A self-assembled nanoparticle vaccine displaying chimeric and trimeric RBD-HRC elicits broad-spectrum neutralizing

Didi Wan1, Lili Li1, He Feng1

  • 1BGI College & Henan Institute of Medical and Pharmaceutical Sciences, Zhengzhou University, Zhengzhou, Henan, China.

Microbiology Spectrum
|March 30, 2026
PubMed

Insights

A novel nanoparticle vaccine displaying modified coronavirus spike proteins elicits broad-spectrum neutralizing antibodies and robust T-cell responses. This scalable platform shows promise for developing effective vaccines against rapidly evolving viral threats.

Area of Science:

  • Virology
  • Immunology
  • Vaccine Development

Background:

  • Coronaviruses exhibit high mutation rates and cross-species transmission, posing global health risks.
  • Traditional vaccine development faces challenges from rapid viral evolution and immune evasion.
  • Broad-spectrum vaccines are crucial for controlling rapidly evolving pathogens.

Purpose of the Study:

  • To develop a scalable vaccine platform for broad-spectrum protection against rapidly evolving viruses.
  • To design a multivalent nanoparticle vaccine displaying modified coronavirus spike receptor-binding domain-heptad repeat C-domain (RBD-HRC) trimers.
  • To evaluate the immunogenicity and neutralizing activity of the developed vaccine platform.

Main Methods:

  • Constructed self-assembling nanoparticles displaying glycosylation-modified RBD-HRC trimers.
  • Created multimerized, polyvalent chimeric RBD-HRC nanoparticle vaccines.
  • Assessed the neutralizing antibody response against coronavirus pseudoviruses.
  • Evaluated cellular immune response, including T-cell activation.

Main Results:

  • The trivalent RBD-HRC nanoparticle vaccine demonstrated the broadest neutralizing antibody response.
  • The vaccine formulation elicited strong T-cell activation and robust cellular immunity.
  • Neutralizing activity was observed against coronaviruses not included in the vaccine design.
  • The nanoparticle vaccine closely mimicked the native spike protein structure, enhancing immunogenicity.

Conclusions:

  • The developed nanoparticle vaccine platform is scalable and versatile for targeting diverse viral pathogens.
  • This approach offers a promising strategy for creating broad-spectrum vaccines against rapidly evolving viruses.
  • The multivalent nanoparticle vaccine design enhances immunogenicity and broad-spectrum efficacy.