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One Minute, Sub-One-Watt Photothermal Tumor Ablation Using Porphysomes, Intrinsic Multifunctional Nanovesicles
Published on: September 17, 2013
Activity-Based Nitric Oxide-Responsive Porphyrin for Site-Selective and Nascent Cancer Ablation
Suritra Bandyopadhyay1,2,3, Zhenxiang Zhao1,2,3, Amanda K East1,2,3
1Department of Chemistry, University of Illinois at Urbana─Champaign, 600 S. Mathews Avenue, Urbana, Illinois 61801, United States.
Abstract:
Nitric oxide (NO) generated within the tumor microenvironment is an established driver of cancer progression and metastasis. Recent efforts have focused on leveraging this feature to target cancer through the development of diagnostic imaging agents and activatable chemotherapeutics. In this context, porphyrins represent an extraordinarily promising class of molecules, owing to their demonstrated use within both modalities. However, the remodeling of a standard porphyrin to afford a responsive chemical that can distinguish elevated NO from physiological levels has remained a significant research challenge. In this study, we employed a photoinduced electron transfer strategy to develop a panel of NO-activatable porphyrin photosensitizers (NOxPorfins) augmented with real-time fluorescence monitoring capabilities. The lead compound, NOxPorfin-1, features an o-phenylenediamine trigger that can effectively capture NO (via N2O3) to yield a triazole product that exhibits a 7.5-fold enhancement and a 70-fold turn-on response in the singlet oxygen quantum yield and fluorescence signal, respectively. Beyond demonstrating excellent in vitro responsiveness and selectivity toward NO, we showcase the potent photodynamic therapy (PDT) effect of NOxPorfin-1 in murine breast cancer and human non-small cellular lung cancer cells. Further, to highlight the in vivo efficacy, two key studies were executed. First, we utilized NOxPorfin-1 to ablate murine breast tumors in a site-selective manner without causing substantial collateral damage to healthy tissue. Second, we established a nascent human lung cancer model to demonstrate the unprecedented ability of NOxPorfin-1 to halt tumor growth and progression completely. The results of the latter study have tremendous implications for applying PDT to target metastatic lesions.
Insights
Researchers developed novel nitric oxide-activatable porphyrin photosensitizers (NOxPorfins) for cancer therapy. The lead compound, NOxPorfin-1, selectively targets tumors, enhancing fluorescence and singlet oxygen for potent photodynamic therapy (PDT) with minimal collateral damage.
Area of Science:
- Biochemistry and Molecular Biology
- Cancer Research
- Photodynamic Therapy
Background:
- Nitric oxide (NO) in the tumor microenvironment fuels cancer progression and metastasis.
- Porphyrins show promise for cancer diagnostics and therapeutics but require NO-specific responsiveness.
- Distinguishing tumor-specific NO levels from physiological ones remains a challenge.
Purpose of the Study:
- To develop NO-activatable porphyrin photosensitizers (NOxPorfins) with real-time fluorescence monitoring.
- To create a responsive chemical agent that differentiates elevated NO in tumors from normal levels.
- To evaluate the efficacy of NOxPorfins in vitro and in vivo for cancer treatment.
Main Methods:
- Utilized a photoinduced electron transfer strategy to design NOxPorfins.
- Incorporated an *o*-phenylenediamine trigger for NO capture and triazole formation.
- Assessed in vitro responsiveness, singlet oxygen yield, fluorescence turn-on, and photodynamic therapy (PDT) effects in cancer cells.
Main Results:
- The lead compound, NOxPorfin-1, demonstrated a 7.5-fold enhancement in singlet oxygen yield and a 70-fold fluorescence turn-on response.
- NOxPorfin-1 exhibited potent PDT effects in murine breast cancer and human lung cancer cells.
- In vivo studies showed site-selective ablation of murine breast tumors and complete halting of human lung cancer growth.
Conclusions:
- NOxPorfins, particularly NOxPorfin-1, are effective NO-responsive agents for cancer therapy.
- The developed compounds offer selective tumor targeting and potent PDT capabilities.
- These findings suggest significant potential for applying NOxPorfins in treating metastatic lesions.
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