4.8 Article

Engineering a Rugged Nanoscaffold To Enhance Plug-and-Display Vaccination

期刊

ACS NANO
卷 12, 期 9, 页码 8855-8866

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.8b02805

关键词

bionanotechnology; nanomedicine; vaccination; protein engineering; bioconjugation; virus-like particle; self-assembly

资金

  1. Clarendon Scholarship
  2. St. Edmund Hall, Oxford
  3. Medical Research Council [MR/P001351/1]
  4. Wellcome Trust [106917/Z/I5/Z]
  5. MRC [MR/P001351/1] Funding Source: UKRI

向作者/读者索取更多资源

Nanoscale organization is crucial to stimulating an immune response. Using self-assembling proteins as multimerization platforms provides a safe and immunogenic system to vaccinate against otherwise weakly immunogenic antigens. Such multimerization platforms are generally based on icosahedral viruses and have led to vaccines given to millions of people. It is unclear whether synthetic protein nanoassemblies would show similar potency. Here we take the computationally designed porous dodecahedral i301 60-mer and rationally engineer this particle, giving a mutated i301 (mi3) with improved particle uniformity and stability. To simplify the conjugation of this nanoparticle, we employ a SpyCatcher fusion of mi3, such that an antigen of interest linked to the SpyTag peptide can spontaneously couple through isopeptide bond formation (Plug-and-Display). SpyCatcher-mi3 expressed solubly to high yields in Escherichia coli, giving more than 10-fold greater yield than a comparable phage- derived icosahedral nanoparticle, SpyCatcher-AP205. SpyCatcher-mi3 nanoparticles showed high stability to temperature, freeze-thaw, lyophilization, and storage over time. We demonstrate approximately 95% efficiency coupling to different transmission-blocking and blood-stage malaria antigens. Plasmodium falciparum CyRPA was conjugated to SpyCatcher-mi3 nanoparticles and elicited a high avidity antibody response, comparable to phage-derived virus-like particles despite their higher valency and RNA cargo. The simple production, precise derivatization, and exceptional ruggedness of this nanoscaffold should facilitate broad application for nanobiotechnology and vaccine development.

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