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Biology subjects

Reusch, L.

Publications and source records attributed to Reusch, L..

2 recordsLinked to original sources

Antibodies, Memory B Cells, and Antigen Valency Reshape B Cell Responses to Drifted Influenza Virus Vaccination

Antigenic drift in influenza A virus hemagglutinin (HA) limits humoral protective immunity. Here, we combine cell fate mapping with adoptive transfer of antigenic-site-specific antibodies (Abs) and memory B cells (MBCs) with moderately drifted HA vaccination in mice to better understand how this influences immune escape and protective responses. We demonstrate that drift in vaccine antigens affects MBC reactivation and naive B cell responses in germinal centers (GC). Strikingly, passively transferred monoclonal and polyclonal Abs suppress cognate epitope-specific GC B cell responses only when the vaccine antigen was multivalent while responses to monovalent recombinant trimeric HA remain unaffected. Using MBC and Abs co-transfer we unveil that antigenic site-specific suppression is more potent in blocking MBC rather than naive B cells entry into GC. In addition, we show that MBC hamper naive B cell recruitment to GC even in the absence of antibody transfer through local differentiation and Ab release in the responding lymph node. Altogether, our study reveals that serum Ab feedback depends on vaccine valency, while pre-existing MBC alone without Abs present can reshape immunodominance of naive B cells, with critical practical implications for rational universal influenza vaccine design.

immunology↗

Computationally designed stem-epitope mimetics elicit broadly reactive antibodies

Broad protection against diverse influenza viruses can be conferred by broadly neutralizing antibodies (bnAbs) targeting a conserved site on the hemagglutinin (HA) stem domain. However, the low immunogenicity of this antigenic region hinders the robust induction of such antibodies. Here, we showcase a structure-based immunogen design strategy focusing on the surface mimicry of antigenic sites. By leveraging the structural definition of a stem epitope, we apply computational protein design to develop epitope mimetics to focus the immune response against this site of viral vulnerability. The structurally complex antigenic site is displayed on heterologous protein scaffolds, retaining excellent binding towards known HA stem-specific bnAbs. Our epitope-mimetic induces stem-specific antibodies against highly divergent group 1 and 2 subtypes. The results provide a general framework for the design of novel immunogens eliciting focused immune responses which may be a valuable tool in the development of effective vaccine candidates against other variable pathogens.

biochemistry↗