Related Experiment Video
Updated: Mar 31, 2026

A "Plug-And-Display" Nanoparticle Vaccine Platform Based on Outer Membrane Vesicles Displaying SARS-CoV-2 Receptor-Binding Domain
Published on: July 25, 2022
A self-assembled nanoparticle vaccine displaying chimeric and trimeric RBD-HRC elicits broad-spectrum neutralizing
1BGI College & Henan Institute of Medical and Pharmaceutical Sciences, Zhengzhou University, Zhengzhou, Henan, China.
Abstract:
Coronaviruses, known for their high mutation rates and character of cross-species transmission, continue to pose significant threats to global health, as demonstrated by outbreaks of SARS, MERS, and SARS-CoV-2. Vaccines remain the most effective means of preventing viral infection, transmission, and epidemic spread. However, traditional vaccine development faces significant challenges due to the rapid evolution of viruses and their ability to evade the immune system. In response, we present a novel vaccine design based on self-assembling nanoparticles that display multiple glycosylation-modified receptor-binding domain-heptad repeat C-domain (RBD-HRC) trimers, forming a multimerized, polyvalent chimeric RBD-HRC vaccine. This approach enhances immunogenicity by closely mimicking the native structure of the spike protein, thereby eliciting broad-spectrum neutralizing antibodies that can target coronavirus-derived pseudoviruses from different genera. Notably, it even demonstrates neutralizing activity against coronaviruses not included in the vaccine design. Additionally, this vaccine formulation induces a robust cellular immune response. The multivalent nature of the nanoparticle vaccine promotes stronger T-cell activation and exhibits enhanced broad-spectrum activity. Our strategy offers a scalable and versatile platform for the development of vaccines against a wide range of viral pathogens.
Importance:
Broad-spectrum vaccines are urgently needed to control the rapid evolution of viruses and their cross-species transmission. The effective presentation of epitopes, especially conserved ones, plays a critical role in vaccine design. Moreover, the polymerization of epitopes has been shown to significantly enhance immunogenicity. In this study, we present a scalable platform for developing broad-spectrum vaccines against rapidly evolving pathogens. This vaccine platform, based on self-assembling nanoparticles, displays glycosylation-modified coronavirus spike receptor-binding domain-heptad repeat C-domain (RBD-HRC) trimers, enabling the formation of multimerized and polyvalent chimeric antigens. We found that the trivalent RBD-HRC nanoparticle vaccine elicits the broadest neutralizing antibody response, strongest T-cell activation, and highest neutralization potency compared to other formulations, offering valuable insights for future vaccine development.
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.
More Related Videos
10:58Production of E. coli-expressed Self-Assembling Protein Nanoparticles for Vaccines Requiring Trimeric Epitope Presentation
Published on: August 21, 2019
12:09Protocol for Recombinant RBD-based SARS Vaccines: Protein Preparation, Animal Vaccination and Neutralization Detection
Published on: May 2, 2011