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Updated: Jul 3, 2026

Deciphering the Structural Effects of Activating EGFR Somatic Mutations with Molecular Dynamics Simulation
Published on: May 20, 2020
Computational modelling reveals feedback redundancy within the epidermal growth factor receptor/extracellular-signal
R J Orton1, O E Sturm, A Gormand
1Bioinformatics Research Centre, Department of Computing Science, University of Glasgow, Glasgow, UK. rorton@dcs.gla.ac.uk
Abstract:
The epidermal growth factor receptor (EGFR) activated extracellular-signal regulated kinase (ERK) pathway is a central cell signalling pathway that mediates many biological responses including cell proliferation, transformation, survival and motility. Deregulation of the pathway either through mutation of components or overexpression of EGFRs is associated with several forms of cancer. Under normal conditions, EGF stimulates a rapid but transient activation of ERK as the signal is rapidly shutdown, whereas under cancerous conditions, the ERK signal cannot be shutdown and is sustained. Computational modelling techniques have been used to investigate the signalling dynamics of the EGFR/ERK pathway, focusing on identifying the key processes involved in signal termination and what role the ERK to son of sevenless (SOS) negative feedback loop plays in generating a transient response. This model predicts that this negative feedback loop is not needed to achieve a transient activation of ERK as the process of receptor degradation alone is enough to terminate the signal. Importantly, the behaviour and predictions of this model are verified with laboratory data, as is essential for modern systems biology approaches. Further analysis showed that the feedback loop and receptor degradation were both redundant processes, as each could compensate for the absence of the other. This led to the prediction that in the case of a receptor which is not degraded, such as the insulin receptor, the negative feedback loop to SOS will actually be essential for a transient response to be achieved. Overall, the results shed new light on the role of negative feedback in EGF receptor signalling and suggest that different receptors are dependent on different features within the ERK pathway when relaying their signals.
Insights
Epidermal growth factor receptor (EGFR) signaling normally activates extracellular-signal regulated kinase (ERK) transiently. Computational models show receptor degradation, not feedback loops, terminates ERK signals, crucial for understanding cancer.
Area of Science:
- Cellular biology
- Systems biology
- Cancer research
Background:
- The epidermal growth factor receptor (EGFR) activated extracellular-signal regulated kinase (ERK) pathway is central to cell proliferation, survival, and motility.
- Dysregulation of this pathway, via mutation or overexpression, is linked to various cancers, often resulting in sustained ERK signaling instead of transient activation.
Purpose of the Study:
- To investigate the signaling dynamics of the EGFR/ERK pathway using computational modeling.
- To identify key processes in signal termination and the role of the ERK to son of sevenless (SOS) negative feedback loop in generating transient responses.
Main Methods:
- Computational modeling of the EGFR/ERK signaling pathway.
- Verification of model predictions with laboratory data.
- Analysis of feedback loop and receptor degradation roles in signal termination.
Main Results:
- The model predicts that receptor degradation alone is sufficient for transient ERK activation, rendering the ERK to SOS negative feedback loop non-essential.
- Both receptor degradation and the negative feedback loop were found to be redundant, with each capable of compensating for the absence of the other.
- The study predicts that for non-degraded receptors like the insulin receptor, the negative feedback loop to SOS becomes essential for achieving a transient response.
Conclusions:
- Negative feedback plays a nuanced role in EGFR signaling, with receptor degradation being the primary mechanism for transient ERK activation.
- Different receptors may rely on distinct pathway features for signal termination, highlighting the complexity of cellular signaling networks.
- These findings offer new insights into EGFR signaling and have implications for understanding cancer biology and therapeutic strategies.
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