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Updated: May 15, 2026

Engineering Antiviral Agents via Surface Plasmon Resonance
Published on: June 14, 2022
Peptoid-Based Nanosheets Exhibiting Broad Antiviral Activity against Enveloped RNA Viruses
Baylie Phillips1, Thi Kim Hoang Trinh2, Jacob Beitzel1
1Department of Materials Science and Engineering, University of Washington, Seattle, Washington 98195, United States.
Abstract:
Enveloped RNA viruses, such as Influenza A (H1N1) and Sindbis virus, pose persistent global health threats due to their high mutation rates, efficient transmission, and frequent drug resistance. By mimicking host cell membrane receptors, multivalent virus inhibitors can block viral attachment, making them promising broad-spectrum antiviral agents. However, most of the existing antivirals are often limited by strain specificity, short-lived efficacy, and toxicity. Here, we introduce a broad-spectrum antiviral platform based on highly tunable and biocompatible two-dimensional nanomembranes (2DNMs) self-assembled from amphiphilic peptoids, operating via a nongenomic, mutation-insensitive mechanism. By varying peptoid sequence, we design and synthesize over 20 different 2DNMs with various surface charges and a high density of viral-attachment ligands (VALs). The self-assembled architecture of these stable 2DNMs provides cooperative noncovalent multivalent binding to virus particles that result in effective inhibition of viral infection. Screening of variants identified three leads that potently suppressed Influenza A (H1N1) and Sindbis virus infection across median tissue culture infectious dose (TCID50), plaque, RT-qPCR, and immunofluorescence assays, while maintaining >90% cell viability. These nanosheets significantly reduced infectious titers, viral RNA replication, and intracellular viral protein expression, indicating inhibition at early stages of viral entry and propagation. The sequence programmability, chemical robustness, and mutation-insensitive antiviral activity distinguish 2DNMs from traditional antivirals and position them as a versatile material platform for antiviral coatings, protective barriers, and prophylactic biomedical applications.
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