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Published on: August 21, 2019
Dual neonate vaccine platform against HIV-1 and M. tuberculosis
Richard Hopkins1, Anne Bridgeman, Joan Joseph
1MRC Human Immunology Unit, Weatherall Institute of Molecular Medicine, University of Oxford, Oxford, United Kingdom.
Insights
This study developed a novel dual vaccine platform using BCG and MVA to protect infants against both HIV-1 and tuberculosis (TB). The prime-boost regimen successfully induced robust T cell responses against both diseases, establishing proof-of-principle for infant vaccination.
Area of Science:
- Vaccinology and Immunology
- Infectious Diseases
- Pediatric Health
Background:
- Tuberculosis (TB) and Human Immunodeficiency Virus type 1 (HIV-1) are major global health threats, particularly impacting infants in high-risk regions.
- Bacillus Calmette-Guérin (BCG) vaccination is standard for infants in Africa to prevent disseminated TB but offers variable protection against pulmonary TB.
- Infants born to HIV-1 positive mothers face a significant risk of transmission through breastfeeding, necessitating effective prevention strategies.
Purpose of the Study:
- To develop and evaluate a dual vaccine platform for simultaneous protection against HIV-1 and TB in neonates.
- To construct and test novel recombinant vaccines, BCG.HIVA and MVA.HIVA.85A, for their immunogenicity in a prime-boost strategy.
- To establish proof-of-principle for a dual infant vaccine candidate suitable for clinical development.
Main Methods:
- Construction of recombinant modified vaccinia virus Ankara (MVA) vaccines expressing HIV-1 and M. tuberculosis antigens, driven by different promoters (mMVA.HIVA.85A and sMVA.HIVA.85A).
- Assessment of immunogenicity of MVA vaccines alone and in combination with BCG.HIVA(222) in a prime-boost regimen in BALB/c mice.
- Evaluation of T cell responses induced by the BCG.HIVA(222)-mMVA.HIVA.85A prime-boost strategy against both HIV-1 and M. tuberculosis.
Main Results:
- The markerless mMVA.HIVA.85A vaccine was suitable for clinical manufacture.
- While sMVA.HIVA.85A showed higher antigen expression, mMVA.HIVA.85A demonstrated superior immunogenicity in mice.
- A prime-boost regimen using BCG.HIVA(222) followed by mMVA.HIVA.85A elicited robust T cell responses against both HIV-1 and M. tuberculosis.
Conclusions:
- A dual vaccine platform using BCG and MVA has been successfully established for simultaneous protection against HIV-1 and TB in infants.
- The BCG.HIVA(222)-mMVA.HIVA.85A prime-boost strategy is a promising approach for early-life immunization against these devastating diseases.
- This platform provides a foundation for developing lifelong immunity through subsequent booster vaccinations.
Abstract:
Acquired immunodeficiency syndrome and tuberculosis (TB) are two of the world's most devastating diseases. The first vaccine the majority of infants born in Africa receive is Mycobacterium bovis bacillus Calmette-Guérin (BCG) as a prevention against TB. BCG protects against disseminated disease in the first 10 years of life, but provides a variable protection against pulmonary TB and enhancing boost delivered by recombinant modified vaccinia virus Ankara (rMVA) expressing antigen 85A (Ag85A) of M. tuberculosis is currently in phase IIb evaluation in African neonates. If the newborn's mother is positive for human immunodeficiency virus type 1 (HIV-1), the baby is at high risk of acquiring HIV-1 through breastfeeding. We suggested that a vaccination consisting of recombinant BCG expressing HIV-1 immunogen administered at birth followed by a boost with rMVA sharing the same immunogen could serve as a strategy for prevention of mother-to-child transmission of HIV-1 and rMVA expressing an African HIV-1-derived immunogen HIVA is currently in phase I trials in African neonates. Here, we aim to develop a dual neonate vaccine platform against HIV-1 and TB consisting of BCG.HIVA administered at birth followed by a boost with MVA.HIVA.85A. Thus, mMVA.HIVA.85A and sMVA.HIVA.85A vaccines were constructed, in which the transgene transcription is driven by either modified H5 or short synthetic promoters, respectively, and tested for immunogenicity alone and in combination with BCG.HIVA(222). mMVA.HIVA.85A was produced markerless and thus suitable for clinical manufacture. While sMVA.HIVA.85A expressed higher levels of the immunogens, it was less immunogenic than mMVA.HIVA.85A in BALB/c mice. A BCG.HIVA(222)-mMVA.HIVA.85A prime-boost regimen induced robust T cell responses to both HIV-1 and M. tuberculosis. Therefore, proof-of-principle for a dual anti-HIV-1/M. tuberculosis infant vaccine platform is established. Induction of immune responses against these pathogens soon after birth is highly desirable and may provide a basis for lifetime protection maintained by boosts later in life.
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