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Updated: Jun 7, 2026

Tension Gauge Tether Probes for Quantifying Growth Factor Mediated Integrin Mechanics and Adhesion
Published on: February 11, 2022
The tethering arm of the EGF receptor is required for negative cooperativity and signal transduction
Sangeeta Adak1, Diana DeAndrade, Linda J Pike
1Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St Louis, Missouri 63110, USA.
Abstract:
The EGF receptor is a classical receptor-tyrosine kinase. In the absence of ligand, the receptor adopts a closed conformation in which the dimerization arm of subdomain II interacts with the tethering arm in subdomain IV. Following the binding of EGF, the receptor opens to form a symmetric, back-to-back dimer. Although it is clear that the dimerization arm of subdomain II is central to the formation of receptor dimers, the role of the tethering arm of subdomain IV (residues 561-585) in this configuration is not known. Here we use (125)I-EGF binding studies to assess the functional role of the tethering arm in the EGF receptor dimer. Mutation of the three major residues that contribute to tethering (D563A,H566A,K585A-EGF receptor) did not significantly alter either the ligand binding properties or the signaling properties of the EGF receptor. By contrast, breaking the Cys(558)-Cys(567) disulfide bond through double alanine replacements or deleting the loop entirely led to a decrease in the negative cooperativity in EGF binding and was associated with small changes in downstream signaling. Deletion of the Cys(571)-Cys(593) disulfide bond abrogated cooperativity, resulting in a high affinity receptor and increased sensitivity of downstream signaling pathways to EGF. Releasing the Cys(571)-Cys(593) disulfide bond resulted in extreme negative cooperativity, ligand-independent kinase activity, and impaired downstream signaling. These data demonstrate that the tethering arm plays an important role in supporting cooperativity in ligand binding. Because cooperativity implies subunit-subunit interactions, these results also suggest that the tethering arm contributes to intersubunit interactions within the EGF receptor dimer.
Insights
The EGF receptor
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- The epidermal growth factor (EGF) receptor is a receptor-tyrosine kinase crucial for cell signaling.
- In its inactive state, the EGF receptor adopts a closed conformation.
- Ligand binding induces receptor opening and dimerization, initiating downstream signaling.
Purpose of the Study:
- To investigate the functional role of the tethering arm (residues 561-585) in subdomain IV of the EGF receptor dimer.
- To elucidate the tethering arm's contribution to ligand binding cooperativity and intersubunit interactions.
Main Methods:
- Utilized (125)I-EGF binding studies to assess receptor function.
- Employed site-directed mutagenesis, including alanine replacements and loop deletions, to disrupt disulfide bonds and the tethering arm.
- Evaluated changes in ligand binding affinity, cooperativity, and downstream signaling pathways.
Main Results:
- Mutating key tethering residues had minimal impact on ligand binding and signaling.
- Disrupting the Cys(558)-Cys(567) disulfide bond reduced negative cooperativity in EGF binding.
- Deleting the Cys(571)-Cys(593) disulfide bond abrogated cooperativity, increasing receptor affinity and downstream signaling sensitivity.
- Releasing the Cys(571)-Cys(593) bond led to extreme negative cooperativity, ligand-independent kinase activity, and impaired signaling.
Conclusions:
- The tethering arm of the EGF receptor is vital for supporting cooperativity in ligand binding.
- These findings suggest the tethering arm actively participates in intersubunit interactions within the EGF receptor dimer.
- The disulfide bonds within the tethering arm play distinct roles in regulating receptor conformation and activity.
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