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Structure of a 14-3-3ε:FOXO3apS253 Phosphopeptide Complex Reveals 14-3-3 Isoform-Specific Binding of Forkhead Box
Subashini Mathivanan1, Puneeth Kumar Chunchagatta Lakshman1, Manvi Singh1
1Centre for Chemical Biology & Therapeutics, inStem & NCBS, Bellary Road, Bangalore 560065, India.
Abstract:
The transcriptional activity of Forkhead Box O3 (FOXO3a) is inactivated by AKT-mediated phosphorylation on Serine 253 (S253), which enables FOXO3a binding to 14-3-3. Phosphorylated FOXO3a binding to 14-3-3 facilitates the nuclear exclusion of FOXO3a, causing cancer cell proliferation. The FOXO3a/14-3-3 interaction has, therefore, emerged as an important therapeutic target. Here, we report a comprehensive analysis using fluorescence polarization, isothermal titration calorimetry, small-angle X-ray scattering, X-ray crystallography, and molecular dynamics simulations to gain molecular-level insights into the interaction of FOXO3apS253 phosphopeptide with 14-3-3ε. A high-resolution structure of the fluorophore-labeled FOXO3apS253:14-3-3ε complex revealed a distinct mode of interaction compared to other 14-3-3 phosphopeptide complexes. FOXO3apS253 phosphopeptide showed significant structural difference in the positions of the -3 and -4 Arg residues relative to pSer, compared to that of a similar phosphopeptide, FOXO1pS256 bound to 14-3-3σ. Moreover, molecular dynamics studies show that the significant structural changes and molecular interactions noticed in the crystal structure of FOXO3apS253:14-3-3ε are preserved over the course of the simulation. Thus, this study reveals structural differences between the binding to 14-3-3 isoforms of FOXO1pS256 versus FOXO3apS253, providing a framework for the rational design of isoform-specific FOXO/14-3-3 protein-protein interaction inhibitors for therapy.
Insights
Researchers detailed the interaction between FOXO3a phosphopeptide and 14-3-3ε, revealing unique structural insights. This discovery aids in designing targeted therapies for cancer by inhibiting specific FOXO/14-3-3 protein interactions.
Area of Science:
- Molecular Biology
- Structural Biology
- Biochemistry
Background:
- Forkhead Box O3 (FOXO3a) activity is regulated by AKT-mediated phosphorylation at Serine 253 (S253), leading to 14-3-3 binding.
- This interaction causes nuclear exclusion of FOXO3a, promoting cancer cell proliferation, making the FOXO3a/14-3-3 interaction a therapeutic target.
Purpose of the Study:
- To provide molecular-level insights into the interaction between the FOXO3apS253 phosphopeptide and 14-3-3ε.
- To characterize the structural basis of this interaction using biophysical and computational methods.
Main Methods:
- Fluorescence polarization
- Isothermal titration calorimetry
- Small-angle X-ray scattering
- X-ray crystallography
- Molecular dynamics simulations
Main Results:
- A high-resolution crystal structure of the FOXO3apS253:14-3-3ε complex revealed a unique binding mode.
- Significant structural differences were observed in the positioning of Arg residues relative to pSer in FOXO3apS253 compared to FOXO1pS256.
- Molecular dynamics simulations confirmed the stability of the observed structural features and interactions.
Conclusions:
- The study elucidates distinct structural differences in the binding of FOXO1pS256 and FOXO3apS253 phosphopeptides to 14-3-3 isoforms.
- These findings provide a foundation for developing isoform-specific inhibitors targeting FOXO/14-3-3 protein-protein interactions for therapeutic applications.
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