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A Versatile and Robust Platform for the Scalable Manufacture of Biomimetic Nanovaccines

  • Hanze Hu
  • , Chao Yang
  • , Fan Zhang
  • , Mingqiang Li
  • , Zhaoxu Tu
  • , Lizhong Mu
  • , Jianati Dawulieti
  • , Yeh Hsing Lao
  • , Zixuan Xiao
  • , Huize Yan
  • , Wen Sun
  • , Dan Shao
  • , Kam W. Leong
  • Columbia University
  • South China University of Technology
  • Sun Yat-Sen University
  • Dalian University of Technology

Research output: Contribution to journalArticlepeer-review

86 Scopus citations

Abstract

Biomimetic strategies are useful for designing potent vaccines. Decorating a nanoparticulate adjuvant with cell membrane fragments as the antigen-presenting source exemplifies, such as a promising strategy. For translation, a standardizable, consistent, and scalable approach for coating nanoadjuvant with the cell membrane is important. Here a turbulent mixing and self-assembly method called flash nanocomplexation (FNC) for producing cell membrane-coated nanovaccines in a scalable manner is demonstrated. The broad applicability of this FNC technique compared with bulk-sonication by using ten different core materials and multiple cell membrane types is shown. FNC-produced biomimetic nanoparticles have promising colloidal stability and narrow particle polydispersity, indicating an equal or more homogeneous coating compared to the bulk-sonication method. The potency of a nanovaccine comprised of B16-F10 cancer cell membrane decorating mesoporous silica nanoparticles loaded with the adjuvant CpG is then demonstrated. The FNC-fabricated nanovaccines when combined with anti-CTLA-4 show potency in lymph node targeting, DC antigen presentation, and T cell immune activation, leading to prophylactic and therapeutic efficacy in a melanoma mouse model. This study advances the design of a biomimetic nanovaccine enabled by a robust and versatile nanomanufacturing technique.

Original languageEnglish
Article number2002020
JournalAdvanced Science
Volume8
Issue number15
DOIs
StatePublished - Aug 4 2021

Keywords

  • biomimetics
  • cancer vaccine
  • cell membrane
  • flash nanocomplexation
  • mesoporous silica nanoparticles

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