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Spillane, K. M.

Publications and source records attributed to Spillane, K. M..

2 recordsLinked to original sources

Subcapsular sinus macrophage sensing of extracellular matrix rigidity alters membrane topography and immune complex mobility

Subcapsular sinus macrophages (SSMs) play a key role in immune defence by forming immunological barriers that control the transport of pathogens from lymph into lymph node follicles. SSMs participate in antibody responses by presenting antigens directly to naive B cells and by supplying antigens to follicular dendritic cells to propagate germinal centre reactions. Despite the prominent roles that SSMs play during immune responses, little is known about their cell biology because they are technically challenging to isolate and study in vitro. Here, we used multi-colour fluorescence microscopy to identify lymph nodederived SSMs in culture. We focused on the role of SSMs as antigen-presenting cells and found that their actin cytoskeleton regulates the spatial organisation and mobility of immune complexes displayed on the cell surface. Moreover, we determined that SSMs are mechanosensitive cells that respond to changes in extracellular matrix (ECM) rigidity by altering the architecture of the actin cytoskeleton, leading to changes in cell morphology, membrane topography, and immune complex mobility. Our results reveal a new mechanism regulating physical aspects of antigen presentation by antigen-presenting cells, which may have implications for B cell activation and antibody responses.

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↗