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Updated: Feb 12, 2026

A Bright NIR-II Fluorescence Probe for Vascular and Tumor Imaging
Published on: March 17, 2023
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 .
Abstract:
Nontoxic prodrugs, especially activated by tumor microenvironment, are urgently required for reducing the side effects of cancer therapy. And combination of chemo-photodynamic therapy prodrugs show effectively synergetic therapeutic efficiency, however, this goal has not been achieved in a single molecule. In this work, we developed a mitochondrial-targeted prodrug PNPS for near infrared (NIR) fluorescence imaging guided and synergetic chemo-photodynamic precise cancer therapy for the first time. PNPS contains a NIR photosensitizer (NPS) and an anticancer drug 5'-deoxy-5-fluorouridine (5'-DFUR). These two parts are linked and caged through a bisboronate group, displaying no fluorescence and very low cytotoxicity. In the presence of H2O2, the bisboronate group is broken, resulting in activation of NPS for NIR photodynamic therapy and activation of 5'-DFUR for chemotherapy. The activated NPS can also provide a NIR fluorescence signal for monitoring the release of activated drug. Taking advantage of the high H2O2 concentration in cancer cells, PNPS exhibits higher cytotoxicity to cancer cells than normal cells, resulting in lower side effects. In addition, based on its mitochondrial-targeted ability, PNPS exhibits enhanced chemotherapy efficiency compare to free 5'-DFUR. It also demonstrated a remarkably improved and synergistic chemo-photodynamic therapeutic effect for cancer cells. Moreover, PNPS exhibits excellent tumor microenvironment-activated performance when intravenously injected into tumor-bearing nude mice, as demonstrated by in vivo fluorescence imaging. Thus, PNPS is a promising prodrug for cancer therapy based on its tumor microenvironment-activated drug release, synergistic therapeutic effect and "turn-on" NIR imaging guide.
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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