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Biology subjects

de Graaf, E. L.

Publications and source records attributed to de Graaf, E. L..

2 recordsLinked to original sources

Afucosylated immunoglobulin G responses are a hallmark of enveloped virus infections and show an exacerbated phenotype in COVID-19

IgG antibodies are crucial for protection against invading pathogens. A highly conserved N-linked glycan within the IgG-Fc-tail, essential for IgG function, shows variable composition in humans. Afucosylated IgG variants are already used in anti-cancer therapeutic antibodies for their elevated binding and killing activity through Fc receptors (Fc{gamma}RIIIa). Here, we report that afucosylated IgG which are of minor abundance in humans ([~]6% of total IgG) are specifically formed against surface epitopes of enveloped viruses after natural infections or immunization with attenuated viruses, while protein subunit immunization does not elicit this low fucose response. This can give beneficial strong responses, but can also go awry, resulting in a cytokine-storm and immune-mediated pathologies. In the case of COVID-19, the critically ill show aggravated afucosylated-IgG responses against the viral spike protein. In contrast, those clearing the infection unaided show higher fucosylation levels of the anti-spike protein IgG. Our findings indicate antibody glycosylation as a potential factor in inflammation and protection in enveloped virus infections including COVID-19.

immunology

Site-specific glycosylation mapping of Fc gamma receptor IIIb from neutrophils of health donors

Fc gamma receptors (Fc{gamma}R) translate antigen-recognition by immunoglobulin G (IgG) into various immune responses. A better understanding of this key element of immunity promises novel insights into mechanisms of (auto-/allo-)immune diseases and more rationally designed antibody-based drugs. Glycosylation on both IgG and Fc{gamma}R impacts their interaction dramatically. In this study, we developed a straightforward and comprehensive analytical methodology to map Fc{gamma}RIIIb glycosylation from primary human material. In contrast to recently published alternatives, we assessed all glycosylation sites in a single LC-MS/MS run and simultaneously determined the donor allotype. Studying Fc{gamma}RIIIb derived from healthy donor neutrophils, we observed profound differences as compared to the soluble variant and the homologous Fc{gamma}RIIIa on natural killer cells. This method will allow assessment of Fc{gamma}RIII glycosylation differences between individuals, cell types, subcellular locations and pathophysiological conditions.

immunology