Real‐time monitoring of cell surface protein arrival with split luciferases

Author:

Fischer Alexandra A. M.123ORCID,Schatz Larissa45,Baaske Julia12,Römer Winfried12,Weber Wilfried12367,Thuenauer Roland458ORCID

Affiliation:

1. Signaling Research Centres BIOSS and CIBSS and Faculty of Biology University of Freiburg Freiburg Germany

2. Faculty of Biology University of Freiburg Freiburg Germany

3. Spemann Graduate School of Biology and Medicine (SGBM) University of Freiburg Freiburg Germany

4. Centre for Structural Systems Biology (CSSB) Hamburg Germany

5. Technology Platform Light Microscopy University of Hamburg Hamburg Germany

6. INM – Leibniz Institute for New Materials Saarbrücken Germany

7. Department of Materials Science and Engineering Saarland University Saarbrücken Germany

8. Technology Platform Microscopy and Image Analysis (TP MIA) Leibniz Institute of Virology (LIV) Hamburg Germany

Abstract

AbstractEach cell in a multicellular organism permanently adjusts the concentration of its cell surface proteins. In particular, epithelial cells tightly control the number of carriers, transporters and cell adhesion proteins at their plasma membrane. However, sensitively measuring the cell surface concentration of a particular protein of interest in live cells and in real time represents a considerable challenge. Here, we introduce a novel approach based on split luciferases, which uses one luciferase fragment as a tag on the protein of interest and the second fragment as a supplement to the extracellular medium. Once the protein of interest arrives at the cell surface, the luciferase fragments complement and generate luminescence. We compared the performance of split Gaussia luciferase and split Nanoluciferase by using a system to synchronize biosynthetic trafficking with conditional aggregation domains. The best results were achieved with split Nanoluciferase, for which luminescence increased more than 6000‐fold upon recombination. Furthermore, we showed that our approach can separately detect and quantify the arrival of membrane proteins at the apical and basolateral plasma membrane in single polarized epithelial cells by detecting the luminescence signals with a microscope, thus opening novel avenues for characterizing the variations in trafficking in individual epithelial cells.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Cell Biology,Genetics,Molecular Biology,Biochemistry,Structural Biology

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