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J. P. Pezacki

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Open access Aug 2026

SARS-CoV-2 Orf3a Protein Interaction Mapping Using Unnatural Amino Acid Incorporation.

Mapping transient protein-protein interactions remain a major challenge in studying viral host-pathogen interfaces. While some virus-host interactions are stable and readily captured, the majority are highly dynamic, reflecting the need for a small number of viral proteins to engage distinct host factors at different stages of the life cycle. Here, we employ a protein engineering strategy based on the site-specific incorporation of the non-canonical amino acid p-azido-L-phenylalanine (AzF) to enable photo-crosslinking proteomic analysis of the SARS-CoV-2 accessory protein Orf3a in live cells. Genetic installation of AzF at residue K198 of Orf3a permitted UV-induced covalent capture of proximal host interacting proteins, overcoming challenges associated with membrane localization and limited protein abundance. A total of 248 high-confidence Orf3a-interacting proteins were reproducibly identified and subjected to gene ontology analysis, revealing enrichment in innate immune signaling, antiviral defense, RNA processing, and viral replication-associated pathways. Orf3a is an accessory protein that functions as a viroporin and traffics across multiple cellular compartments, and was found to interact with host RNA helicases, RNA-binding proteins, immune regulators, and metabolic enzymes implicated in SARS-CoV-2 infection. Together, these results demonstrate that genetically encoded, site-specific photo-crosslinking enables selective capture of transient interactions that are often missed by nonspecific 254nm UV crosslinking approaches and highlights Orf3a as a multifunctional protein that engages diverse host pathways. More broadly, this study establishes a generalizable framework for leveraging non-canonical amino acid-based protein engineering approaches to interrogate dynamic host-pathogen interactions.

E. Lundrigan, Noreen Ahmed, J. P. Pezacki · 0 citations
Open access Aug 2026

Towards programmable metallonucleases via genetic code expansion

The rapid advancement of protein engineering and genetic code expansion technologies over the last decade has reshaped how researchers rationally design proteins with novel catalytic functions. Among these approaches, the site-specific incorporation of unnatural amino acids has enabled the introduction of chemical functionalities that are inaccessible to the canonical amino acid space. In this perspective, we highlight the metal-chelating UAA (2,2′-bipyridin-5-yl) alanine (BpyAla) and its emerging utility in mediating nucleic acid cleavage. Multiple studies have demonstrated the successful site-specific incorporation of BpyAla into proteins of interest, where subsequent metal coordination enables catalytic cleavage of DNA and RNA substrates. Here, we discuss the potential of BpyAla-mediated nucleic acid cleavage, with emphasis on the development of next-generation BpyAla analogues, the exploration of alternative metal cofactors, cooperative and multi-residue design strategies, and the expansion of compatible protein scaffolds and nucleic acid substrates. Designable BpyAla-engineered systems represent an emerging frontier in artificial metallonuclease design, with potential long-term relevance to targeted nucleic acid therapeutics.

E. Lundrigan, Matthew T. O’Neill, J. P. Pezacki · 0 citations