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Tailored Branched Polymer-Protein Bioconjugates for Tunable Sieving Performance.

Kriti KapilHironobu MurataGrzegorz SzczepaniakAlan J RussellKrzysztof Matyjaszewski
Published in: ACS macro letters (2024)
Protein-polymer conjugates combine the unique properties of both proteins and synthetic polymers, making them important materials for biomedical applications. In this work, we synthesized and characterized protein-branched polymer bioconjugates that were precisely designed to retain protein functionality while preventing unwanted interactions. Using chymotrypsin as a model protein, we employed a controlled radical branching polymerization (CRBP) technique utilizing a water-soluble inibramer, sodium 2-bromoacrylate. The green-light-induced atom transfer radical polymerization (ATRP) enabled the grafting of branched polymers directly from the protein surface in the open air. The resulting bioconjugates exhibited a predetermined molecular weight, well-defined architecture, and high branching density. Conformational analysis by SEC-MALS validated the controlled grafting of branched polymers. Furthermore, enzymatic assays revealed that densely grafted polymers prevented protein inhibitor penetration, and the resulting conjugates retained up to 90% of their enzymatic activity. This study demonstrates a promising strategy for designing protein-polymer bioconjugates with tunable sieving behavior, opening avenues for applications in drug delivery and biotechnology.
Keyphrases
  • protein protein
  • drug delivery
  • amino acid
  • binding protein
  • small molecule
  • nitric oxide
  • hydrogen peroxide
  • water soluble
  • cancer therapy
  • molecular dynamics
  • high throughput
  • molecular dynamics simulations