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.

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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