Rational design of respiratory syncytial virus dimeric F-subunit vaccines in protein and mRNA forms

Jing Li1, Xuehui Ma2, Zepeng Xu3

  • 1Laboratory of Pathogen Microbiology and Immunology, Institute of Microbiology, Chinese Academy of Sciences, Beijing, 100101, China; Beijing Life Science Academy, Beijing, 102209, China.

Ebiomedicine
|August 31, 2025
PubMed

Insights

New single-chain dimeric (scDimer) respiratory syncytial virus (RSV) vaccines show enhanced immunogenicity and protection in animal models. These novel RSV vaccines demonstrate potential for improved clinical efficacy against RSV infections.

Area of Science:

  • Vaccinology
  • Immunology
  • Protein Engineering

Background:

  • Respiratory syncytial virus (RSV) is a major global health concern, especially for vulnerable populations.
  • Current RSV vaccines target the prefusion F protein but face challenges with epitope stability and immunogenicity.
  • Declining epitope activity during storage reduces the effectiveness of existing RSV vaccines.

Purpose of the Study:

  • To engineer a novel pre-F antigen that preserves key immunodominant epitopes and enhances vaccine immunogenicity.
  • To develop and characterize single-chain dimeric (scDimer) antigens derived from RSV F protein subtypes A and B.
  • To evaluate the immunogenicity and protective efficacy of these engineered antigens in various vaccine formulations and delivery strategies.

Main Methods:

  • Rational design of monomeric and single-chain dimeric (scDimer) RSV F protein antigens.
  • Construction and selection of scDimer variants (scDimer AA and scDimer AB) based on expression and stability.
  • Structural and protein characterization of engineered antigens.
  • Immunization of rodent models and mice with protein and mRNA vaccine formulations.
  • Evaluation of immune responses, including antibody and T cell responses, and protection against RSV challenge.
  • Assessment of intranasal versus intramuscular boosting strategies.

Main Results:

  • Engineered scDimer proteins retained critical pre-F epitopes, showing improved stability and expression.
  • scDimers elicited superior binding and neutralizing antibody responses compared to monomeric antigens in rodents.
  • Immunization with scDimer antigens, particularly with adjuvants, boosted T cell responses.
  • scDimer vaccination led to significantly reduced viral load after RSV challenge in animal models.
  • mRNA vaccine versions also demonstrated protective efficacy in mice.
  • Intranasal boosting provided protection comparable to intramuscular boosting, potentially reducing the risk of vaccine-enhanced disease.

Conclusions:

  • scDimer-based RSV vaccines offer a promising strategy for enhanced protection against RSV infection.
  • The antigen design approach optimizes epitope presentation, leading to a higher proportion of potent neutralizing antibodies.
  • This work provides a novel perspective for the development of next-generation RSV vaccines.
Abstract

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