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Updated: Sep 17, 2025

Deciphering the Structural Effects of Activating EGFR Somatic Mutations with Molecular Dynamics Simulation
Published on: May 20, 2020
Allosteric Antibody Modulation of EGFR Activity: Bridging Experiment and In Silico Modeling
Léxane Fournier1, Stefan Becker2, Stefan Zielonka1
1Antibody Discovery and Protein Engineering, Merck Healthcare KGaA, Darmstadt, Germany; Biomolecular Immunotherapy, Institute for Organic Chemistry and Biochemistry, Technical University of Darmstadt, Darmstadt, Germany.
Abstract:
Allosteric regulation provides a powerful framework for modulating receptor signaling in both physiological and therapeutic contexts. The epidermal growth factor receptor (EGFR), a receptor tyrosine kinase frequently dysregulated in cancer, undergoes activation through conformational transitions that couple extracellular ligand binding to intracellular kinase signaling. Here, we explore how camelid derived VHH (variable domain of the heavy chain of a heavy chain-only)-antibodies can exploit this allosteric architecture to inhibit EGFR function. Using a panel of single domain monospecific and biparatopic antibodies, targeting non-overlapping EGFR epitopes, we combined experimental assays with structure-based modeling to dissect their effects on EGFR signaling and internalization. AlphaFold3-predicted EGFR-antibody complexes were analyzed using the Structure-Based Statistical Mechanical Model of Allostery (SBSMMA) to compute residue-level allosteric modulations induced upon binding. The resulting profiles revealed that only a subset of epitope combinations produced long-range allosteric responses reaching the juxtamembrane segment and the kinase domain. These patterns correlated with effective inhibition of downstream ERK and AKT signaling in cellular assays. In contrast, some constructs with high internalization capacity induced minimal allosteric propagation and weak signaling suppression, indicating a mechanistic decoupling of receptor uptake from conformational regulation. Together, these results define distinct allosteric modes of EGFR modulation by VHH-antibodies and show how computational modeling based on energetic propagation can complement experimental screening to guide the design of next-generation allosteric biologics.
Insights
Camelid-derived VHH antibodies can inhibit epidermal growth factor receptor (EGFR) signaling by modulating its allosteric architecture. Computational modeling reveals distinct allosteric modes, guiding the design of novel allosteric biologics.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Allosteric regulation is crucial for modulating receptor tyrosine kinase (EGFR) signaling, which is often dysregulated in cancer.
- EGFR activation involves conformational changes linking extracellular ligand binding to intracellular kinase activity.
Purpose of the Study:
- To investigate how camelid-derived VHH antibodies can inhibit EGFR function by exploiting its allosteric architecture.
- To dissect the effects of VHH antibodies on EGFR signaling and internalization using experimental and computational approaches.
Main Methods:
- Utilized a panel of monospecific and biparatopic VHH antibodies targeting distinct EGFR epitopes.
- Combined experimental assays (signaling, internalization) with structure-based modeling (AlphaFold3, SBSMMA) to analyze allosteric modulation.
- Computed residue-level allosteric changes induced by antibody binding to EGFR.
Main Results:
- Only specific VHH antibody epitope combinations induced long-range allosteric responses affecting the EGFR juxtamembrane and kinase domains.
- These effective allosteric modulations correlated with inhibited downstream ERK and AKT signaling.
- High EGFR internalization capacity did not always correlate with significant allosteric propagation or signaling suppression.
Conclusions:
- Defined distinct allosteric mechanisms by which VHH antibodies modulate EGFR.
- Demonstrated that computational modeling of energetic propagation can guide the development of targeted allosteric biologics.
- Highlighted the mechanistic uncoupling of receptor internalization from allosteric conformational regulation.
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