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Visualizing Protein Kinase A Activity In Head-fixed Behaving Mice Using In Vivo Two-photon Fluorescence Lifetime Imaging Microscopy
Published on: June 7, 2019
In vivo quantitative FRET small animal imaging: Intensity versus lifetime-based FRET
Jason T Smith1, Nattawut Sinsuebphon1, Alena Rudkouskaya2
1Center for Modeling, Simulation and Imaging in Medicine (CeMSIM), Rensselaer Polytechnic Institute, Troy, New York.
Abstract:
Förster resonance energy transfer (FRET) microscopy is used in numerous biophysical and biomedical applications to monitor inter- and intramolecular interactions and conformational changes in the 2-10 nm range. FRET is currently being extended to in vivo optical imaging, its main application being in quantifying drug-target engagement or drug release in animal models of cancer using organic dye or nanoparticle-labeled probes. Herein, we compared FRET quantification using intensity-based FRET (sensitized emission FRET analysis with the three-cube approach using an IVIS imager) and macroscopic fluorescence lifetime (MFLI) FRET using a custom system using a time-gated-intensified charge-coupled device, for small animal optical in vivo imaging. The analytical expressions and experimental protocols required to quantify the product of the FRET efficiency E and the fraction of donor molecules involved in FRET, , are described in detail for both methodologies. Dynamic in vivo FRET quantification of transferrin receptor-transferrin binding was acquired in live intact nude mice upon intravenous injection of a near-infrared-labeled transferrin FRET pair and benchmarked against in vitro FRET using hybridized oligonucleotides. Even though both in vivo imaging techniques provided similar dynamic trends for receptor-ligand engagement, we demonstrate that MFLI-FRET has significant advantages. Whereas the sensitized emission FRET approach using the IVIS imager required nine measurements (six of which are used for calibration) acquired from three mice, MFLI-FRET needed only one measurement collected from a single mouse, although a control mouse might be needed in a more general situation. Based on our study, MFLI therefore represents the method of choice for longitudinal preclinical FRET studies such as that of targeted drug delivery in intact, live mice.
Insights
Macroscopic fluorescence lifetime (MFLI)-FRET offers significant advantages over intensity-based FRET for in vivo imaging. MFLI-FRET requires fewer measurements and animals, making it ideal for preclinical drug delivery studies.
Area of Science:
- Biophysics and Biomedical Imaging
- Molecular Interactions and Dynamics
Background:
- Förster resonance energy transfer (FRET) microscopy is crucial for monitoring molecular interactions and conformational changes (2-10 nm range).
- FRET is increasingly applied in vivo for drug-target engagement and release quantification in cancer models using labeled probes.
Purpose of the Study:
- To compare intensity-based FRET (sensitized emission) and macroscopic fluorescence lifetime (MFLI) FRET for small animal optical in vivo imaging.
- To detail analytical expressions and experimental protocols for quantifying FRET efficiency (E) and the fraction of donor molecules involved (p).
Main Methods:
- Compared sensitized emission FRET (three-cube approach, IVIS imager) with MFLI-FRET (custom time-gated intensified CCD system).
- Quantified in vivo transferrin receptor-transferrin binding dynamics in live mice using a near-infrared labeled FRET pair.
- Benchmarked in vivo results against in vitro FRET using hybridized oligonucleotides.
Main Results:
- Both in vivo imaging techniques showed similar dynamic trends for receptor-ligand engagement.
- MFLI-FRET required significantly fewer measurements (1 vs. 9) and animals (1 vs. 3) compared to intensity-based FRET.
- MFLI-FRET demonstrated significant advantages in efficiency and reduced experimental complexity for in vivo quantification.
Conclusions:
- MFLI-FRET is the preferred method for longitudinal preclinical FRET studies, including targeted drug delivery in live mice.
- The study provides detailed protocols for quantifying FRET efficiency and donor fraction in vivo.

