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Biology subjects

Tas, S. W.

Publications and source records attributed to Tas, S. W..

2 recordsLinked to original sources

The ontogeny of myeloid-stromal synovial tissue niches in rheumatoid arthritis.

Recent single-cell multi-omic and spatial analyses of synovial biopsies have transformed our understanding of myeloid cell-driven mechanisms underlying human joint pathology and tissue homeostasis in Rheumatoid arthritis (RA). However, the developmental trajectories of synovial tissue macrophage (STM) subsets in humans remain poorly understood, due in part to the lack of models that faithfully replicate synovial tissue niches. This hinders the exploration of the therapeutic potential of targeting specific synovial myeloid cell clusters. Using multi-omics analyses of synovial tissue from an allogeneic bone marrow transplant recipient, we show that joint-specific tissue-resident STM subsets, including both health- and disease-associated clusters, can derive from peripheral blood monocytes. Analysis of embryonic synovial joints revealed that macrophage localization and maturation in the joints are preceded by local stromal niche specialisation, indicating that synovial fibroblasts (FLS) provide tissue-specific instructive cues to STM precursors. To elucidate human STM developmental trajectories, we established a SNP-based fate-tracking human synovial organoid system by embedding distinct blood-derived myeloid precursors, together with FLS clusters from RA synovial biopsies and endothelial cells, into 3D structures. These organoids reproduced key synovial tissue features, including lining and sublining architecture and stromal-myeloid cell cluster composition. Importantly, they supported differentiation of all resident STM subsets: homeostatic lining TREM2pos macrophages, their pathogenic TREM2lowSPP1pos counterparts that characterize the RA hyperplastic lining, and both homeostatic and RA-associated perivascular LYVE1pos STM clusters, all traced to monocytic precursors. In summary, we show that development of STM subsets is driven by fibroblast-conditioned spatial niches. We have established a novel, tractable ex vivo platform to dissect the niche-specific cues driving homeostatic versus pathogenic phenotypic clusters. One Sentence SummaryHuman tissue-resident STMs develop from monocytes under the guidance of cues from FLS within discrete spatial locations.

immunology↗

Characterization of a heterogenous activated B cell compartment arising early after antigen exposure preceding long-lived memory B cell formation

Once formed, plasma cells and memory B cells (MBCs) are difficult to eradicate, posing a problem in the context of unwanted antibody responses. Characterizing early B cell differentiation stages after antigen encounter is thus crucial to target and prevent unwanted antibody formation. Here, we unravelled in-depth antigen-specific B cell responses longitudinally after SARS-CoV-2 mRNA vaccination in healthy individuals using multiparameter spectral flow cytometry. The early antigen-specific B cell response was dominated by spike-specific IgG+ CD27+ CD71+ activated B cells (ActBCs), previously assigned as germinal center-derived and DN2 extrafollicular B cells. Within the early IgG+ ActBC compartment, six distinct clusters were identified with specific contraction dynamics, whereby some of these clusters were more closely related to pre-ASCs and others more to long-lived MBCs. Some of the highly contracting ActBC clusters expressed CD11c, a marker previously used to define atypical B cells. The transient presence of different ActBC clusters could also be observed in total B cells when gated in an antigen- independent manner. Our results thus delineate the early stages of the antigen-specific B cell response, with a further dissection of the CD71+ ActBC compartment. Detection of ActBC clusters early after antigen encounter in total B cells opens avenues for future evaluation of their potential to serve as a proxy for antigen-reactive B cells in autoimmunity or other unwanted B cell responses.

immunology↗