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Updated: Jan 17, 2026

Engineering Antiviral Agents via Surface Plasmon Resonance
Published on: June 14, 2022
Structurally diverse viral inhibitors converge on a shared mechanism to stall the antigen transporter TAP
James Lee1,2, Victor Manon1,2,3, Jue Chen1,2
1Laboratory of Membrane Biophysics and Biology, The Rockefeller University, New York, NY 10065.
Abstract:
In the host-pathogen arms race, herpesviruses and poxviruses encode proteins that sabotage the transporter associated with antigen processing (TAP), thereby suppressing MHC-I antigen presentation and enabling lifelong infection. Of the five known viral TAP inhibitors, only the herpes simplex virus (HSV) protein ICP47 has been structurally resolved. We now report cryoelectron microscopy structures of TAP in complex with the remaining four: BNLF2a (Epstein-Barr virus), hUS6 (human cytomegalovirus), bUL49.5 (bovine herpesvirus 1), and CPXV012 (cowpox virus), assembling a structural atlas of viral TAP evasion. Despite employing divergent sequences, folds, and conformational targets, these viral inhibitors converge on a common strategy: they stall TAP from the alternating access cycle, precluding peptide entry into the ER and shielding infected cells from cytotoxic T cell surveillance. These findings reveal striking functional convergence and provide a structural framework for rational antiviral design.
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