The University of Osaka · Immunology and Microbiology
Professor Wataru Ise's research lab focuses on the cellular and molecular mechanisms underlying T follicular helper (Tfh) cell differentiation, germinal center reactions, and the generation of long-lived plasma cells that sustain long-term humoral immunity. The lab investigates how antigen-specific B cells and dendritic cells instruct Tfh cell responses during primary and recall immune responses, with a particular emphasis on the role of Bcl6 and pMHC-II complexes in memory Tfh cell reactivation. Additionally, the lab explores the regulation of plasma cell homeostasis and niche-dependent survival in the bone marrow, as well as the mechanisms of peripheral T cell tolerance, especially in the context of oral tolerance. These studies aim to clarify the balance between effective immunity and immune regulation, with implications for vaccine design and autoimmune disease prevention.
Figures are computed from collected data and may differ slightly.
In primary humoral responses, B-cell lymphoma 6 (Bcl6) is a master regulator of follicular helper T (TFH) cell differentiation; however, its activation mechanisms and role in memory responses remain unclear. Here we demonstrate that survival of CXCR5(+) TFH memory cells, and thus subsequent recall antibody response, require Bcl6 expression. Furthermore, we show that, upon rechallenge with soluble antigen Bcl6 in memory TFH cells is rapidly induced in a dendritic cell-independent manner and that
Germinal centers (GCs) are formed in secondary lymphoid tissues upon immunization with T-dependent antigens. In GCs, somatic hypermutation generates B cells with increased antibody affinity and these high-affinity B cells preferentially differentiate into plasma cells, which home to bone marrow and confer long-lived humoral immunity. Recent studies have shed new light on the cellular and molecular basis for initiating the transition from a GC B cell to a plasma cell. Here, we review recent progr
The longevity of plasma cells is dependent on their ability to access and reside in so-called niches that are predominantly located in the bone marrow. Here, by employing a traceable method to label recently generated plasma cells, we showed that homeostatic plasma cells in the bone marrow and spleen were continuously replenished by newly generated B220hiMHC-IIhi populations that progressively differentiated into B220loMHC-IIlo long-lived plasma cell (LLPC) populations. We also found that, in th
The amount of an Ag used for stimulation affects the type and magnitude of T cell responses. In this study we have investigated the primary response of naive CD4(+) T cells derived from OVA-specific TCR-transgenic mice (OVA23-3) upon stimulation with varying doses of the antigenic peptide, OVA(323-339). IL-4 expression was maximal with 50 nM Ag and decreased significantly with increasing doses. In contrast, IFN-gamma expression, which was also detected at 50 nM Ag, increased with increasing dose
Most currently available vaccines rely on the induction of long-lasting protective humoral immune responses by memory B cells and plasma cells. Antibody responses against most antigens require interactions between antigen-specific B cells and CD4(+) T cells. Follicular helper T cells (TFH cells) are specialized subset of T cells that provide help to B cells and are essential for germinal center formation, affinity maturation, and the development of high-affinity antibodies. TFH-cell differentiat
Oral tolerance is systemic immune hyporesponsiveness induced by the oral administration of soluble Ags. Hyporesponsiveness of Ag-specific CD4 T cells is responsible for this phenomenon. However, the molecular mechanisms underlying the hyporesponsive state of these T cells are not fully understood. In the present study, we investigated the ability of orally tolerized T cells to form conjugates with Ag-bearing APCs and to translocate TCR, protein kinase C-theta (PKC-theta), and lipid rafts into th
Antibodies produced by plasma cells are critical for protection from infection. It has been demonstrated that global epigenetic modification, such as changes in DNA methylation, occurs during differentiation of plasma cells from B cells. However, the precise mechanisms by which DNA methylation controls plasma cell differentiation are not fully understood. We examined the effect of deficiency of DNA demethylases, Tet2 and Tet3, on B-cell activation and plasma cell differentiation, by generating c
Naive CD4(+) T cells differentiate into two types of helper T cells showing an interferon-gamma-predominant (Th1) or an interleukin-4-predominant (Th2) cytokine secretion profile after repeated antigenic stimulation. Their differentiation can be influenced by slight differences in the interaction between the T cell receptor (TCR) and its ligand at the time of primary activation. However, the primary response of freshly isolated naive CD4(+) T cells to altered TCR ligands is still unclear. Here,
Plasma cells are terminally differentiated from activated B cells and are specialized for secreting antibodies, which are essential effector molecules in humoral immunity to neutralize invading pathogens. Upon challenge with T-cell-dependent antigens, plasma cells can be generated during the primary extrafollicular response, the germinal center (GC) response or the secondary memory response. Recent studies have revealed that plasma cell generation is regulated not only by several key transcripti
Newly generated plasma cells in secondary lymphoid organs migrate to niches in the bone marrow, wherein they survive as long-lived plasma cells (LLPCs). Although LLPCs have been extensively characterized, it is still unclear what the key determinant(s) are for plasma cell longevity. One model postulates that plasma cell heterogeneity is established at the induction site, thereby instructing their longevity. Here, we found that, among newly generated IgG plasma cells, integrin β7hi marks plasma c
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