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Intranasal Administration of Recombinant Influenza Vaccines in Chimeric Mouse Models to Study Mucosal Immunity
Published on: June 25, 2015
Use of bioengineered human commensal gut bacteria-derived microvesicles for mucosal plague vaccine delivery and
A L Carvalho1, A Miquel-Clopés1, U Wegmann1
1Gut Microbes and Health Research Programme, Quadram Institute Bioscience, Norwich, UK.
Abstract:
Plague caused by the Gram-negative bacterium, Yersinia pestis, is still endemic in parts of the world today. Protection against pneumonic plague is essential to prevent the development and spread of epidemics. Despite this, there are currently no licensed plague vaccines in the western world. Here we describe the means of delivering biologically active plague vaccine antigens directly to mucosal sites of plague infection using highly stable microvesicles (outer membrane vesicles; OMVs) that are naturally produced by the abundant and harmless human commensal gut bacterium Bacteroides thetaiotaomicron (Bt). Bt was engineered to express major plague protective antigens in its OMVs, specifically Fraction 1 (F1) in the outer membrane and LcrV (V antigen) in the lumen, for targeted delivery to the gastrointestinal (GI) and respiratory tracts in a non-human primate (NHP) host. Our key findings were that Bt OMVs stably expresses F1 and V plague antigens, particularly the V antigen, in the correct, immunogenic form. When delivered intranasally V-OMVs elicited substantive and specific immune and antibody responses, both in the serum [immunoglobulin (Ig)G] and in the upper and lower respiratory tract (IgA); this included the generation of serum antibodies able to kill plague bacteria. Our results also showed that Bt OMV-based vaccines had many desirable characteristics, including: biosafety and an absence of any adverse effects, pathology or gross alteration of resident microbial communities (microbiotas); high stability and thermo-tolerance; needle-free delivery; intrinsic adjuvanticity; the ability to stimulate both humoral and cell-mediated immune responses; and targeting of primary sites of plague infection.
Insights
Engineered bacteria outer membrane vesicles (OMVs) deliver plague vaccine antigens to mucosal sites. This novel approach shows promise for preventing pneumonic plague by eliciting strong immune responses.
Area of Science:
- Microbiology
- Immunology
- Vaccinology
Background:
- Plague, caused by *Yersinia pestis*, remains a global health concern with no licensed vaccines in Western countries.
- Effective protection against pneumonic plague is crucial for epidemic prevention.
- Current vaccine development faces challenges in delivering antigens to mucosal infection sites.
Purpose of the Study:
- To develop a novel plague vaccine delivery system using engineered bacterial outer membrane vesicles (OMVs).
- To assess the immunogenicity and protective potential of OMVs expressing plague antigens in a non-human primate model.
Main Methods:
- Engineered *Bacteroides thetaiotaomicron* (Bt) to produce OMVs displaying plague antigens (Fraction 1 and LcrV).
- Administered intranasally to non-human primates to target respiratory and gastrointestinal tracts.
- Evaluated immune responses, including serum IgG and respiratory IgA, and bactericidal activity.
Main Results:
- Engineered Bt OMVs stably expressed immunogenic plague antigens (F1 and V).
- Intranasal V-OMV administration induced significant serum IgG and respiratory IgA responses.
- Generated antibodies demonstrated plague-killing activity, indicating functional protection.
- Bt OMVs exhibited biosafety, stability, thermo-tolerance, and needle-free delivery advantages.
Conclusions:
- Engineered Bt OMVs represent a promising, stable, and safe platform for mucosal plague vaccine delivery.
- This OMV-based vaccine strategy elicits robust, site-specific immune responses against plague.
- The needle-free, thermostable nature of these OMVs facilitates potential widespread application.
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