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January 25, 2026Cells3 citationsOpen Access

Development of a Cellular Membrane Nanovesicle-Based Vaccine Against Porcine Epidemic Diarrhea Virus

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XWXianjun WangWZWeibing ZhangHHHong Hu

Key Points

  • The aim is to develop an effective vaccine platform against porcine epidemic diarrhea virus (PEDV) using cellular membrane nanovesicles.
  • Engineered a cellular membrane nanovesicle (CMN)-based vaccine presenting the PEDV spike protein.
  • Expressed full-length and truncated spike proteins in Expi293F cells.
  • Assembled CMN vaccines by extracting cell membranes.
  • Evaluated safety and immune responses in murine and piglet models.
  • CMN vaccine elicited high-titer neutralizing antibodies and raised CD8+ T cell levels in mice.
  • No adverse effects were observed on body weight and liver/kidney function.
  • Immunized piglets generated strong humoral and CD8+ T cell responses.

Abstract

Porcine epidemic diarrhea virus (PEDV) has emerged as a major pathogen responsible for porcine diarrheal diseases, causing outbreaks of severe diarrhea and high mortality in neonatal piglets, thereby inflicting severe economic losses on the global swine industry. Current commercial PED vaccines, comprising conventional inactivated and live attenuated formulations, have exhibited progressively diminished efficacy in the face of emerging PEDV variants. The development of high-efficiency vaccine platforms is therefore critical for PED control. This study engineered a cellular membrane nanovesicle (CMN)-based vaccine, which differs from existing inactivated or subunit vaccines by presenting the PEDV spike (S) protein on the cell membranes to mimic the bilayer phospholipid structure of the viral envelope. The full-length S protein (FS, aa 19-1309) or a truncated S protein fragment (TS, aa 19-726) was expressed in Expi293F cells, followed by extraction of cell membranes to assemble antigen-displaying CMN vaccines. Compared with commercial live attenuated vaccine, administration of the CMN vaccine elicited high-titer neutralizing antibodies and elevated IFN-γ-producing CD8+ T cells in murine studies. Safety assessments revealed no adverse effects on body weight, hepatic/renal function indices, or histopathological parameters in vaccinated mice. Furthermore, immunization of piglets elicited notable humoral and CD8+ T cell immune responses. Collectively, the strategy of CMN-based vaccine described herein delivers a potential PEDV vaccine platform, thereby offering a novel avenue for next-generation veterinary vaccine development.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6975b1a9feba4585c2d6d281https://doi.org/10.3390/cells15020208
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