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Structural investigation of a C-terminal EphA2 receptor mutant: Does mutation affect the structure and interaction
Flavia A Mercurio1, Susan Costantini2, Concetta Di Natale3
1Institute of Biostructures and Bioimaging, CNR, Naples, Italy.
Abstract:
Ephrin A2 receptor (EphA2) plays a key role in cancer, it is up-regulated in several types of tumors and the process of ligand-induced receptor endocytosis, followed by degradation, is considered as a potential path to diminish tumor malignancy. Protein modulators of this mechanism are recruited at the cytosolic Sterile alpha motif (Sam) domain of EphA2 (EphA2-Sam) through heterotypic Sam-Sam associations. These interactions engage the C-terminal helix of EphA2 and close loop regions (the so called End Helix side). In addition, several studies report on destabilizing mutations in EphA2 related to cataract formation and located in/or close to the Sam domain. Herein, we analyzed from a structural point of view, one of these mutants characterized by the insertion of a novel 39 residue long polypeptide at the C-terminus of EphA2-Sam. A 3D structural model was built by computational methods and revealed partial disorder in the acquired C-terminal tail and a few residues participating in an α-helix and two short β-strands. We investigated by CD and NMR studies the conformational properties in solution of two peptides encompassing the whole C-terminal tail and its predicted helical region, respectively. NMR binding experiments demonstrated that these peptides do not interact relevantly with either EphA2-Sam or its interactor Ship2-Sam. Molecular dynamics (MD) simulations further indicated that the EphA2 mutant could be represented only through a conformational ensemble and that the C-terminal tail should not largely wrap the EphA2-Sam End-Helix interface and affect binding to other Sam domains.
Insights
Ephrin A2 receptor (EphA2) mutations can cause cataracts. Structural analysis of an EphA2 mutant reveals its C-terminal tail does not disrupt protein interactions crucial for cancer pathways.
Area of Science:
- Biochemistry
- Structural Biology
- Cancer Research
Background:
- Ephrin A2 receptor (EphA2) is upregulated in various cancers.
- Ligand-induced EphA2 endocytosis and degradation can reduce tumor malignancy.
- Protein modulators interact with the EphA2 Sterile alpha motif (Sam) domain.
Purpose of the Study:
- To structurally analyze an EphA2 mutant with a 39-residue insertion at the C-terminus.
- To investigate the conformational properties and binding interactions of the mutant C-terminal tail.
- To determine if the mutation affects EphA2-Sam domain interactions.
Main Methods:
- Computational 3D structural modeling.
- Circular dichroism (CD) and Nuclear Magnetic Resonance (NMR) spectroscopy.
- Molecular dynamics (MD) simulations.
Main Results:
- The mutant C-terminal tail exhibits partial disorder with some helical and beta-strand elements.
- Peptides of the C-terminal tail did not significantly bind to EphA2-Sam or Ship2-Sam.
- MD simulations suggest the mutant exists as a conformational ensemble and the tail does not block Sam-Sam interactions.
Conclusions:
- The analyzed EphA2 C-terminal insertion mutant likely does not interfere with Sam-Sam binding interfaces.
- The structural findings provide insights into EphA2 mutations, potentially relevant to both cataract formation and cancer therapy.
- Further research can explore therapeutic strategies targeting EphA2 interactions.
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