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Updated: Sep 11, 2026

Luminescence Resonance Energy Transfer to Study Conformational Changes in Membrane Proteins Expressed in Mammalian Cells
Published on: September 16, 2014
Interfacial Cascade Energy Transfer Enhances Lanthanide Luminescence for NIR-II Ratiometric Deep-Tissue Localization
Ting Han1, Zi-Han Chen1, Hongyue Liu1
1Department of Chemistry, College of Smart Materials and Future Energy, New Cornerstone Science Laboratory, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials and iChem, Fudan University, Shanghai200433, China.
Abstract:
Near-infrared (NIR, 750-2500 nm) imaging is crucial for disease diagnosis, yet conventional wide-field bioimaging yields only two-dimensional (2D) information without depth. Here, we report a ratiometric fluorescence strategy for tissue depth determination using α-NaTmF4@NaErF4@NaYF4 nanoprobes. Under 808 nm excitation, interfacial cascade energy transfer between Tm3+ and Er3+ ions enhances NIR-II emissions at 1532 and 1626 nm by 3.3- and 6.7-fold, respectively, compared with that of a codoped counterpart. Leveraging distinct water absorption at these wavelengths, the logarithm of the attenuated intensity ratio (ITm/IEr) varies linearly with tissue depth (0-4 mm). With this NIR ratiometric wide-field depth-mapping method, quantitative depth information about in vivo vasculature was assigned to each image pixel and rendered into 2.5D visualization by stacking 2D planes over a 40 mm × 40 mm × 4 mm volume. Dynamic tracking of nanoprobe redistribution from vessels along the projection direction was also demonstrated. This work establishes a universal depth-analysis tool and significantly advances medical optical imaging.

