In-cell structural dynamics of an EGF receptor during ligand-induced dimer-oligomer transition
Noga Kozer1, Andrew H A Clayton2
1Cell Biophysics Laboratory, Department of Physics and Astronomy, Faculty of Science, Engineering and Technology, Centre for Micro-Photonics, School of Science, Swinburne University of Technology, Melbourne, Australia.
Abstract:
The epidermal growth factor receptor (EGFR) is a membrane protein that regulates cell proliferation, differentiation and survival, and is a drug target for cancer therapy. Ligand-induced activation of the EGFR kinase is generally regarded to require ligand-bound-dimers, while phosphorylation and down-stream signalling is modulated by oligomers. Recent work has unveiled changes in EGFR dynamics from ligand-induced dimerization in membranes extracted from cells, however, less is known about the changes in EGFR dynamics that accompany the ligand-induced oligomerization in a live cell environment. Here, we determine the dynamics of a c-terminal GFP tag attached to EGFR in the unliganded dimer and in the liganded oligomers. By means of the single-frequency polarized phasor ellipse approach we extracted two correlation times on the sub-nanosecond and super-nanosecond timescales, respectively. EGF binding to the EGFR-GFP dimer lengthened the sub-nanosecond correlation time (from 0.1 to 1.3 ns) and shortened the super-nanosecond correlation time (from 210 to 56 ns) of the c-terminal GFP probe. The sub-nanosecond depolarization processes were assigned to electronic energy migration between proximal GFPs in the EGFR dimer or oligomer, while the super-nanosecond correlation times were assigned to nanosecond fluctuations of the GFP probe in the EGFR complex. Accordingly, these results show that ligand binding increased the average separation between the c-terminal tags and increased their rotational mobility. We propose that the dynamics are linked to an inhibitory function of the c-terminal tail in the un-liganded dimer and to the requirement of facile stochastic switching between kinase activation and cytoplasmic adaptor/effector binding in the active oligomers.
Insights
Epidermal growth factor receptor (EGFR) dynamics change upon EGF binding. Ligand binding increases separation and mobility of c-terminal tags in live cells, impacting EGFR signaling.
Area of Science:
- Cell biology
- Biophysics
- Molecular signaling
Background:
- Epidermal growth factor receptor (EGFR) regulates cell functions and is a cancer drug target.
- EGFR activation involves ligand-induced dimerization and oligomerization, but dynamics in live cells are less understood.
- Previous studies explored EGFR dynamics in extracted membranes, leaving live-cell dynamics of ligand-induced oligomerization unclear.
Purpose of the Study:
- To investigate the dynamics of a c-terminal GFP tag attached to EGFR in live cells.
- To compare EGFR dynamics in unliganded dimers versus liganded oligomers.
- To understand how ligand binding affects EGFR conformational changes and signaling.
Main Methods:
- Utilized the single-frequency polarized phasor ellipse approach to analyze EGFR-GFP dynamics.
- Measured sub-nanosecond and super-nanosecond correlation times of the GFP probe.
- Studied EGFR dynamics in both unliganded dimer and liganded oligomer states in a live cell environment.
Main Results:
- EGF binding to EGFR-GFP significantly altered correlation times: sub-nanosecond increased (0.1 to 1.3 ns) and super-nanosecond decreased (210 to 56 ns).
- Sub-nanosecond times correlate with energy migration between proximal GFPs in dimers/oligomers.
- Super-nanosecond times reflect nanosecond fluctuations of the GFP probe within the EGFR complex, indicating increased separation and mobility upon ligand binding.
Conclusions:
- Ligand binding to EGFR increases the average separation and rotational mobility of c-terminal GFP tags in live cells.
- These dynamic changes are proposed to relate to the inhibitory function of the c-terminal tail in unliganded dimers.
- The findings suggest facile switching between kinase activation and effector binding in active EGFR oligomers is facilitated by altered dynamics.
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