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Fluorophore-quencher based activatable targeted optical probes for detecting in vivo cancer metastases
Mikako Ogawa1, Nobuyuki Kosaka, Michelle R Longmire
1Molecular Imaging Program, Center for Cancer Research, National Cancer Institute, National Institutes of Health, 10 Center Drive, Bethesda, Maryland 20892-1088, USA.
Abstract:
In vivo molecularly targeted fluorescence imaging of tumors has been proposed as a strategy for improving cancer detection and management. Activatable fluorophores, which increased their fluorescence by 10-fold after binding tumor cells, result in much higher target to background ratios than conventional fluorophores. We developed an in vivo targeted activatable optical imaging probe based on a fluorophore-quencher pair, bound to a targeting moiety. With this system, fluorescence is quenched by the fluorophore-quencher interaction outside cancer cells, but is activated within the target cells by dissociation of the fluorophore-quencher pair. We selected the TAMRA (fluorophore)-QSY7 (quencher) pair and conjugated it to either avidin (targeting the D-galactose receptor) or trastuzumab (a monoclonal antibody against the human epithelial growth factor receptor type2 (HER2/neu)) and evaluated their performance in mouse models of cancer. Two probes, TAMRA-QSY7 conjugated avidin (Av-TM-Q7) and trastuzumab (Traz-TM-Q7) were synthesized. Both demonstrated better than similar self-quenching probes. In vitro fluorescence microscopic studies of SHIN3 and NIH/3T3/HER2+ cells demonstrated that Av-TM-Q7 and Traz-TM-Q7 produced high intracellular fluorescent signal. In vivo imaging with Av-TM-Q7 and Traz-TM-Q7 in mice enabled the detection of small tumors. This molecular imaging probe, based on a fluorophore-quencher pair conjugated to a targeting ligand, successfully detected tumors in vivo due to its high activation ratio and low background signal. Thus, these activatable probes, based on the fluorophore-quencher system, hold promise clinically for "see and treat" strategies of cancer management.
Insights
Researchers developed activatable optical imaging probes for in vivo tumor detection. These probes, utilizing a fluorophore-quencher system, show high tumor-to-background ratios and enable early cancer visualization.
Area of Science:
- Biomedical Engineering
- Molecular Imaging
- Oncology
Background:
- In vivo molecularly targeted fluorescence imaging offers potential for improved cancer detection and management.
- Activatable fluorophores enhance target-to-background ratios compared to conventional probes.
- Current imaging methods require strategies to improve tumor visualization and specificity.
Purpose of the Study:
- To develop and evaluate an in vivo targeted activatable optical imaging probe for enhanced tumor detection.
- To utilize a fluorophore-quencher system for signal activation upon binding to tumor cells.
- To assess the efficacy of probes conjugated to targeting moieties like avidin and trastuzumab.
Main Methods:
- Development of an activatable probe using a TAMRA (fluorophore)-QSY7 (quencher) pair.
- Conjugation of the fluorophore-quencher pair to targeting ligands: avidin and trastuzumab.
- Evaluation of probe performance in vitro using cell cultures and in vivo using mouse cancer models.
Main Results:
- Synthesized probes (Av-TM-Q7 and Traz-TM-Q7) demonstrated superior performance over self-quenching controls.
- In vitro studies showed high intracellular fluorescent signal in targeted cancer cells.
- In vivo imaging successfully detected small tumors in mice, indicating high activation ratios and low background signals.
Conclusions:
- The developed molecular imaging probe, based on a fluorophore-quencher pair and targeting ligand, effectively detects tumors in vivo.
- Activatable probes exhibit high activation ratios and low background signals, crucial for sensitive tumor visualization.
- These probes hold significant clinical promise for 'see and treat' cancer management strategies.
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