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Updated: Aug 5, 2025

Visualizing the Conformational Dynamics of Membrane Receptors Using Single-Molecule FRET
Published on: August 17, 2022
Decoding the Conformational Selective Mechanism of FGFR Isoforms: A Comparative Molecular Dynamics Simulation
Mingyang Zhang1, Miersalijiang Yasen2, Shaoyong Lu1,3
1Medicinal Chemistry and Bioinformatics Center, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China.
Abstract:
Fibroblast growth factor receptors (FGFRs) play critical roles in the regulation of cell growth, differentiation, and proliferation. Specifically, FGFR2 gene amplification has been implicated in gastric and breast cancer. Pan-FGFR inhibitors often cause large toxic side effects, and the highly conserved ATP-binding pocket in the FGFR1/2/3 isoforms poses an immense challenge in designing selective FGFR2 inhibitors. Recently, an indazole-based inhibitor has been discovered that can selectively target FGFR2. However, the detailed mechanism involved in selective inhibition remains to be clarified. To this end, we performed extensive molecular dynamics simulations of the apo and inhibitor-bound systems along with multiple analyses, including Markov state models, principal component analysis, a cross-correlation matrix, binding free energy calculation, and community network analysis. Our results indicated that inhibitor binding induced the phosphate-binding loop (P-loop) of FGFR2 to switch from the open to the closed conformation. This effect enhanced extensive hydrophobic FGFR2-inhibitor contacts, contributing to inhibitor selectivity. Moreover, the key conformational intermediate states, dynamics, and driving forces of this transformation were uncovered. Overall, these findings not only provided a structural basis for understanding the closed P-loop conformation for therapeutic potential but also shed light on the design of selective inhibitors for treating specific types of cancer.
Insights
A novel indazole-based inhibitor selectively targets Fibroblast Growth Factor Receptor 2 (FGFR2) by inducing a closed phosphate-binding loop conformation, enhancing selectivity for cancer therapy.
Area of Science:
- Molecular biology
- Biochemistry
- Computational chemistry
Background:
- Fibroblast growth factor receptors (FGFRs) regulate cell growth and proliferation.
- FGFR2 gene amplification is linked to gastric and breast cancers.
- Developing selective FGFR2 inhibitors is challenging due to conserved ATP-binding pockets in FGFR isoforms, leading to toxic side effects with pan-FGFR inhibitors.
Purpose of the Study:
- To elucidate the mechanism of selective FGFR2 inhibition by a newly discovered indazole-based compound.
- To provide a structural basis for the design of targeted cancer therapies.
Main Methods:
- Extensive molecular dynamics simulations of apo and inhibitor-bound FGFR2.
- Analyses including Markov state models, principal component analysis, cross-correlation matrix, binding free energy calculations, and community network analysis.
Main Results:
- Inhibitor binding promotes a switch of the FGFR2 phosphate-binding loop (P-loop) from an open to a closed conformation.
- This conformational change enhances hydrophobic interactions between FGFR2 and the inhibitor, contributing to selectivity.
- Key intermediate conformational states, dynamics, and driving forces of the P-loop transition were identified.
Conclusions:
- The study provides a structural understanding of the closed P-loop conformation in FGFR2 inhibition.
- Findings offer insights into designing selective FGFR2 inhibitors for cancer treatment.
- The indazole-based inhibitor demonstrates potential for targeted cancer therapy with reduced toxicity.
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