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bioRxiv · 10.1101/2022.12.02.518838

Mechanisms that promote the evolution of cross-reactive antibodies upon vaccination with designed influenza immunogens

Abstract

SUMMARYImmunogens that elicit broadly neutralizing antibodies targeting the conserved receptor-binding site (RBS) on influenza hemagglutinin (HA) may serve as a universal influenza vaccine candidate. Here, we developed a computational model to interrogate antibody evolution by affinity maturation after immunization with two types of immunogens: a chimeric heterotrimeric HAtCh antigen that is enriched for the RBS epitope relative to other B cell epitopes, and a cocktail composed of three non-epitope-enriched homotrimeric antigens that comprise the HAtCh. Experiments in mice (Caradonna et al.) find that the chimeric antigen outperforms the cocktail for eliciting RBS-directed antibodies. We show that this result follows from an interplay between how B cells engage these antigens and interact with diverse T helper cells, and requires T cell-mediated selection of germinal center B cells to be a stringent constraint. Our results shed new light on antibody evolution, and highlight how immunogen design and T cells modulate vaccination outcomes.

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Yang, L., Caradonna, T. M., Schmidt, A., Chakraborty, A. K.. 2022-12-03. Mechanisms that promote the evolution of cross-reactive antibodies upon vaccination with designed influenza immunogens. https://doi.org/10.1101/2022.12.02.518838

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