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Joint mechanistic modeling of viral and antibody responses to vaccines in non-human primates to quantify SARS-CoV-2 mechanistic correlates of protection

Alexandre, M.; Marlin, R.; Bossevot, L.; Cavarelli, M.; Dereuddre-Bosquet, N.; Relouzat, F.; Centlivre, M.; Le Grand, R.; Thiebaut, R.; Levy, Y.; Prague, M.

2026-01-16 immunology
10.64898/2026.01.15.699647 bioRxiv
Show abstract

In a global SARS-CoV-2 landscape of hybrid immunity resulting from a vaccinated worldwide population and the emergence of new variants able to escape immunity, the identification and quantification of correlates of protection (CoPs) is crucial for the adaptation of next-generation SARS-CoV-2 vaccines. Antibodies and their neutralizing capacity have been identified as reliable mechanistic CoPs. Here, we proposed an original mechanistic model jointly describing viral and antibody dynamics, and their mutual interactions, observed after SARS-CoV-2 infection in non-human primates (NHPs) with distinct immunological backgrounds. From the model, the concentration of neutralizing antibodies being protective against viral infection spreading was derived using the reproduction number. Counterfactual simulations were also performed to better understand and validate immune mechanisms driving immune control. The model was estimated on viral, binding (bAb), and neutralizing (nAb) antibody dynamics, with data collected in 34 naive and convalescent NHPs. Animals were involved in a preclinical study evaluating two next-generation protein-based vaccines targeting the RBD of the Spike protein to CD40-expressing cells, and the original BNT162b2 mRNA vaccine against Delta SARS-CoV-2 infection. Our model validated the functionality of nAb to neutralize viruses as the primary mechanism of protection. An inhibitory antibody concentration against Delta variant of 20 AU/mL was deemed protective against Delta infection in naive animals. Moreover, we showed the strong benefit of hybrid immunity to induce faster and more protective antibody responses pointing out the crucial role of the memory B-cell immune response in viral control. Finally, an additional effect of natural immunity beyond antibodies and enhancing the elimination of infected cells was identified, suggesting the potential role of the T-cell response in viral control. Our model showed the benefit of combining information from both viral and antibody responses to better qualitatively and quantitatively inform on their protective capacity against Delta SARS-CoV-2 infection.

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