Alpha-galactosylceramide as mRNA vaccine adjuvant modulates cellular immunity against tuberculosis and contributes to antigen-specific lung-associated T cells with a TRM-associated phenotype following prime-pull strategy

Tuberculosis (TB) remains the leading cause of death from a single infectious agent worldwide, highlighting the need for improved vaccines beyond the limited protection currently provided by the Bacillus Calmette-Guérin (BCG) vaccine. Here we investigated the immunological impact of incorporating alpha-Galactosylceramide (αGC) into mRNA lipid nanoparticles (mRNA-LNPs) as a vaccination strategy against Mycobacterium tuberculosis (Mtb), the pathogen causing TB. Using Mtb antigens ESAT-6 and Ag85B, we demonstrate that αGC-adjuvanted mRNA-LNPs induce controlled activation of invariant natural killer T (iNKT) cells, thereby reshaping vaccine-induced immunity. Specifically, αGC incorporation promoted the generation of CD44 + CD69 + CD62L - CD4 + T cells in the spleen and altered the CD4 + T -helper (T H ) profile through the addition of modest T H 2 and T H 17 responses alongside robust T H 1 immunity. Furthermore, antigen-specific CD8 + T-cell responses against ESAT-6 and Ag85B were observed exclusively in the genetically diverse CB6F1/J mouse model, highlighting the importance of host genetic background in evaluating mRNA vaccine immunogenicity after homologous vaccination strategies. Finally, we demonstrate that using a heterologous prime–pull strategy combining intramuscular mRNA vaccination with local antigen instillation increased the frequency of antigen-specific lung-associated CD4 + T cells displaying a tissue residency-associated phenotype, with additional contribution of αGC adjuvantation to this response. In summary, these findings provide novel insights into αGC adjuvant-mediated immune modulation of mRNA vaccines and support further testing of protective efficacy of this approach against TB.

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Journal
Frontiers in Immunology
Published
2026-10-05
DOI
https://doi.org/10.3389/fimmu.2026.1929726
Primary Topic
Tuberculosis Research and Epidemiology
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article
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article

Alpha-galactosylceramide as mRNA vaccine adjuvant modulates cellular immunity against tuberculosis and contributes to antigen-specific lung-associated T cells with a TRM-associated phenotype following prime-pull strategy

Ine Lentacker, Laura Van Moortel, Rein Verbeke, Margaux De Meyer et al.
Frontiers in Immunology
Tuberculosis Research and Epidemiology
article

Alpha-galactosylceramide as mRNA vaccine adjuvant modulates cellular immunity against tuberculosis and contributes to antigen-specific lung-associated T cells with a TRM-associated phenotype following prime-pull strategy

Ine Lentacker, Laura Van Moortel, Rein Verbeke, Margaux De Meyer, Patrick J. Willems, Francis Impens, Karine Breckpot, Stefaan C. De Smedt, Caroline Demangel, Lorenzo Franceschini, Janne Swinnen, Ilke Aernout, Thomas Ehouarne, Margo De Velder, Kevin Mwangi, Aaron Verplancke, Kia Ferrell
article en

Abstract

Tuberculosis (TB) remains the leading cause of death from a single infectious agent worldwide, highlighting the need for improved vaccines beyond the limited protection currently provided by the Bacillus Calmette-Guérin (BCG) vaccine. Here we investigated the immunological impact of incorporating alpha-Galactosylceramide (αGC) into mRNA lipid nanoparticles (mRNA-LNPs) as a vaccination strategy against Mycobacterium tuberculosis (Mtb), the pathogen causing TB. Using Mtb antigens ESAT-6 and Ag85B, we demonstrate that αGC-adjuvanted mRNA-LNPs induce controlled activation of invariant natural killer T (iNKT) cells, thereby reshaping vaccine-induced immunity. Specifically, αGC incorporation promoted the generation of CD44 + CD69 + CD62L - CD4 + T cells in the spleen and altered the CD4 + T -helper (T H ) profile through the addition of modest T H 2 and T H 17 responses alongside robust T H 1 immunity. Furthermore, antigen-specific CD8 + T-cell responses against ESAT-6 and Ag85B were observed exclusively in the genetically diverse CB6F1/J mouse model, highlighting the importance of host genetic background in evaluating mRNA vaccine immunogenicity after homologous vaccination strategies. Finally, we demonstrate that using a heterologous prime–pull strategy combining intramuscular mRNA vaccination with local antigen instillation increased the frequency of antigen-specific lung-associated CD4 + T cells displaying a tissue residency-associated phenotype, with additional contribution of αGC adjuvantation to this response. In summary, these findings provide novel insights into αGC adjuvant-mediated immune modulation of mRNA vaccines and support further testing of protective efficacy of this approach against TB.

Frontiers in ImmunologyVol. 17
Vrije Universiteit Brussel (BE), Inserm (FR), Institut Pasteur (FR), Université Paris Cité (FR), Vlaams Instituut voor Biotechnologie (BE), Ghent University (BE)
Good health and well-being
Openalex Percentile: Top 17%
Tuberculosis Research and Epidemiology
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