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Pre-Vaccination Immune Profiles and Responsiveness to Innate Stimuli Predict Reactogenicity and Antibody Magnitude
Amanda E Zelkoski1,2, Emilie Goguet2,3, Emily Samuels Darcey2,3
1Department of Pediatrics, Uniformed Services University of Health Sciences, Bethesda, MD 20814, USA.
Background:
While mRNA vaccines effectively limit hospitalization and severe COVID-19 disease, the precise early innate immune mechanisms associated with their efficacy and reactogenicity remain underexplored. The identification of innate immune correlates prior to vaccination could provide mechanistic insights and potentially predict responses.
Methods:
We developed an in vitro model to study the innate immune activation of pre-vaccination peripheral blood mononuclear cells (PBMCs) collected from participants enrolled in a well-characterized COVID-19 BioNTech/Pfizer BNT162b2 vaccine (BNT162b2 vaccine) cohort. Pre-vaccination PBMCs were stimulated with empty lipid nanoparticle (LNP), mRNA-LNP, or Toll-like receptor (TLR) agonists. Using multiparameter spectral flow cytometry, we analyzed the baseline immune state, innate responsiveness to stimuli, and cytokine profiles of study participants. These pre-vaccination in vitro results were analyzed for correlations with post-vaccination symptoms and spike-specific IgG responses.
Results:
Baseline dendritic cell (DC) states inversely correlated with the magnitude of symptoms following BNT162b2 vaccination. Heightened conventional (cDC) and weaker plasmacytoid DC (pDC) responses to RNA stimuli correlated with the magnitude of an acute IgG response. IgG durability modestly correlated with a lower pDC state but higher cDC2 and monocyte baseline states and inversely correlated with TLR3 agonist responsiveness.
Conclusions:
The pre-vaccination assessment of innate immune function and resting states can be used to fit models potentially predictive of immunogenicity and reactogenicity to BNT162b2 vaccination. Pre-vaccination DC states may influence reactogenicity, while the response to RNA may impact antibody responses. Our data suggest that pre-vaccination assessment offers insights into the innate mechanisms driving mRNA vaccine responses and has predictive potential.
Insights
Pre-vaccination immune cell states can predict mRNA vaccine side effects and antibody responses. Assessing innate immune function before vaccination offers insights into vaccine immunogenicity and reactogenicity.
Area of Science:
- Immunology
- Vaccinology
Background:
- mRNA vaccines (e.g., BNT162b2) are effective against severe COVID-19 but early innate immune mechanisms are not fully understood.
- Identifying pre-vaccination immune correlates could offer mechanistic insights and predictive capabilities for vaccine responses.
Purpose of the Study:
- To investigate the relationship between pre-vaccination innate immune cell states and subsequent BNT162b2 vaccine responses.
- To explore potential predictive markers for mRNA vaccine immunogenicity and reactogenicity.
Main Methods:
- Developed an in vitro model using pre-vaccination peripheral blood mononuclear cells (PBMCs).
- Stimulated PBMCs with lipid nanoparticles (LNPs), mRNA-LNPs, or Toll-like receptor (TLR) agonists.
- Analyzed immune cell states and cytokine profiles via spectral flow cytometry, correlating with post-vaccination data.
Main Results:
- Baseline dendritic cell (DC) states inversely correlated with symptom severity post-vaccination.
- Enhanced conventional DC (cDC) and reduced plasmacytoid DC (pDC) responses to RNA correlated with stronger acute IgG responses.
- IgG durability was associated with specific baseline DC and monocyte states and TLR3 agonist responsiveness.
Conclusions:
- Pre-vaccination innate immune assessment can predict BNT162b2 vaccine immunogenicity and reactogenicity.
- Pre-vaccination DC states may influence vaccine side effects, while RNA response impacts antibody levels.
- These findings highlight the predictive potential of assessing innate immune function prior to mRNA vaccination.
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