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Insights into the Interaction Landscape of the EVH1 Domain of Mena
Lanette LaComb1, Agnidipta Ghosh1, Jeffrey B Bonanno1
1Department of Biochemistry, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx, New York 10461, United States.
Abstract:
The Enabled/VASP homology 1 (EVH1) domain is a small module that interacts with proline-rich stretches in its ligands and is found in various signaling and scaffolding proteins. Mena, the mammalian homologue of Ena, is involved in diverse actin-associated events, such as membrane dynamics, bacterial motility, and tumor intravasation and extravasation. Two-dimensional (2D) 1H-15N HSQC NMR was used to study Mena EVH1 binding properties, defining the amino acids involved in ligand recognition for the physiological ligands ActA and PCARE, and a synthetic polyproline-inspired small molecule (hereafter inhibitor 6c). Chemical shift perturbations indicated that proline-rich segments bind in the conserved EVH1 hydrophobic cleft. The PCARE-derived peptide elicited more perturbations compared to the ActA-derived peptide, consistent with a previous report of a structural alteration in the solvent-exposed β7-β8 loop. Unexpectedly, EVH1 and the proline-rich segment of PTP1B did not exhibit NMR chemical shift perturbations; however, the high-resolution crystal structure implicated the conserved EVH1 hydrophobic cleft in ligand recognition. Intrinsic steady-state fluorescence and fluorescence polarization assays indicate that residues outside the proline-rich segment enhance the ligand affinity for EVH1 (Kd = 3-8 μM). Inhibitor 6c displayed tighter binding (Kd ∼ 0.3 μM) and occupies the same EVH1 cleft as physiological ligands. These studies revealed that the EVH1 domain enhances ligand affinity through recognition of residues flanking the proline-rich segments. Additionally, a synthetic inhibitor binds more tightly to the EVH1 domain than natural ligands, occupying the same hydrophobic cleft.
Insights
The Enabled/VASP homology 1 (EVH1) domain binds proline-rich ligands in a hydrophobic cleft. Residues flanking these segments enhance binding affinity, with a synthetic inhibitor showing stronger interaction than natural ligands.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- The Enabled/VASP homology 1 (EVH1) domain is a protein module interacting with proline-rich sequences, crucial in signaling and scaffolding.
- Mena, an EVH1-containing protein, plays roles in actin dynamics, membrane trafficking, and cancer metastasis.
Purpose of the Study:
- To investigate the binding properties of the Mena EVH1 domain with its physiological ligands and a synthetic inhibitor.
- To identify the specific amino acids and regions involved in ligand recognition by the EVH1 domain.
Main Methods:
- Two-dimensional 1H-15N HSQC NMR spectroscopy to map ligand binding sites.
- Intrinsic steady-state fluorescence and fluorescence polarization assays to quantify binding affinities.
- Analysis of high-resolution crystal structures.
Main Results:
- Proline-rich segments of ligands bind to the conserved hydrophobic cleft of the EVH1 domain.
- Residues flanking the proline-rich regions significantly enhance ligand affinity.
- A synthetic inhibitor (6c) binds with higher affinity (Kd ≈ 0.3 μM) than natural ligands (Kd = 3-8 μM) to the same cleft.
Conclusions:
- The EVH1 domain utilizes flanking residues, in addition to the proline-rich motif, for enhanced ligand binding.
- Synthetic molecules can be designed to achieve higher affinity interactions with the EVH1 domain than natural substrates, offering potential therapeutic strategies.
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