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Updated: Oct 5, 2025

Engineering Antiviral Agents via Surface Plasmon Resonance
Published on: June 14, 2022
High affinity protein surface binding through co-engineering of nanoparticles and proteins
Moumita Ray1, Giorgia Brancolini2, David C Luther1
1Department of Chemistry, University of Massachusetts, 710 North Pleasant Street, Amherst, MA 01003, USA. rotello@chem.umass.edu.
Abstract:
Control over supramolecular recognition between proteins and nanoparticles (NPs) is of fundamental importance in therapeutic applications and sensor development. Most NP-protein binding approaches use 'tags' such as biotin or His-tags to provide high affinity; protein surface recognition provides a versatile alternative strategy. Generating high affinity NP-protein interactions is challenging however, due to dielectric screening at physiological ionic strengths. We report here the co-engineering of nanoparticles and protein to provide high affinity binding. In this strategy, 'supercharged' proteins provide enhanced interfacial electrostatic interactions with complementarily charged nanoparticles, generating high affinity complexes. Significantly, the co-engineered protein-nanoparticle assemblies feature high binding affinity even at physiologically relevant ionic strength conditions. Computational studies identify both hydrophobic and electrostatic interactions as drivers for these high affinity NP-protein complexes.
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