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Updated: Jul 9, 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
Physical linkage of naturally complexed bacterial outer membrane proteins enhances immunogenicity
Henriette Macmillan1, Junzo Norimine, Kelly A Brayton
1Department of Veterinary Microbiology and Pathology, Washington State University, Pullman, WA 99164, USA.
Abstract:
The outer membrane proteins (OMPs) of bacterial pathogens are essential for their growth and survival and especially for attachment and invasion of host cells. Since the outer membrane is the interface between the bacterium and the host cell, outer membranes and individual OMPs are targeted for development of vaccines against many bacterial diseases. Whole outer membrane fractions often protect against disease, and this protection cannot be fully reproduced by using individual OMPs. Exactly how the interactions among individual OMPs influence immunity is not well understood. We hypothesized that one OMP rich in T-cell epitopes can act as a carrier for an associated OMP which is poor in T-cell epitopes to generate T-dependent antibody responses, similar to the hapten-carrier effect. Major surface protein 1a (MSP1a) and MSP1b1 occur as naturally complexed OMPs in the Anaplasma marginale outer membrane. Previous studies demonstrated that immunization with the native MSP1 heteromer induced strong immunoglobulin G (IgG) responses to both proteins, but only MSP1a stimulated strong CD4+ T-cell responses. Therefore, to test our hypothesis, constructs of CD4+ T-cell epitopes from MSP1a linked to MSP1b1 were compared with individually administered MSP1a and MSP1b1 for induction of MSP1b-specific IgG. By linking the T-cell epitopes from MSP1a to MSP1b1, significantly higher IgG titers against MSP1b1 were induced. Understanding how the naturally occurring intermolecular interactions between OMPs influence the immune response may lead to more effective vaccine design.
Insights
Bacterial outer membrane proteins (OMPs) are key vaccine targets. Linking T-cell epitopes from one OMP to another enhanced antibody responses, suggesting a new strategy for more effective bacterial vaccines.
Area of Science:
- Microbiology
- Immunology
- Vaccine Development
Background:
- Bacterial outer membrane proteins (OMPs) are crucial for pathogen survival and host cell interaction.
- OMPs are primary targets for vaccine development, but whole outer membrane fractions are often more effective than individual OMPs.
- The influence of OMP interactions on immune responses remains poorly understood.
Purpose of the Study:
- To investigate if T-cell epitopes from one OMP can act as a carrier for another OMP to enhance antibody responses.
- To test the hypothesis using Major Surface Protein 1a (MSP1a) and MSP1b1 from Anaplasma marginale.
Main Methods:
- Constructs of CD4+ T-cell epitopes from MSP1a were linked to MSP1b1.
- These constructs were compared with individually administered MSP1a and MSP1b1 for their ability to induce MSP1b-specific IgG.
- Immunoglobulin G (IgG) titers were measured to assess the immune response.
Main Results:
- Linking T-cell epitopes from MSP1a to MSP1b1 significantly increased IgG titers against MSP1b1.
- Immunization with the native MSP1 heteromer induced strong IgG responses to both MSP1a and MSP1b1, but only MSP1a elicited strong CD4+ T-cell responses.
- Individual OMPs did not elicit the same level of T-dependent antibody response as the linked constructs.
Conclusions:
- Intermolecular interactions between OMPs can significantly influence immune responses.
- Utilizing OMPs rich in T-cell epitopes as carriers for OMPs poor in epitopes can enhance T-dependent antibody responses.
- This finding offers a novel approach for designing more effective vaccines against bacterial pathogens.
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