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Updated: Nov 5, 2025

Engineering Antiviral Agents via Surface Plasmon Resonance
Published on: June 14, 2022
Interactions of SARS-CoV-2 envelope protein with amilorides correlate with antiviral activity
Sang Ho Park1, Haley Siddiqi1, Daniela V Castro1
1Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, California, United States of America.
Abstract:
SARS-CoV-2 is the novel coronavirus that is the causative agent of COVID-19, a sometimes-lethal respiratory infection responsible for a world-wide pandemic. The envelope (E) protein, one of four structural proteins encoded in the viral genome, is a 75-residue integral membrane protein whose transmembrane domain exhibits ion channel activity and whose cytoplasmic domain participates in protein-protein interactions. These activities contribute to several aspects of the viral replication-cycle, including virion assembly, budding, release, and pathogenesis. Here, we describe the structure and dynamics of full-length SARS-CoV-2 E protein in hexadecylphosphocholine micelles by NMR spectroscopy. We also characterized its interactions with four putative ion channel inhibitors. The chemical shift index and dipolar wave plots establish that E protein consists of a long transmembrane helix (residues 8-43) and a short cytoplasmic helix (residues 53-60) connected by a complex linker that exhibits some internal mobility. The conformations of the N-terminal transmembrane domain and the C-terminal cytoplasmic domain are unaffected by truncation from the intact protein. The chemical shift perturbations of E protein spectra induced by the addition of the inhibitors demonstrate that the N-terminal region (residues 6-18) is the principal binding site. The binding affinity of the inhibitors to E protein in micelles correlates with their antiviral potency in Vero E6 cells: HMA ≈ EIPA > DMA >> Amiloride, suggesting that bulky hydrophobic groups in the 5' position of the amiloride pyrazine ring play essential roles in binding to E protein and in antiviral activity. An N15A mutation increased the production of virus-like particles, induced significant chemical shift changes from residues in the inhibitor binding site, and abolished HMA binding, suggesting that Asn15 plays a key role in maintaining the protein conformation near the binding site. These studies provide the foundation for complete structure determination of E protein and for structure-based drug discovery targeting this protein.
Insights
Researchers used NMR spectroscopy to determine the structure of the SARS-CoV-2 E protein, identifying its ion channel inhibitor binding site and informing drug discovery for COVID-19.
Area of Science:
- Structural Biology
- Virology
- Biophysics
Background:
- SARS-CoV-2 causes COVID-19, a global pandemic.
- The viral envelope (E) protein is crucial for viral replication and pathogenesis.
- E protein functions as an ion channel and mediates protein-protein interactions.
Purpose of the Study:
- Determine the structure and dynamics of the full-length SARS-CoV-2 E protein.
- Characterize the interactions between E protein and ion channel inhibitors.
- Identify the binding site and key residues involved in inhibitor binding.
Main Methods:
- NMR spectroscopy was used to study the SARS-CoV-2 E protein in micelles.
- Chemical shift index and dipolar wave plots were employed for structural analysis.
- Chemical shift perturbations were measured to map inhibitor binding sites.
Main Results:
- The E protein has a transmembrane helix (residues 8-43) and a cytoplasmic helix (residues 53-60).
- The N-terminal region (residues 6-18) is the primary binding site for ion channel inhibitors.
- Inhibitor binding affinity correlates with antiviral potency, with HMA and EIPA being most effective.
- Asn15 is critical for maintaining the conformation of the inhibitor binding site.
Conclusions:
- The study provides structural insights into the SARS-CoV-2 E protein and its interactions with inhibitors.
- Findings lay the groundwork for structure-based drug discovery targeting the E protein.
- Understanding E protein structure and function is vital for developing new antiviral strategies.
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