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Updated: Jul 4, 2026

Assessing Protein Interactions in Live-Cells with FRET-Sensitized Emission
Published on: April 22, 2021
Study on molecular interactions between proteins on live cell membranes using quantum dot-based fluorescence
Tian-Cai Liu1, Hai-Li Zhang, Jian-Hao Wang
1Key Laboratory of Biomedical Photonics of Ministry of Education, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan, HuBei, 430074, China.
Insights
This study demonstrates fluorescence resonance energy transfer (FRET) between red and green quantum dots (QDs) conjugated to antibodies on HeLa cells. This QD-based FRET system allows for real-time monitoring of antibody-antigen interactions.
Area of Science:
- Biophysics
- Nanotechnology
- Cell Biology
Background:
- Quantum dots (QDs) offer unique optical properties for biological labeling.
- Antibody-based assays are crucial for detecting specific cellular targets.
- Fluorescence resonance energy transfer (FRET) can monitor molecular interactions.
Purpose of the Study:
- To develop and validate a QD-based FRET system for observing antibody-antigen interactions in real-time.
- To investigate the dynamics of primary and secondary antibody binding on cell surfaces.
Main Methods:
- Conjugation of anti-CD71 monoclonal antibody with red QDs (5.3 nm, λem = 614 nm).
- Labeling of HeLa cells with red QD-conjugated anti-CD71.
- Addition of green QD-labeled goat anti-mouse IgG (2.2 nm, λem = 544 nm) for secondary antibody binding.
- Monitoring changes in fluorescence intensity and ratio (I(544 nm)/I(614 nm)) using fluorescence spectroscopy and cell imaging.
Main Results:
- Successful labeling of HeLa cells with red QD-conjugated anti-CD71.
- Observation of a decrease in green QD fluorescence (55%) and an increase in red QD fluorescence (32%) upon secondary antibody binding.
- Significant decrease in the fluorescence intensity ratio (I(544 nm)/I(614 nm)) from 0.5 to 0.2.
- Demonstration of FRET occurring between the two QD populations on the cell surface.
Conclusions:
- The QD-FRET system effectively visualizes and quantifies the interaction between primary and secondary antibodies on HeLa cells.
- This method provides a sensitive and dynamic approach for studying molecular interactions in cellular environments.
- The observed FRET phenomenon confirms the proximity and interaction of the conjugated antibodies.
Abstract:
Mouse anti-human CD71 monoclonal antibody (anti-CD71) was conjugated with red quantum dots (QDs; 5.3 nm, emission wavelength lambda(em) = 614 nm) and used to label HeLa cells successfully. Then green QD-labeled goat anti-mouse immunoglobulin G (IgG; the size of the green QDs was 2.2 nm; lambda(em) = 544 nm) was added to bind the red-QD-conjugated anti-CD71 on the cell surface by immunoreactions. Such interaction between anti-CD71 and IgG lasted 4 min and was observed from the fluorescence spectra: the fluorescence intensity of the "red" peak at 614 nm increased by 32%; meanwhile that of the "green" one at 544 nm decreased by 55%. The ratio of the fluorescence intensities (I(544 nm)/I(614 nm)) decreased from 0.5 to 0.2. The fluorescence spectra as well as cell imaging showed that fluorescence resonance energy transfer took place between these two kinds of QDs on the HeLa cells through interactions between the primary antibody and the secondary antibody.
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