Near-infrared fluorophores for biomedical imaging
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Summary
An increasingly developing palette of biocompatible NIR fluorophores that span the entire NIR window and include inorganic nanoparticles, organic macromolecules and small molecules with tunable emission wavelengths are highlighted.
- Type
- article
- Published
- 2017-01-01
- Cited by
- 2,473
- References
- 297
- OpenAlex
- https://openalex.org/W2569658671
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:78795936
Keywords
Autofluorescence, Fluorescence-lifetime imaging microscopy, Preclinical imaging, Near-infrared spectroscopy, Molecular imaging
References
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- Sentinel Lymph Node Mapping of Liver
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- Design of Protease Activated Optical Contrast Agents That Exploit a Latent Lysosomotropic Effect for Use in Fluorescence-Guided Surgery
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- Receptor-targeted optical imaging of tumors with near-infrared fluorescent ligands
- Near-Infrared Fluorescence-Guided Resection of Colorectal Liver Metastases
- Clinical trial of combined radio- and fluorescence-guided sentinel lymph node biopsy in breast cancer
- NIR Fluorescent Small Molecules for Intraoperative Imaging
- Fluorescence-guided Resection of Experimental Malignant Glioma Using Cetuximab-IRDye 800CW
- 700 nm Zwitterionic Near-Infrared Fluorophores for Dual-Channel Image-Guided Surgery
- High-contrast Noninvasive Imaging of Kidney Clearance Kinetics Enabled by Renal Clearable Nanofluorophores
- Biological imaging without autofluorescence in the second near-infrared region
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- Novel bright-emission small-molecule NIR-II fluorophores for in vivo tumor imaging and image-guided surgery
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- Recent advances in carbon based nanosystems for cancer theranostics.
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- Spectroscopic optical coherence tomography: A review of concepts and biomedical applications
- Confining Excitation Energy in Er3+ -Sensitized Upconversion Nanocrystals through Tm3+ -Mediated Transient Energy Trapping.
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- Review of optical detection of single molecules beyond the diffraction and diffusion limit using plasmonic nanostructures
- Chemical Tools for Studying Lipid-Binding Class A G Protein–Coupled Receptors
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