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Salanti, A.

Publications and source records attributed to Salanti, A..

2 recordsLinked to original sources

Afucosylated Plasmodium falciparum-specific IgG is induced by infection but not by subunit vaccination

IgG specific for members of the Plasmodium falciparum erythrocyte membrane protein 1(PfEMP1) family, which mediates receptor- and tissue-specific sequestration of infected erythrocytes (IEs), is a central component of naturally acquired malaria immunity. PfEMP1-specific IgG is thought to protect via inhibition of IE sequestration, and through IgG-Fc Receptor (Fc{gamma}R) mediated phagocytosis and killing of antibody-opsonized IEs. The affinity of afucosylated IgG to Fc{gamma}RIIIa is elevated up to 40-fold compared to fucosylated IgG, resulting in enhanced antibody-dependent cellular cytotoxicity. Most IgG in plasma is fully fucosylated, but afucosylated IgG is elicited in response to enveloped viruses and to paternal alloantigens during pregnancy. Here we show that naturally acquired PfEMP1-specific IgG is likewise markedly afucosylated in a stable and exposure-dependent manner, and efficiently induces Fc{gamma}RIIIa-dependent natural killer (NK) cell degranulation. In contrast, immunization with a soluble subunit vaccine based on VAR2CSA-type PfEMP1 resulted in fully fucosylated specific IgG. These results have implications for understanding natural and vaccine-induced antibody-mediated protective immunity to malaria. SummaryAfucosylated IgG has enhanced Fc-receptor affinity and functionality, and is formed specifically against membrane proteins of enveloped viruses. We show that this also applies to Plasmodium falciparum erythrocyte membrane-specific IgG induced by natural infection, but not by soluble PfEMP1 vaccination.

immunology

Site-specific O-glycosylation analysis of SARS-CoV-2 spike protein produced in insect and human cells

Enveloped viruses hijack not only the host translation processes, but also its glycosylation machinery, and to a variable extent cover viral surface proteins with tolerogenic host-like structures. SARS-CoV-2 surface protein S presents as a trimer on the viral surface and is covered by a dense shield of N-linked glycans, and a few O-glycosites have been reported. The location of O-glycans is controlled by a large family of initiating enzymes with variable expression in cells and tissues and hence difficult to predict. Here, we used our well-established O-glycoproteomic workflows to map the precise positions of O-linked glycosylation sites on three different entities of protein S - insect cell or human cell-produced ectodomains, or insect cell derived receptor binding domain (RBD). In total 25 O-glycosites were identified, with similar patterns in the two ectodomains of different cell origin, and a distinct pattern of the monomeric RBD. Strikingly, 16 out of 25 O-glycosites were located within three amino acids from known N-glycosites. However, O-glycosylation was primarily found on peptides that were unoccupied by N-glycans, and otherwise had low overall occupancy. This suggests possible complementary functions of O-glycans in immune shielding and negligible effects of O-glycosylation on subunit vaccine design for SARS-CoV-2.

molecular biology