in Hep3b cells.
- In vivo assessment of tumor angiogenesis inhibition via VEGFA downregulation.
Main Results:
- NSe-GFe effectively induces toxic hydroxyl radical (•OH) production and significant GSH depletion.
- The 'seesaw strategy' in NSe-GFe overcomes H2O2 limitations and mitigates NSe side-effects.
- NSe-GFe demonstrated potent ferroptosis and apoptosis induction in Hep3b cells.
- In vivo studies showed inhibited tumor angiogenesis by downregulating VEGFA, ensuring biosafety and tumor suppression.
Conclusions:
- The Fe-Se synergistic nanocomposite (NSe-GFe) offers a multi-pathway approach for cancer treatment.
- NSe-GFe effectively disrupts tumor redox balance, leading to cancer cell death.
- This composite nanoparticle shows significant potential for in vivo tumor suppression with good biosafety.
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