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.

Biomaterials
|June 13, 2021
PubMed

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.