Search bioRxiv⌕ Search

Biology subjects

Pohl, L.

Publications and source records attributed to Pohl, L..

3 recordsLinked to original sources

Thymic Treg-derived T follicular regulatory cells prevent catastrophic humoral autoimmunity in response to TLR7-driven inflammation

T follicular regulatory cells (TFR) are a follicle-resident subset of regulatory T cells (TREG) that limit germinal center (GC) responses and enforce humoral tolerance. Although TFR are known to focus antibody responses to foreign antigens, how GC-specific regulation is maintained during inflammation remains unclear. Here, TLR7-driven inflammation unmasked a critical, non-redundant role for TFR in preserving immune tolerance. Selective loss of TFR caused severe autoimmunity and increased mortality, driven by inflammation-induced expansion of autoreactive B and T cell clones and epitope spreading. Autoreactivity resolved upon cessation of inflammation in TFR-sucicient mice but persisted in their absence. Mechanistically, TFR limited the establishment and expansion of spontaneous GCs in response to inflammation, and responding TFR displayed transcriptional, phenotypic, and clonal features of thymic TREG. This suggests that whereas TFH upregulate FoxP3 to shut down end-stage GCs, it is thymic TREG-derived TFR that safeguard GC integrity under inflammatory stress to prevent lethal autoimmunity.

immunology↗

A homogenization approach for spatial cytokine distributions in immune-cell communication

Cytokine-mediated communication is a central mechanism by which immune cells coordinate activation, differentiation and proliferation. While mechanistic reaction-diffusion models provide detailed descriptions of cytokine secretion and uptake at the cellular scale, their computational cost limits their applicability to large and densely packed cell populations. Previously employed approximations of cytokine diffusion fields rely on assumptions that neglect the influence of cellular geometry and volume exclusion. In this work, we study a macroscopic description of cytokine diffusion and reaction dynamics based on homogenization techniques, rigorously linking microscopic reaction-diffusion formulations to effective continuum models. The resulting homogenized equations replace discrete responder cells with a continuous density, while retaining essential features of cellular uptake and excluded-volume effects. Further, we show that in regimes with approximate radial symmetry, classical Yukawa-type solutions emerge as limiting cases of the homogenized model, provided appropriate correction factors are included. Overall, our approach allows efficient multiscale modeling of cytokine signaling in complex immune-cell environments.

biophysics↗

Serial intravital microscopy reveals temporal dynamics of autoreactive germinal centers in the spleen

The spleen plays a key role in clearing blood-borne infections and is involved in autoimmune and hematological disorders. It undergoes extensive remodeling during inflammation and immune reactions, but its localization in the peritoneal cavity has hampered studies of these dynamic changes. Here, we establish and validate a protocol for serial 2-photon microscopy of the murine spleen to capture dynamic processes in the living animal. As a proof-of-principle, we elucidate the expansion and contraction of autoreactive germinal centers (GCs) induced by epicutaneous application of the small-molecule TLR7 agonist resiquimod (R848). Leveraging a biocompatible abdominal imaging window, intravital labeling techniques, and fluorescent reporters, we follow GCs up to 180 {micro}m below the capsule for more than 2 weeks by tracking follicular dendritic cell (FDC) networks. This was accomplished without appreciable perturbation of normal physiology, paving the way for a deeper understanding of the biology of the spleen and its associated disease states. HighlightAn abdominal imaging window allowing the study of dynamic processes in the spleen of live mice over the course of several weeks.

immunology↗