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Methods to Inhibit Bacterial Pyomelanin Production and Determine the Corresponding Increase in Sensitivity to Oxidative Stress
Published on: August 31, 2015
ROS-responsive oligochitosan-derived nanovesicles with synergistic oxidative stress and autophagy inhibition for
Mingxiao Shao1, Yan Peng1, Liyan Qiu1
1Ministry of Education (MOE) Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, 310058, China.
Abstract:
Oxidative stress-mediated tumor therapy leverages reactive oxygen species (ROS) for cancer treatment, but protective autophagy, a major survival pathway for tumor cells, causes therapy resistance. Herein, a self-amplifying ROS-responsive nanovesicle system (CQ/Cu@CT) is designed to enhance oxidative stress while blocking autophagy. Firstly, amphiphilic oligochitosan derivative COS-PEG2KTA-UB is synthesized, where ROS-responsive thioketal acetal (TA) is introduced in form of cinnamaldehyde (CA) prodrug. This polymer self-assembles into nanovesicles, integrating chloroquine (CQ) and supplemental TA to immobilize Cu2+ via carboxylic coordination. Intracellular ROS triggers nanovesicle dissociation to release CA, Cu2+, and CQ. CA induces mitochondrial dysfunction and ROS burst, while Cu2+ depletes glutathione and generates Cu+ for Fenton-like reactions to produce hydroxyl radicals. Meanwhile, due to the inhibition effect of CQ on protective autophagy, CQ/Cu@CT produces significantly high ROS level. The amplified ROS not only aggravates oxidative stress but also accelerates drug release from nanovesicles, which facilitates the drug action against tumors. CQ/Cu@CT also induces immunogenic cell death (ICD) to stimulate dendritic cell maturation and enhance cytotoxic T lymphocyte infiltration. Consequently, CQ/Cu@CT inhibits tumor growth by 67.8 % in a subcutaneous 4 T1 tumor model. This study provides a potent strategy to enhance oxidative stress-based cancer therapy.
Insights
This study presents a novel nanovesicle system that amplifies oxidative stress and blocks autophagy to overcome cancer therapy resistance. The system effectively inhibits tumor growth by enhancing reactive oxygen species (ROS) levels.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Oxidative stress therapy for tumors is hindered by autophagy, a survival mechanism promoting resistance.
- Reactive oxygen species (ROS) are key mediators in oxidative stress-based cancer treatments.
Purpose of the Study:
- To design a ROS-responsive nanovesicle system (CQ/Cu@CT) that enhances oxidative stress and inhibits autophagy for improved cancer therapy.
- To investigate the self-amplifying ROS generation and therapeutic efficacy of the designed nanovesicles.
Main Methods:
- Synthesis of an amphiphilic oligochitosan derivative with ROS-responsive thioketal acetal (TA) prodrug.
- Self-assembly into nanovesicles encapsulating chloroquine (CQ) and Cu2+.
- In vitro and in vivo evaluation of ROS generation, autophagy inhibition, and anti-tumor effects.
Main Results:
- The nanovesicles dissociate upon intracellular ROS detection, releasing cinnamaldehyde (CA), Cu2+, and CQ.
- CA and Cu2+ synergistically amplify ROS production, while CQ inhibits protective autophagy.
- CQ/Cu@CT demonstrated significant tumor growth inhibition (67.8%) and induced immunogenic cell death (ICD).
Conclusions:
- The developed CQ/Cu@CT nanovesicle system effectively enhances oxidative stress and overcomes autophagy-mediated resistance in cancer therapy.
- This strategy holds promise for developing potent anti-cancer treatments by amplifying ROS and triggering immune responses.
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