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At least 19 recordsLinked to original sources

Human T cell activation by costimulatory signal-deficient allogeneic cells induces inducible costimulator-expressing anergic T cells with regulatory cell activity.

Although immunoregulation by several types of regulatory T cells is now clearly established in mice, the demonstration of such regulatory T cells in humans has been proven more difficult. In this study we demonstrate the induction of anergic regulatory T cells during an MLR performed in the presence of blocking mAb to the costimulatory molecules CD40, CD80, and CD86. Despite this costimulation blockade, which totally blocks T cell proliferation and cytokine production, a nonproliferating T cell subpopulation was activated to express inducible costimulator (ICOS). These ICOS(+) cells were anergic when restimulated with unmanipulated allogeneic stimulator cells at the level of proliferation and Th1 and Th2 cytokine production, but they did produce IL-10. These ICOS-expressing cells also blocked the capacity of reciprocal ICOS-negative cells to proliferate and to produce cytokines. ICOS(+) anergic cells could suppress allogenic responses of either primed or naive T cells through inhibition of IL-2 gene transcription. Suppression was not mediated by IL-10 and did not require ICOS-ICOS ligand interaction, but depended on cell-cell contact. Thus, a subtype of regulatory T cells in human blood can be activated in the absence of costimulatory signals from CD40, CD80, and CD86, and they can be identified by expression of ICOS after activation.

Adult↗

Immune regulation by pretenders: cell-to-cell transfers of HLA-G make effector T cells act as regulatory cells.

Trogocytosis is the uptake of membrane fragments from one cell by another and has been described for immune cells in mice and humans. Functional consequences of trogocytosis are emerging, but a dramatic immune function has still to be associated with it. Here we show that some resting, and most activated, CD4+ and CD8+ T cells acquire immunosuppressive HLA-G1 from antigen-presenting cells (APCs) in a few minutes. Acquisition of HLA-G through membrane transfers does not change the real nature of the T cells but immediately reverses their function from effectors to regulatory cells. These regulatory cells can inhibit allo-proliferative responses through HLA-G1 that they acquired. These data demonstrate that trogocytosis of HLA-G1 leads to instant generation of a new type of regulatory cells, which act through cell-surface molecules they temporarily display but do not express themselves. Such regulatory cells whose existence is most likely limited in space and time might constitute an "emergency" immune suppression mechanism used by HLA-G-expressing tissues to protect themselves against immune aggression. In addition, T cells acquire from HLA-G-expressing APCs their HLA-G-dependent capability to induce the slower differentiation of regulatory cells that act independently of HLA-G. These data re-emphasize the significance of HLA-G expression in normal and pathologic situations.

Antigen-Presenting Cells↗

Vasoactive intestinal peptide: the dendritic cell --> regulatory T cell axis.

Tolerogenic dendritic cells (tDCs) play an important role in maintaining peripheral tolerance through the induction/activation of regulatory T cells (Treg). Endogenous factors contribute to the functional development of tDCs. In this article, we present evidence that two known immunosuppressive neuropeptides, the vasoactive intestinal peptide (VIP) and the pituitary adenylate cyclase-activating polypeptide (PACAP), contribute to the development of bone marrow-derived tDCs. The VIP/PACAP-generated DCs are CD11clowCD45RBhigh, do not upregulate CD80, CD86, and CD40 following lipopolysaccharide (LPS) stimulation, and secrete high amounts of IL-10. The VIP/PACAP-generated DCs induce functional Treg in vitro and in vivo. VIP/DCs induce antigen-specific tolerance in vivo, suppress delayed-type hypersensitivity (DTH), and T cells from VIP/DC-inoculated mice transfer the suppression to naïve hosts. The effect of VIP/PACAP on the DC-Treg axis represents an additional mechanism for their general anti-inflammatory role, particularly in anatomical sites that exhibit immune deviation or privilege.

Animals↗

CD4+CD25high regulatory cells in human peripheral blood.

Thymectomy in mice on neonatal day 3 leads to the development of multiorgan autoimmune disease due to loss of a CD(+)CD25(+) T cell regulatory population in their peripheral lymphoid tissues. Here, we report the identification of a CD4(+) population of regulatory T cells in the circulation of humans expressing high levels of CD25 that exhibit in vitro characteristics identical with those of the CD4(+)CD25(+) regulatory cells isolated in mice. With TCR cross-linking, CD4(+)CD25(high) cells did not proliferate but instead totally inhibited proliferation and cytokine secretion by activated CD4(+)CD25(-) responder T cells in a contact-dependent manner. The CD4(+)CD25(high) regulatory T cells expressed high levels of CD45RO but not CD45RA, akin to the expression of CD45RB(low) on murine CD4(+)CD25(+) regulatory cells. Increasing the strength of signal by providing either costimulation with CD28 cross-linking or the addition of IL-2 to a maximal anti-CD3 stimulus resulted in a modest induction of proliferation and the loss of observable suppression in cocultures of CD4(+)CD25(high) regulatory cells and CD4(+)CD25(-) responder cells. Whereas higher ratios of CD4(+)CD25(high) T cells are required to suppress proliferation if the PD-L1 receptor is blocked, regulatory cell function is shown to persist in the absence of the PD-1/PD-L1 or CTLA-4/B7 pathway. Thus, regulatory CD4 T cells expressing high levels of the IL-2 receptor are present in humans, providing the opportunity to determine whether alterations of these populations of T cells are involved in the induction of human autoimmune disorders.

Abatacept↗

Differential regulatory capacity of CD25+ T regulatory cells and preactivated CD25+ T regulatory cells on development, functional activation, and proliferation of Th2 cells.

CD25+ T regulatory (Treg) cells play a central role regarding the maintenance of peripheral tolerance via suppression of autoaggressive CD4+ T cells, CD8+ T cells, and Th1 cells. In this study we demonstrate that CD25+ Treg cells can also suppress the differentiation of murine conventional CD4+ T cells toward Th2 cells in a contact-dependent manner. However, the cytokine production and proliferation of established Th2 cells could not be inhibited by freshly isolated CD25+ Treg cells, whereas a strong inhibition of differentiated Th2 cells by in vitro preactivated CD25+ Treg cells could be observed. Inhibition of both conventional CD4+ T cells and Th2 cells is accompanied by a strong enhancement of the expression of FoxP3 in the suppressed T cells. Hence, our study indicates that CD25+ Treg cells have a therapeutic potential for Th2-mediated diseases and suggests a novel mechanism of suppression mediated by the transcriptional repressor FoxP3.

Animals↗

CD4+PD-1+ T cells acting as regulatory cells during the induction of anterior chamber-associated immune deviation.

PURPOSE: To study the expression and functional characteristics of programmed death-1 (PD-1) and its ligands in the spleens of mice undergoing anterior chamber-associated immune deviation (ACAID). METHODS: ACAID was induced in BALB/c mice by intracameral injection of ovalbumin (OVA). The expression of PD-1 and its ligands in the spleens of ACAID mice was determined by quantitative real-time PCR, Western blotting, and flow cytometry. In vitro proliferation assays, enzyme-linked immunosorbent assays, and adoptive transfer assays were used to investigate the functional characteristics of splenic CD4+PD-1+ T cells of ACAID mice. RESULTS: Both mRNA and protein of PD-1, PD-L1, and PD-L2 were markedly upregulated in the spleens of ACAID mice compared with controls. CD4+PD-1+ T cells from ACAID mice produced large amounts of IL-10 and exhibited in vitro antigen-specific suppressive activity. CD4+PD-1+ T cells from ACAID mice were able to significantly inhibit the antigen-specific, delayed-type hypersensitivity response when adoptively transferred to naive mice. CONCLUSIONS: CD4+PD-1+ T cells from ACAID mice, as regulatory cells, are involved in the induction of antigen-specific suppression in association with enhanced expression of IL-10. CD4+PD-1+ T cells in the murine spleen may represent a substantial population of regulatory T cells possibly responsible for the induction of ACAID after intracameral injection of antigen.

Adoptive Transfer↗

NKT cells act as regulatory cells rather than killer cells during activation of NK cell-mediated cytotoxicity by alpha-galactosylceramide in vivo.

Administration of NKT cell ligands, alpha-galactosylceramide (alpha-GalCer) resulted in the activation of both cytokine production and natural killing. These responses were abolished in both CD1d-deficient mice and Valpha14NKT-deficient mice. Therefore, NKT cells have been considered to be responsible cells for both cytokine production and natural killing. Here, we reevaluated a critical role of NKT and NK cells at early time after alpha-GalCer administration. Intracellular staining experiments demonstrated that NKT cells were the earliest source of both IL-4 and IFN-gamma production after alpha-GalCer administration in vivo. However, these alpha-GalCer-activated NKT cells exhibited no significant natural killing activity. In contrast, isolated NK1.1+CD3- classical NK cells exhibited greatly enhanced natural killing activity 6 h after alpha-GalCer administration. NKT cells, however, exhibited a strong cytotoxicity when they were activated and expanded with alpha-GalCer plus IL-2 in vitro. These results indicated that NKT cells act as regulatory cells via production of cytokines for activation of NK cell-mediated cytotoxicity in vivo at early phase after alpha-GalCer administration. Thus, NK cells rather than NKT cells may be a crucial early activated killer induced by alpha-GalCer in vivo.

Animals↗

CD3+CD4-CD8- alphabeta-TCR+ T cell as immune regulatory cell.

Down-regulation of immune responses by regulatory T cells is one of the major mechanisms involved in the induction of tolerance to self- and alloantigens as demonstrated in a number of models of transplantation and autoimmunity. It is clear that regulatory T cells consist of different subsets. Recently a novel subset of antigen-specific alphabeta-TCR+ CD4-CD8- (double negative, DN) regulatory T cells has been found to be able to inhibit the function of the CD8+ T cells carrying the same T cell receptor specificity and prevent the rejection of skin allografts. Identification of the DN regulatory T cells and their novel mechanism of suppression can help us to understand how donor-specific transplantation tolerance can be achieved and to explain how tolerance to self-antigens can be maintained in the periphery.

Animals↗

Induction of tolerance in type 1 diabetes via both CD4+CD25+ T regulatory cells and T regulatory type 1 cells.

Success in developing novel therapies to recommence self-tolerance in autoimmunity depends on the induction of T regulatory (Tr) cells. Here, we report that rapamycin combined with interleukin (IL)-10 efficiently blocks type 1 diabetes development and induces long-term immunotolerance in the absence of chronic immunosuppression in nonobese diabetic (NOD) mice. Rapamycin mediates accumulation in the pancreas of suppressive CD4(+)CD25(+)FoxP3(+) Tr cells, which prevent diabetes. IL-10 induces Tr type 1 (Tr1) cells, which reside in the spleen and prevent migration of diabetogenic T-cells to the draining lymph nodes. These two Tr cell subsets act in concert to control diabetogenic T-cells that are still present in long-term tolerant mice. Rapamycin plus IL-10 treatment, promoting distinct subsets of Tr cells, may constitute a novel and potent tolerance-inducing protocol for immune-mediated diseases.

Adoptive Transfer↗

Addition of the CD28 signaling domain to chimeric T-cell receptors enhances chimeric T-cell resistance to T regulatory cells.

T cells can be engineered to target tumor cells by transduction of tumor-specific chimeric receptors, consisting of an extracellular antigen-binding domain and an intracellular signaling domain. However, the peripheral blood of cancer patients frequently contains an increased number of T regulatory cells, which appear to inhibit immune reactivity. We have investigated the effects of T regulatory cells on chimeric T cells specific for the B-cell antigen CD19, as B-cell malignancies are attractive targets for chimeric T-cell therapy. When a CD19 single-chain Fv antibody was coupled to the CD3 zeta (zeta) chain, there was sharply reduced activity on exposure to T regulatory cells, measured by CD19+ target-induced proliferation and cytotoxicity. By contrast, expression in T cells of a chimeric receptor consisting of the intracellular portion of the CD28 molecule fused to the zeta-chain and CD19 single-chain Fv not only produced a higher proliferative response and an increased nuclear factor kappaB activation but also sustained these activities in the presence of T regulatory cells. These effects are seen whether the chimeric T cells are derived from normal donors or from patients with B-cell chronic lymphocytic leukemia, indicating the potential for clinical application in B cell malignancies.

Antigens, CD19↗

Type 1 T regulatory cells and their relationship with CD4+CD25+ T regulatory cells.

Suppression by T regulatory (T(reg)) cells is essential for the induction of peripheral tolerance. Several types of CD4+ T(reg) cells have been described in a number of systems. Although the precise mechanisms which mediate T(reg) cells effector activity remain to be defined, it is well established that they can suppress Immune responses via cell-cell interactions and/or the production of interleukin (IL)10 and transforming growth factor (TGF)beta. Type 1 T regulatory (T(reg)) cells are defined by their ability to produce high levels of IL10 and TGFbeta, and these cytokines mediate their ability to suppress pathological immune responses in the settings of transplantation, allergy, and autoimmune diseases. T(reg) cell activity is not necessarily beneficial, and they can also suppress immune responses to antigens from tumours and pathogens. The differentiation of T(reg) cells in vivo is likely controlled by certain dendritic cells that promote IL10 production and may express tolerogenic co-stimulatory molecules. Another subset of CD4+ T(reg) cells is defined by constitutive expression of CD25. Naturally occurring human CD4+CD25+ T(reg) cells are distinct from T(reg1) cells. Suppressive CD4+CD25+ T cell clones do not synthesize IL10 but produce TGFbeta which contributes to the suppression of proliferation mediated by these cells. However, CD4+CD25+ T(reg) cells may be involved in the process inducing the differentiation of T(reg1) cells. In conclusions, many questions on the basic biology of T(reg) cells remain to be answered, but the development of therapeutic strategies designed to harness their immunoregulatory effects can already be envisaged.

Animals↗

IL-10 and TGF-beta induce alloreactive CD4+CD25- T cells to acquire regulatory cell function.

We previously reported that interleukin-10 (IL-10) and transforming growth factor (TGF)-beta treatment of primary mixed lymphocyte reaction (MLR) cultures resulted in secondary alloantigen-specific hyporesponsiveness and protection from graft-versus-host disease (GVHD) lethality. Here, we report that CD4+ T cells recovered from the IL-10- and TGF-beta-treated primary MLR cultures have immunoregulatory function. Tolerized cells significantly inhibited proliferation of naive alloreactive CD4+ T cells in a primary MLR. Inhibition of the naive alloresponse was observed with as few as 1 tolerized cell to 10 naive responder cells. Tolerized cells were able to significantly reduce GVHD lethality when injected with naive alloreactive CD4+ T cells into major histocombatibility class (MHC) II disparate recipients. Rigorous CD25 depletion of the primary MLR had no effect on generation of a regulatory capacity, suggesting that the regulatory cells likely originated from CD4+CD25- T cells. Immune suppression was mediated independently of IL-10 and TGF-beta production, as neutralizing antibodies for IL-10, IL-10R, and TGF-beta were unable to revert suppression, and IL-10- deficient CD4+ T cells were able to mediate in vitro and in vivo suppression. The generation of immunoregulatory cells from a CD4+CD25- population during tolerization with IL-10 and TGF-beta provides an additional mechanism to prevent GVHD lethality by T cells that may escape full tolerance induction.

Animals↗

The IgA response: inductive aspects, regulatory cells, and effector functions.

In this review, we have emphasized our current studies on the inductive aspects of the IgA immune response and homeostatic mechanisms involved in the induction of oral tolerance. By use of unique inbred mouse strains in restricted microbial environments, we have provided evidence for a central role of LPS in systemic unresponsiveness to orally encountered antigens. We have continued studies on characterization of GALT lymphoreticular cell types, including accessory cells, regulatory T-cells, and precursor IgA B-cells. We have placed recent emphasis on characterization of antigen-specific Th-cell clones derived from murine PP, which preferentially support IgA isotype responses. Relevant areas for continued research have been emphasized in this review.

Animals↗

The puzzling world of murine T regulatory cells.

T regulatory cells are essential for downregulation of undesired immune responses and prevention of autoimmune diseases, organ rejection, and graft versus host disease. This review describes the considerable progress made in the recent years in the characterization of the many subsets that constitute the puzzled world of murine T regulatory cells.

Animals↗

Autoimmune thyroiditis induced in mice depleted of particular T cell subsets. III. Analysis of regulatory cells suppressing the induction of thyroiditis.

It has previously been demonstrated that T cell clones with potentials to induce autoimmune thyroiditis exist in lymphoid organs from normal healthy individuals. The present study investigates the nature of regulatory cells co-existing in a normal lymphoid cell population to prevent the activation of these thyroiditis-inducing T cells. T cell-depleted (C57BL/6 x C3H/He) F1 mice (B cell mice) were prepared by adult thymectomy and injection of anti-thymocyte serum, followed by lethal X-irradiation and bone marrow reconstitution. Typical thyroiditis was induced in these B cell mice by i.v. administration of Lyt-1dull T cells but not of whole T cells from normal syngeneic mice. Additional injection of normal thymocytes into B cell mice which had been transferred with the Lyt-1 dull T cells resulted in complete prevention of thyroiditis induction. Mature thymocytes were responsible for this regulatory function and such regulatory cell activity was also found in peripheral lymphoid cells such as spleen cells. These regulatory cells exerted their capacity to prevent thyroiditis in cell dose-dependent and injection timing-dependent manners; thyroiditis was prevented when they were injected in cell doses of greater than 1.5 x 10(7)/mouse and before the initiation of the thyroiditis lesion. Most interestingly, the phenotypes of regulatory cells were Thy-1+ and L3T4+. Since the thyroiditis-inducing Lyt-1 dull T cells has previously been shown to be of L3T4+, these results indicate that there exist functionally heterogeneous subsets in an L3T4+ T cell population and that some L3T4+ T cells function as regulatory cells to prevent the activation of thyroiditis-inducing L3T4+ T cells co-existing in the normal lymphoid cell population.

Animals↗

Induction and mechanism of action of transforming growth factor-beta-secreting Th3 regulatory cells.

Th3 CD4+ regulatory cells were identified during the course of investigating mechanisms associated with oral tolerance. Different mechanisms of tolerance are induced following oral antigen administration, including active suppression, clonal anergy and deletion. Low doses favor active suppression whereas high doses favor anergy/deletion. Th3 regulatory cells form a unique T-cell subset which primarily secretes transforming growth factor (TGF)-beta, provides help for IgA and has suppressive properties for both Th1 and Th2 cells. Th3 type cells are distinct from the Th2 cells, as CD4+ TGF-beta-secreting cells with suppressive properties have been generated from interleukin (IL)-4-deficient animals. In vitro differentiation of Th3 cells from Th precursors from T-cell antigen receptor (TCR) transgenic mice is enhanced by culture with TGF-beta, IL-4, IL-10, and anti-IL-12. Th3 CD4+ myelin basic protein regulatory clones are structurally identical to Th1 encephalitogenic clones in TCR usage, MHC restriction and epitope recognition, but produce TGF-beta with various amounts of IL-4 and IL-10. Because Th3 regulatory cells are triggered in an antigen-specific fashion but suppress in an antigen-non-specific fashion, they mediate "bystander suppression" when they encounter the fed autoantigen at the target organ. In vivo induction of Th3 cells and low dose oral tolerance is enhanced by oral administration of IL-4. Anti-CD86 but not anti-CD80 blocks the induction of Th3 cells associated with low dose oral tolerance. Th3 regulatory cells have been described in other systems (e.g. recovery from experimental allergic encephalomyelitis) but may be preferentially generated following oral antigen administration due to the gut immunologic milieu that is rich in TGF-beta and has a unique class of dendritic cells. CD4+CD25+ regulatory T-cell function also appears related to TGF-beta.

Animals↗

Dendritic cells and (CD4+)CD25+ T regulatory cells: crosstalk between two professionals in immunity versus tolerance.

Dendritic cells (DCs) are professional antigen presenting cells (APCs). (CD4+)CD25+ T regulatory cells (T regs) are recognized as professional regulatory cells. DCs not only initiate T cell immunity by uptake, processing and presentation of specific antigens, but also induce immune tolerance by deletion of T cells and/or induction of regulatory T cells. (CD4+)CD25+ T regs maintain immune tolerance by suppressing the function of CD4+ and CD8+ T cells, B cells, macrophages, DCs and NK cells. It would be inconceivable that the delicate balance between immunity and tolerance could be kept impeccable without the crosstalk between DCs and (CD4+)CD25+ T regs. This review focuses on the recent development in our understanding of DCs and (CD4+)CD25+ T regs in immune tolerance, with transforming growth factor-beta (TGF-beta) serving as a potential link between these two professionals.

Animals↗

Immune dysregulation in allergic respiratory disease: the role of T regulatory cells.

Although earlier research focused on the role of the polarity of T helper cell signalling as the defining factor in immune responses, it is now recognised that other cells with regulatory properties have a more key role. It has been recently proposed that allergic disease may result from an inappropriate balance between regulatory cells (including but not limited to CD4+ CD25+ T regulatory cells) and T helper type 2 (Th2) effector cells. In the airways, a number of other cells also have important regulatory effects on local immune responses, including epithelial cells and airway dendritic cells (DC). Allergic respiratory disease appears to be the culmination of both local epithelial dysfunction and generalised immune dysregulation resulting in Th2 propensity (atopic predisposition). Although these processes are related they also appear to occur independently. This review examines evolving models of allergy pathogenesis, including the newly recognised role of diverse groups of regulatory cells. Increasing rates of allergic disease (and other immune diseases) suggest that environmental changes may be having fundamental effects on common regulatory pathways. Understanding these influences and their mechanism of action could lead to strategies to prevent disease.

Animals↗