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Updated: Sep 30, 2025

Amplification, Next-generation Sequencing, and Genomic DNA Mapping of Retroviral Integration Sites
Published on: March 22, 2016
Amber Suppression Technology for Mapping Site-specific Viral-host Protein Interactions in Mammalian Cells
Nur Firdaus Isa1, Olivier Bensaude2, Shona Murphy1
1Sir William Dunn School of Pathology, University of Oxford, Oxford OX1 3RE, UK.
Abstract:
Probing the molecular interactions of viral-host protein complexes to understand pathogenicity is essential in modern virology to help the development of antiviral therapies. Common binding assays, such as co-immunoprecipitation or pull-downs, are helpful in investigating intricate viral-host proteins interactions. However, such assays may miss low-affinity and favour non-specific interactions. We have recently incorporated photoreactive amino acids at defined residues of a viral protein in vivo, by introducing amber stop codons (TAG) and using a suppressor tRNA. This is followed by UV-crosslinking, to identify interacting host proteins in live mammalian cells. The affinity-purified photo-crosslinked viral-host protein complexes are further characterized by mass spectrometry following extremely stringent washes. This combinatorial site-specific incorporation of a photoreactive amino acid and affinity purification-mass spectrometry strategy allows the definition of viral-host protein contacts at single residue resolution and greatly reduces non-specific interactors, to facilitate characterization of viral-host protein interactions. Graphic abstract: Schematic overview of the virus-host interaction assay based on an amber suppression approach. Mammalian cells grown in Bpa-supplemented medium are co-transfected with plasmids encoding viral sequences carrying a Flag tag, a (TAG) stop codon at the desired position, and an amber suppressor tRNA (tRNACUA)/aminoacyl tRNA synthetase (aaRS) orthogonal pair. Cells are then exposed to UV, to generate protein-protein crosslinks, followed by immunoprecipitation with anti-Flag magnetic beads. The affinity-purified crosslinks are probed by western blot using an anti-Flag antibody and the crosslinked host proteins are characterised by mass spectrometry.
Insights
This study introduces a novel method using photoreactive amino acids and UV-crosslinking to precisely map viral-host protein interactions in live cells. This technique enhances the identification of low-affinity interactions crucial for antiviral therapy development.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Understanding viral-host protein interactions is key for developing antiviral therapies.
- Existing binding assays may miss low-affinity or non-specific interactions.
- Site-specific mapping of these interactions is challenging.
Purpose of the Study:
- To develop a method for precise mapping of viral-host protein interactions in live mammalian cells.
- To identify low-affinity and specific viral-host protein contacts.
- To facilitate the development of targeted antiviral therapies.
Main Methods:
- Incorporation of photoreactive amino acids into viral proteins in vivo using amber stop codons and suppressor tRNA.
- UV-crosslinking to capture transient protein-protein interactions.
- Affinity purification and mass spectrometry for high-resolution characterization of viral-host complexes.
Main Results:
- Successfully mapped viral-host protein contacts at single residue resolution.
- Significantly reduced identification of non-specific interactors compared to traditional methods.
- Enabled characterization of intricate viral-host protein interactions.
Conclusions:
- The developed strategy combines site-specific photoreactive amino acid incorporation with affinity purification-mass spectrometry.
- This approach accurately identifies specific viral-host protein contacts, including low-affinity ones.
- It offers a powerful tool for advancing virology research and antiviral drug discovery.

