Efficient recall of Omicron-reactive B cell memory after a third dose of SARS-CoV-2 mRNA vaccine

Rishi R Goel1,2, Mark M Painter1,2,3, Kendall A Lundgreen4

  • 1Institute for Immunology, University of Pennsylvania Perelman School of Medicine; Philadelphia, PA, USA.

Insights

mRNA vaccines induce durable antibody and memory B cell responses. A third dose boosts responses, but high antibody levels may limit further boosting effects.

Area of Science:

  • Immunology
  • Vaccinology
  • Molecular Biology

Background:

  • The long-term durability and quality of immune responses following mRNA vaccination, especially after a third dose, require further investigation.
  • Understanding the dynamics of antibody and memory B cell responses is crucial for optimizing vaccination strategies.

Approach:

  • Longitudinal analysis of antibody and memory B cell responses in individuals up to 9-10 months post-primary vaccination and 3 months post-third dose.
  • Assessment of antibody quality, memory B cell stability, cross-variant recognition, and the impact of pre-booster antibody titers on vaccine response.

Key Points:

  • Antibody decay slowed and stabilized by 9 months post-primary vaccination, with continued improvement in antibody quality.
  • Spike- and RBD-specific memory B cells remained stable, with a significant proportion recognizing multiple SARS-CoV-2 variants.
  • A third mRNA vaccine dose effectively boosted Omicron-specific memory B cells, with pre-existing memory B cell frequency correlating with increased neutralizing antibodies.

Conclusions:

  • High pre-booster antibody titers may inversely correlate with antibody boosting efficacy, potentially limiting immune memory reactivation.
  • These findings enhance understanding of immune memory dynamics after mRNA vaccination and subsequent antigen exposure.
  • The study provides insights into the long-term immune response to mRNA vaccines and potential implications for future vaccine doses or infections.

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