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Exploring the Allosteric Response of Fascin to Its Inhibitor
Jinmei Pan1, Kai Chen1, Lirui Lin2,3
1Department of Biochemistry and Molecular Biology, Shantou University Medical College, Shantou 515041, PR China.
Abstract:
Fascin is a major actin-binding protein (ABP) for stabilizing filopodia to support efficient adhesion and migration of cancer cells. Fascin is also highly expressed in metastatic tumors. Disrupting the actin-binding site (ABS) on fascin constitutes a critical approach to hindering tumor metastasis. The G2 series of small molecules was formulated with the specific purpose of obstructing the binding pocket of fascin. The determination of inhibitor-induced structural dynamics in fascin is crucial for a comprehensive of its biological functions and the strategic development of pharmacological interventions. In this study, we utilized both equilibrium and dynamical-nonequilibrium molecular dynamics (D-NEMD) to elucidate the molecular mechanisms responsible for transmitting structural changes when removing the G2 inhibitor, in both the wild type (WT) and its variants. Our findings indicate that when G2 is removed, structural dynamics in fascin originate from the G2 binding pocket of fascin and propagate signals through the conformational transformation that spans all four β-trefoil domains. Although different mutant variants demonstrated comparable conformational networks, they showed varying response times. However, the signaling pathways in mutants remained consistent in comparison to the WT fascin. This study provides valuable insights into the structural features and communication pathways of fascin and provides avenues for the development of targeted inhibitors with promising prospects in cancer therapy.
Insights
This study reveals how cancer cell protein fascin
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Fascin is a key actin-binding protein (ABP) essential for cancer cell adhesion and migration.
- High fascin expression correlates with tumor metastasis, making its actin-binding site (ABS) a target for anti-cancer drugs.
- Small molecules like the G2 series aim to inhibit fascin by blocking its binding pocket.
Purpose of the Study:
- To investigate the molecular mechanisms of structural changes in fascin upon removal of the G2 inhibitor.
- To understand how structural dynamics propagate through fascin's domains.
- To compare signaling pathways in wild-type (WT) fascin and its variants.
Main Methods:
- Employed equilibrium and dynamical-nonequilibrium molecular dynamics (D-NEMD) simulations.
- Analyzed structural dynamics in both WT fascin and engineered variants.
- Investigated signal propagation from the inhibitor binding pocket through the protein structure.
Main Results:
- Structural dynamics originate from the G2 binding pocket and propagate across all four β-trefoil domains upon inhibitor removal.
- Mutant variants showed similar conformational networks but varied response times.
- Signaling pathways in mutants were consistent with WT fascin.
Conclusions:
- Fascin's structural dynamics are transmitted through its entire structure upon G2 inhibitor dissociation.
- Understanding these pathways in fascin is crucial for developing effective cancer metastasis inhibitors.
- This research offers insights for designing targeted therapies against fascin in cancer treatment.
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