A mitochondrial-targeted prodrug for NIR imaging guided and synergetic NIR photodynamic-chemo cancer therapy

Hong-Wen Liu1,2, Xiao-Xiao Hu1, Ke Li1

  • 1Molecular Science and Biomedicine Laboratory , State Key Laboratory of Chemo/Biosensing and Chemometrics , College of Chemistry and Chemical Engineering , College of Life Sciences , Aptamer Engineering Center of Hunan Province , Hunan University , Changsha , 410082 , P. R. China .

Chemical Science
|April 6, 2018
PubMed

Insights

A novel prodrug, PNPS, combines chemotherapy and photodynamic therapy for precise cancer treatment. It activates in the tumor microenvironment, offering targeted therapy with reduced side effects and real-time imaging guidance.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Oncology

Background:

  • Nontoxic prodrugs activated by the tumor microenvironment are crucial for reducing cancer therapy side effects.
  • Combining chemotherapy and photodynamic therapy (PDT) offers synergistic efficacy, but a single-molecule approach remains elusive.

Purpose of the Study:

  • To develop a novel mitochondrial-targeted prodrug, PNPS, for precise cancer therapy guided by near-infrared (NIR) fluorescence imaging.
  • To achieve synergetic chemo-photodynamic therapy using a single molecule activated by the tumor microenvironment.

Main Methods:

  • PNPS was synthesized, linking a NIR photosensitizer (NPS) and 5'-deoxy-5-fluorouridine (5'-DFUR) via a bisboronate group.
  • Prodrug activation was triggered by hydrogen peroxide (H2O2) in the tumor microenvironment, releasing active NPS for PDT and 5'-DFUR for chemotherapy.
  • Mitochondrial targeting and in vivo fluorescence imaging were utilized to monitor drug release and therapeutic effects.

Main Results:

  • PNPS demonstrated minimal cytotoxicity and fluorescence in its prodrug state.
  • Activation by H2O2 released NPS and 5'-DFUR, leading to enhanced chemotherapy and NIR-photodynamic therapy.
  • Mitochondrial targeting improved chemotherapy efficiency, and PNPS showed significant synergistic chemo-photodynamic effects.
  • In vivo studies confirmed tumor microenvironment-activated performance and enabled "turn-on" NIR imaging.

Conclusions:

  • PNPS is a promising single-molecule prodrug for precise cancer therapy.
  • Its tumor microenvironment-activated release, synergistic therapeutic effects, and NIR imaging guidance offer a novel strategy for cancer treatment.
  • PNPS exhibits potential for reduced side effects due to targeted activation and mitochondrial localization.

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