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Biology subjects

Casal, A.

Publications and source records attributed to Casal, A..

2 recordsLinked to original sources

Design and development of a SARS and MERS Combination Vaccine

This work was conducted during the COVID-19 pandemic prior to the licensing of any vaccines against COVID-19. Although several COVID-19 vaccines are now commercially available, this research on the development of a combination Severe Acute Respiratory Syndrome-associated Coronavirus (SARS-CoV), SARS-coronavirus 2 (SARS-CoV-2), and Middle Eastern Respiratory Syndrome (MERS) is still relevant and shows how a combination vaccine can be designed, produced and rapidly tested in the laboratory. We present the development of a combination vaccine designed to provide immunity against Severe Acute Respiratory Syndrome-associated Coronavirus (SARS-CoV), SARS-coronavirus 2 (SARS-CoV-2), and Middle Eastern Respiratory Syndrome (MERS). The primary objective of this vaccine design is twofold: to mitigate the burden of coronavirus and to address the specific vulnerability of regions prone to recurrent MERS outbreaks. Our combination vaccine incorporates antigenic components from zoonotic sources, specifically SARS-CoV, SARS-CoV-2, and MERS. We assess the impact of combining different Spike proteins S1 subunit antigens, due to its recognised immunogenic potential, and adjuvants on serum antibody titres, virus neutralizing capabilities, and inter-antigen immune responses. We report a robust and broad antibody response against SARS-CoV-2 and related coronaviruses, which was amplified by different adjuvant formulations, including alum, MPLA, CpG, and Squalene-in-Water Emulsion.

immunology↗

Long-term retention of antigens in germinal centres is controlled by the spatial organisation of the follicular dendritic cell network

Germinal centers (GCs) require sustained availability of antigens to promote antibody affinity maturation against pathogens and vaccines. A key source of antigens for GC B cells are immune complexes (ICs) displayed on follicular dendritic cells (FDCs). Here we show that FDC spatial organization regulates antigen dynamics in the GC. We show the existence of two light zone (LZ) FDC populations, which differ in the duration of antigen retention. While the entire light zone (LZ) FDC network captures ICs initially, only the central cells of the network function as a long-term antigen reservoir, where different antigens arriving from subsequent immunizations co-localize. Mechanistically, central FDCs constitutively express subtly higher CR2 membrane densities than peripheral FDCs, which strongly increases the IC retention half-life. Even though repeated immunizations gradually saturate central FDCs, B cell responses remain efficient because new antigens partially displace old ones. These results reveal the principles shaping antigen display on FDCs during the GC reaction.

immunology↗