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Deciphering the Structural Effects of Activating EGFR Somatic Mutations with Molecular Dynamics Simulation
Published on: May 20, 2020
Allosteric inhibition of the epidermal growth factor receptor through disruption of transmembrane interactions
Jennifer A Rybak1, Amita R Sahoo2, Soyeon Kim3
1Department of Genome Sciences and Technology, University of Tennessee, Knoxville, Tennessee, USA.
Abstract:
The epidermal growth factor receptor (EGFR) is a receptor tyrosine kinase (RTK) commonly targeted for inhibition by anticancer therapeutics. Current therapeutics target EGFR's kinase domain or extracellular region. However, these types of inhibitors are not specific for tumors over healthy tissue and therefore cause undesirable side effects. Our lab has recently developed a new strategy to regulate RTK activity by designing a peptide that specifically binds to the transmembrane (TM) region of the RTK to allosterically modify kinase activity. These peptides are acidity-responsive, allowing them to preferentially target acidic environments like tumors. We have applied this strategy to EGFR and created the PET1 peptide. We observed that PET1 behaves as a pH-responsive peptide that modulates the configuration of the EGFR TM through a direct interaction. Our data indicated that PET1 inhibits EGFR-mediated cell migration. Finally, we investigated the mechanism of inhibition through molecular dynamics simulations, which showed that PET1 sits between the two EGFR TM helices; this molecular mechanism was additionally supported by AlphaFold-Multimer predictions. We propose that the PET1-induced disruption of native TM interactions disturbs the conformation of the kinase domain in such a way that it inhibits EGFR's ability to send migratory cell signals. This study is a proof-of-concept that acidity-responsive membrane peptide ligands can be generally applied to RTKs. In addition, PET1 constitutes a viable approach to therapeutically target the TM of EGFR.
Insights
Researchers developed PET1, an acidity-responsive peptide targeting the transmembrane region of epidermal growth factor receptor (EGFR). This novel approach inhibits EGFR-mediated cell migration by allosterically modulating receptor activity, offering a tumor-specific therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Epidermal growth factor receptor (EGFR) is a key target in cancer therapy.
- Current EGFR inhibitors targeting the kinase or extracellular domains cause off-target side effects.
- Targeting the transmembrane (TM) region offers a novel strategy for selective inhibition.
Purpose of the Study:
- To develop an acidity-responsive peptide (PET1) targeting the EGFR transmembrane domain.
- To investigate PET1's mechanism of action and its effect on EGFR signaling.
- To establish a proof-of-concept for targeting RTKs via TM-specific peptides.
Main Methods:
- Design and synthesis of the PET1 peptide.
- In vitro experiments assessing pH-responsiveness and EGFR modulation.
- Molecular dynamics simulations and AlphaFold-Multimer predictions to elucidate the binding mechanism.
Main Results:
- PET1 specifically binds to the EGFR TM region in an acidity-dependent manner.
- PET1 directly modulates EGFR TM conformation, inhibiting EGFR-mediated cell migration.
- Simulations revealed PET1 localizes between EGFR TM helices, disrupting native interactions.
Conclusions:
- PET1 is a viable therapeutic peptide targeting the EGFR TM domain.
- Acidity-responsive TM peptides represent a promising general strategy for RTK inhibition.
- This approach offers potential for tumor-specific cancer therapeutics with reduced side effects.
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