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Published on: September 19, 2016
Particulate Mycobacterial Vaccines Induce Protective Immunity against Tuberculosis in Mice
Shuxiong Chen1, Diana H Quan2, Xiaonan T Wang2
1Centre for Cell Factories and Biopolymers, Griffith Institute for Drug Discovery, Griffith University, Brisbane, QLD 4111, Australia.
Abstract:
Currently available vaccines fail to provide consistent protection against tuberculosis (TB). New, improved vaccines are urgently needed for controlling the disease. The mycobacterial antigen fusions H4 (Ag85B-TB10.4) and H28 (Ag85B-TB10.4-Rv2660c) have been shown to be very immunogenic and have been considered as potential candidates for TB vaccine development. However, soluble protein vaccines are often poorly immunogenic, but augmented immune responses can be induced when selected antigens are delivered in particulate form. This study investigated whether the mycobacterial antigen fusions H4 and H28 can induce protective immunity when assembled into particulate vaccines (polyester nanoparticle-H4, polyester nanoparticle-H28, H4 nanoparticles and H28 nanoparticles). The particulate mycobacterial vaccines were assembled inside an engineered endotoxin-free production strain of Escherichia coli at high yield. Vaccine nanoparticles were purified and induced long-lasting antigen-specific T cell responses and protective immunity in mice challenged by aerosol with virulent Mycobacterium tuberculosis. A significant reduction of M. tuberculosis CFU, up to 0.7-log10 protection, occurred in the lungs of mice immunized with particulate vaccines in comparison to placebo-vaccinated mice (p < 0.0001). Polyester nanoparticles displaying the mycobacterial antigen fusion H4 induced a similar level of protective immunity in the lung when compared to M. bovis bacillus Calmette-Guérin (BCG), the currently approved TB vaccine. The safe and immunogenic polyester nanoparticle-H4 vaccine is a promising subunit vaccine candidate, as it can be cost-effectively manufactured and efficiently induces protection against TB.
Insights
New particulate vaccines using mycobacterial antigen fusions H4 and H28 show promise for tuberculosis (TB) prevention. Polyester nanoparticle-H4 demonstrated significant protection in mice, comparable to the BCG vaccine.
Area of Science:
- Vaccinology
- Immunology
- Microbiology
Background:
- Current tuberculosis (TB) vaccines offer inconsistent protection, necessitating novel vaccine strategies.
- Mycobacterial antigen fusions H4 and H28 are immunogenic but require effective delivery systems for enhanced efficacy.
- Particulate delivery systems can augment the immunogenicity of soluble protein antigens.
Purpose of the Study:
- To evaluate the immunogenicity and protective efficacy of particulate mycobacterial antigen fusions (H4 and H28) as potential TB vaccines.
- To assess the performance of polyester nanoparticle-based vaccines compared to existing TB vaccines.
Main Methods:
- Engineered endotoxin-free *Escherichia coli* to produce high yields of particulate vaccines (polyester nanoparticle-H4, polyester nanoparticle-H28).
- Purification of vaccine nanoparticles and assessment of antigen-specific T cell responses in immunized mice.
- Challenge of vaccinated mice with aerosolized virulent *Mycobacterium tuberculosis* to determine protective immunity.
Main Results:
- Particulate vaccines induced long-lasting antigen-specific T cell responses.
- Significant reduction (up to 0.7-log10) in *M. tuberculosis* colony-forming units (CFU) in the lungs of mice vaccinated with particulate vaccines.
- Polyester nanoparticle-H4 provided protective immunity comparable to the *M. bovis* bacillus Calmette-Guérin (BCG) vaccine.
Conclusions:
- Particulate formulation of mycobacterial antigen fusions H4 and H28 effectively induces protective immunity against TB in a mouse model.
- The polyester nanoparticle-H4 vaccine is a safe, cost-effective, and promising subunit vaccine candidate for TB.
- This approach offers a viable strategy for developing improved TB vaccines.
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