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Stijlemans, B.

Publications and source records attributed to Stijlemans, B..

3 recordsLinked to original sources

VSIG4-Expressing Macrophages Contribute To Anti-Parasitic And Anti-Metastatic Responses In The Peritoneal Cavity

Peritoneal tissue-resident macrophages, also referred to as large peritoneal macrophages (LPMs), play an important role as gatekeepers of peritoneal homeostasis by providing a first line of defense against pathogenic threats. About a third of the LPMs express the surface receptor V-set and Immunoglobulin domain containing 4 (VSIG4), but it is unclear to what extent these cells differ from their VSIG4-negative counterparts and perform dedicated functions. Here, we demonstrate that VSIG4+ LPMs, in contrast to VSIG4- LPMs, are in majority derived from embryonal precursors and their occurrence is to a large extent independent from sex and microbiota. Although their transcriptome and surface proteome are indistinguishable from VSIG4- LPMs at steady-state, VSIG4+ LPMs are superior in phagocytosing Gram-positive bacteria and colorectal carcinoma (CRC) cells. In-house generated anti-VSIG4 nanobody constructs that are antibody-dependent cell-mediated cytotoxicity (ADCC)-enabled allowed a selective elimination of the VSIG4+ LPM subset without affecting the overall LPM content of the peritoneal cavity. This strategy uncovered a role for VSIG4+ LPMs in lowering the first peak of parasitemia in a Trypanosoma brucei brucei infection model and in reducing the outgrowth of CRC cells in the peritoneal cavity, a prime metastatic site in CRC patients. Altogether, our data uncover a protective role for VSIG4+ LPMs in infectious and oncological diseases in the peritoneal cavity.

immunology↗

Detection of Antibodies Against the African Parasite Trypanosoma brucei Using Synthetic glycosylphosphatidylinositol oligosaccharide fragments

Trypanosoma brucei (T. brucei) parasites cause two major infectious diseases in Africa: African trypanosomiasis in humans (HAT) and Nagana in animals. Despite the enormous economic and social impact, vaccines and reliable diagnostic measures are still lacking for these diseases. The main obstacle to developing accurate diagnostic methods and an active vaccine is the parasites ability for antigenic variation and impairment of B cell maturation, which prevents the development of a long-lasting, effective immune response. The antigenic variation is sustained by random gene switching, segmental gene conversion, and altered glycosylation states of solvent-exposed regions of the corresponding variant surface glycoproteins (VSG). These glycoproteins use a glycosylphosphatidylinositol (GPI) anchor for attachment to the membrane. GPIs of T. brucei have specific branched structures that are further heterogeneously galactosylated. We synthesized a glycan fragment library containing T. brucei GPIs most prominent structural features and performed an epitope mapping using mice and human sera of infected specimens using glycan microarrays. The studies indicate that in contrast to VSG, T. brucei GPIs are recognized by both short-lived IgM and long-lasting IgG, indicating a specific immune response against GPI structures. These findings enable the development of diagnostic tests based on synthetic antigens for reliable diagnosis of human African trypanosomiasis and Nagana.

biochemistry↗

Beyond the VSG Layer: Exploring the Role of Intrinsic Disorder in the Invariant Surface Glycoproteins of African Trypanosomes

In the bloodstream of mammalian hosts, African trypanosomes face the challenge of protecting their invariant surface receptors from immune detection. This crucial role is fulfilled by a dense, glycosylated protein layer composed of variant surface glycoproteins (VSGs), which undergo antigenic variation and provide a physical barrier that shields the underlying invariant surface glycoproteins (ISGs). The protective shields limited permeability comes at the cost of restricted access to the extracellular host environment, raising questions regarding the specific function of the ISG repertoire. In this study, we employ an integrative structural biology approach to show that intrinsically disordered membrane-proximal regions are a common feature of members of the ISG superfamily, conferring the ability to switch between compact and elongated conformers. While the folded, membrane-distal ectodomain is buried within the VSG layer for compact conformers, their elongated counterparts would enable the extension beyond it. This dynamic behavior enables ISGs to maintain a low immunogenic footprint while still allowing them to engage with the host environment when necessary. Our findings add further evidence to a dynamic molecular organization of trypanosome surface antigens wherein intrinsic disorder underpins the characteristics of a highly flexible ISG proteome to circumvent the constraints imposed by the VSG coat.

biochemistry↗