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Protein-polymer bioconjugates via a versatile oxygen tolerant photoinduced controlled radical polymerization approach

Author

Listed:
  • Alexis Theodorou

    (University of Crete)

  • Evelina Liarou

    (University of Warwick)

  • David M. Haddleton

    (University of Warwick)

  • Iren Georgia Stavrakaki

    (University of Crete)

  • Panagiotis Skordalidis

    (University of Crete)

  • Richard Whitfield

    (ETH Zurich)

  • Athina Anastasaki

    (ETH Zurich)

  • Kelly Velonia

    (University of Crete)

Abstract

The immense application potential of amphiphilic protein-polymer conjugates remains largely unexplored, as established “grafting from” synthetic protocols involve time-consuming, harsh and disruptive deoxygenation methods, while “grafting to” approaches result in low yields. Here we report an oxygen tolerant, photoinduced CRP approach which readily affords quantitative yields of protein-polymer conjugates within 2 h, avoiding damage to the secondary structure of the protein and providing easily accessible means to produce biomacromolecular assemblies. Importantly, our methodology is compatible with multiple proteins (e.g. BSA, HSA, GOx, beta-galactosidase) and monomer classes including acrylates, methacrylates, styrenics and acrylamides. The polymerizations are conveniently conducted in plastic syringes and in the absence of any additives or external deoxygenation procedures using low-organic content media and ppm levels of copper. The robustness of the protocol is further exemplified by its implementation under UV, blue light or even sunlight irradiation as well as in buffer, nanopure, tap or even sea water.

Suggested Citation

  • Alexis Theodorou & Evelina Liarou & David M. Haddleton & Iren Georgia Stavrakaki & Panagiotis Skordalidis & Richard Whitfield & Athina Anastasaki & Kelly Velonia, 2020. "Protein-polymer bioconjugates via a versatile oxygen tolerant photoinduced controlled radical polymerization approach," Nature Communications, Nature, vol. 11(1), pages 1-11, December.
  • Handle: RePEc:nat:natcom:v:11:y:2020:i:1:d:10.1038_s41467-020-15259-z
    DOI: 10.1038/s41467-020-15259-z
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    Cited by:

    1. Haoyang Feng & Zhe Chen & Lei Li & Xiaoyang Shao & Wenru Fan & Chen Wang & Lin Song & Krzysztof Matyjaszewski & Xiangcheng Pan & Zhenhua Wang, 2024. "Aerobic mechanochemical reversible-deactivation radical polymerization," Nature Communications, Nature, vol. 15(1), pages 1-9, December.
    2. Ziying Li & Kaiyuan Song & Yu Chen & Qijing Huang & Lujia You & Li Yu & Baiyang Chen & Zihang Yuan & Yaqin Xu & Yue Su & Lintai Da & Xinyuan Zhu & Ruijiao Dong, 2024. "Sequence-encoded bioactive protein-multiblock polymer conjugates via quantitative one-pot iterative living polymerization," Nature Communications, Nature, vol. 15(1), pages 1-14, December.

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