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Self-preparation system using glucose oxidase-inspired nitroreductase amplification for cascade-responsive drug
Fangying Yu1, Xuwei Shang1, Yun Zhu2
1College of Pharmaceutical Science, Zhejiang University, 866 Yuhangtang Road, Hangzhou, 310058, People's Republic of China.
Abstract:
Early antitumor therapy is an important determinant of survival in patients with cancer. Utilization of specific pathological states, such as hypoxia, greatly promotes the development of intelligent drug delivery systems (DDSs) for targeted antitumor therapy. However, a slight decrease in oxygen levels in early-stage tumors is not sufficient to trigger hypoxia-responsive drug release. Nitroreductase (NTR) is overexpressed in bioreductive hypoxic cancers, and its expression level has been verified to be directly related to hypoxic status. Herein, using glucose oxidase (GOx) as an O2-consuming agent to exacerbate hypoxia, a cascade strategy of GOx-induced overexpression of NTR and amplified NTR-catalyzed release was proposed for early antitumor therapy. Briefly, NTR-sensitive p-nitrobenzyl chloroformate (PNZ-Cl) was adopted to conjugate with the polysaccharide chitosan (CS) and self-assemble into CS-PNZ-Cl micelles. These polymer micelles possess the dual abilities to specifically immobilize GOx and load mitoxantrone (MIT) to form the NTR-responsive nanocascade reactor GOx/MIT@CS-PNZ-Cl. First, as a "key", tumor hypoxia triggers the initial release of GOx, which serves as the O2-consuming agent when catalyzing its reaction with glucose, which is accompanied by H2O2 production. Depleted oxygen levels facilitate the expression of NTR, which in turn amplifies the capacity of the nanocascade reactor to decompose into secondary micelles for enhanced intratumoral permeation. GOx-inspired NTR amplification further elicits MIT release, realizing a synergistic "domino effect" cascade. In addition, upregulated H2O2 has been shown to effectively reverse GSH-mediated MIT resistance, reaching the superior tumor inhibition rate of 93.08%. This GOx-based NTR-responsive nanocascade reactor provides amplification of the bioreductive hypoxic tumor microenvironment for early antitumor therapy.
Insights
This study developed a novel nanocascade reactor for early cancer therapy. The system enhances hypoxia-triggered drug release, achieving a 93.08% tumor inhibition rate by amplifying nitroreductase activity.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Early antitumor therapy is crucial for cancer patient survival.
- Hypoxia in early-stage tumors is a target for intelligent drug delivery systems (DDSs).
- Existing hypoxia-responsive DDSs are insufficient due to mild oxygen decrease in early tumors.
Purpose of the Study:
- To develop a cascade strategy for enhanced drug release in early antitumor therapy.
- To utilize glucose oxidase (GOx) to exacerbate tumor hypoxia and induce nitroreductase (NTR) overexpression.
- To create an NTR-responsive nanocascade reactor for targeted cancer treatment.
Main Methods:
- Conjugating NTR-sensitive p-nitrobenzyl chloroformate (PNZ-Cl) with chitosan (CS) to form CS-PNZ-Cl micelles.
- Immobilizing GOx and loading mitoxantrone (MIT) into micelles to create the GOx/MIT@CS-PNZ-Cl nanocascade reactor.
- Utilizing tumor hypoxia to trigger GOx release, leading to oxygen consumption, NTR overexpression, and amplified MIT release.
Main Results:
- The nanocascade reactor effectively exacerbated hypoxia and amplified NTR activity.
- GOx-induced NTR amplification enhanced intratumoral permeation and drug release.
- The system achieved a superior tumor inhibition rate of 93.08% and reversed drug resistance.
Conclusions:
- The GOx-based NTR-responsive nanocascade reactor offers an effective strategy for early antitumor therapy.
- This approach amplifies the tumor microenvironment's bioreductive hypoxic state for enhanced treatment.
- The developed DDS shows significant potential for improving cancer treatment outcomes.
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