The University of Osaka · Immunology and Microbiology
Professor James B. Wing's research lab focuses on the immunological regulation of adaptive immune responses, with a central emphasis on regulatory T cells (Tregs) and their specialized subsets, particularly T-follicular regulatory (Tfr) cells. The lab investigates how Tfr cells develop, migrate to germinal centers, and suppress T follicular helper (Tfh) cell responses to maintain humoral immune tolerance and prevent autoimmunity. Using murine and human systems, the lab explores the transcriptional and signaling mechanisms underlying Treg heterogeneity, including the role of key molecules like Foxp3, BCL-6, and CD25 in defining functional subsets. Their work also examines how Treg cell receptor diversity influences suppressive function and immune homeostasis.
Figures are computed from collected data and may differ slightly.
T-follicular helper (Tfh) cells differentiate through a multistep process, culminating in germinal center (GC) localized GC-Tfh cells that provide support to GC-B cells. T-follicular regulatory (Tfr) cells have critical roles in the control of Tfh cells and GC formation. Although Tfh-cell differentiation is inhibited by IL-2, regulatory T (Treg) cell differentiation and survival depend on it. Here, we describe a CD25<sup>-</sup> subpopulation within both murine and human PD1<sup>+</sup>CXCR5<sup
Foxp3(+) regulatory T cells (Tregs) are a constitutively immunosuppressive cell type critical for the control of autoimmunity and inflammatory pathology. A range of mechanisms of Treg suppression have been identified and it has not always been clear how these different mechanisms interact in order to properly suppress autoimmunity and excessive inflammation. In recent years it has become clear that, while all Tregs seem to share some core suppressive mechanisms, they are also able to adapt to th
Regulatory T-cells (Treg cells), expressing the transcription factor Foxp3, have an essential role in the control of immune homeostasis. In order to control diverse types of immune responses Treg cells must themselves show functional heterogeneity to control different types of immune responses. Recent advances have made it clear that Treg cells are able to mirror the homing capabilities of known T-helper subtypes such as Th1, Th2, Th17, and T-follicular helper cells (Tfh), allowing them to trave
T(reg) cells are essential for the maintenance of immune homeostasis and prevention of autoimmunity. In humoral immune responses, loss of T(reg) cell function causes increased levels of serum autoantibodies, hyper-IgE, spontaneous generation of germinal centres, and enhanced numbers of specialised T follicular helper cells (T(fh) cells) controlled by the lineage-defining transcription factor BCL-6 (B-cell lymphoma 6). Recent studies have demonstrated that a subset of T(reg) cells [T follicular r
Regulatory T cells (Tregs) expressing the transcription factor Foxp3 play a critical role in the control of immune homeostasis including the regulation of humoral immunity. Recently, it has become clear that a specialized subset of Tregs, T-follicular regulatory cells (Tfr), have a particular role in the control of T-follicular helper (Tfh) cell-driven germinal center (GC) responses. Following similar differentiation signals as received by Tfh, Tfr gain expression of characteristic chemokine rec
Treg cells are critical for the maintenance of immune homeostasis and suppression of naturally occurring self-reactive T cells; however, in order to induce suppression Treg cells must first be activated via their T-cell receptor by recognition of specific antigen-MHC complexes. In this issue of the European Journal of Immunology, Föhse et al. [Eur. J. Immunol. 2011. 41: 3101-3113.] shed light on the important question of the role of TCR diversity on Treg-cell function by demonstrating that high
Resting memory B cells can be divided into classical or atypical groups, but the heterogenous marker expression on activated memory B cells makes similar classification difficult. Here, by longitudinal analysis of mass cytometry and CITE-seq data from cohorts with COVID-19, bacterial sepsis, or BNT162b2 mRNA vaccine, we observe that resting B cell memory consist of classical CD45RB<sup>+</sup> memory and CD45RB<sup>lo</sup> memory, of which the latter contains of two distinct groups of CD11c<sup
In those individuals who fail to retain protective SBA 12 months after MCC, immunological memory fails to generate protective systemic and mucosal antibodies until 7 days post intranasal challenge with cognate meningococcal polysaccharide. This is likely too slow to protect from natural meningococcal infection. MCC vaccinees rely on persistence of antibody levels rather than immunological memory for sustained protection.
Regulatory T cells (Treg) play an important role in regulating immune homeostasis in health and disease. Traditionally their suppressive function has been assayed by mixing purified cell populations, which does not provide an accurate picture of a physiologically relevant response. To overcome this limitation, we here develop 'single cell suppression profiling of human Tregs' (scSPOT). scSPOT uses a 52-marker CyTOF panel, a cell division detection algorithm, and a whole PBMC system to assess the
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