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Updated: Mar 6, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Insight into resistance mechanisms of AZD4547 and E3810 to FGFR1 gatekeeper mutation via theoretical study
Donglou Liang1, Qiaowan Chen2, Yujin Guo1
1Pharmacy Department, Jining First People's Hospital.
Abstract:
Inhibitors targeting the amplification of the fibroblast growth factor receptor 1 (FGFR1) have found success in the treatment of FGFR1-positive squamous cell lung and breast cancers. A secondary mutation of gatekeeper residue (V561M) in the binding site has been linked to the acquired resistance. Recently, two well-known small molecule inhibitors of FGFR1, AZD4547 and E3810, reported that the V561M mutation confers significant resistance to E3810, while retaining affinity for AZD4547. FGFR1 is widely investigated as potential therapeutic target, while there are few computational studies made to understand the resistance mechanisms about FGFR1 V561M gatekeeper mutation. In this study, molecular docking, classical molecular dynamics simulations, molecular mechanics/generalized born surface area (MM/GBSA) free energy calculations, and umbrella sampling (US) simulations were carried out to make clear the principle of the binding preference of AZD4547 and E3810 toward FGFR1 V561M gatekeeper mutation. The results provided by MM/GBSA reveal that AZD4547 has similar binding affinity to both FGFR1WT and FGFR1V561M, whereas E3810 has much higher binding affinity to FGFR1WT than to FGFR1V561M. Comparison of individual energy terms indicates that the major variation of E3810 between FGFR1WT and FGFR1V561M are van der Waals interactions. In addition, US simulations prove that the potential of mean force (PMF) profile of AZD4547 toward FGFR1WT and FGFR1V561M has similar PMF depth. However, the PMF profile of E3810 toward FGFR1WT and FGFR1V561M has much higher PMF depth, suggesting that E3810 is more easily dissociated from FGFR1V561M than from FGFR1WT. The results not only show the drug-resistance determinants of FGFR1 gatekeeper mutation but also provide valuable implications and provide vital clues for the development of new inhibitors to combat drug resistance.
Insights
Fibroblast growth factor receptor 1 (FGFR1) inhibitors face resistance due to the V561M mutation. This study reveals AZD4547 maintains affinity, while E3810 loses it, offering insights into overcoming drug resistance.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Fibroblast growth factor receptor 1 (FGFR1) inhibitors are vital for treating FGFR1-positive cancers.
- Acquired resistance to FGFR1 inhibitors can arise from gatekeeper mutations, such as V561M.
- Understanding resistance mechanisms is crucial for developing effective cancer therapies.
Purpose of the Study:
- To elucidate the binding mechanisms of AZD4547 and E3810 to wild-type (WT) FGFR1 and the V561M mutant.
- To investigate the molecular basis for differential drug resistance conferred by the FGFR1 V561M gatekeeper mutation.
Main Methods:
- Molecular docking simulations
- Classical molecular dynamics (MD) simulations
- Molecular mechanics/generalized Born surface area (MM/GBSA) free energy calculations
- Umbrella sampling (US) simulations
Main Results:
- MM/GBSA calculations showed AZD4547 maintains similar binding affinity to both FGFR1 WT and V561M, while E3810 exhibits significantly lower affinity for the V561M mutant.
- Van der Waals interactions were identified as the primary energy component affected by the V561M mutation for E3810.
- Umbrella sampling simulations confirmed that AZD4547 has comparable potential of mean force (PMF) depths for both FGFR1 variants, whereas E3810 shows a shallower PMF depth for the V561M mutant, indicating easier dissociation.
Conclusions:
- The FGFR1 V561M gatekeeper mutation confers resistance to E3810 by altering binding interactions, primarily van der Waals forces.
- AZD4547 demonstrates retained affinity for the V561M mutant, suggesting its potential efficacy in resistant cases.
- These findings provide critical insights into drug resistance mechanisms and guide the design of novel FGFR1 inhibitors to overcome resistance.
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