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Unresponsiveness to a foreign antigen can be caused by self-tolerance.

In mice, two sets of genes govern the immune response to the synthetic antigen GT. One maps to the major histocompatibility complex and behaves like a typical immune response gene. The second is a background gene encoding a cell surface structure found on B cells. Mice which express, and are therefore tolerant of, one form of this structure do not respond to GT. Thus, tolerance of self generates holes in the T-cell repertoire, partially crippling the immune system.

Animals↗

Thymic and peripheral apoptosis of antigen-specific T cells might cooperate in establishing self tolerance.

Aside from CD4+CD8+ double-positive (DP) thymocytes, the subpopulations of T lineage cells affected by negative selection are unknown. To address whether this process occurs in more mature cell types, we have compared the responses of purified single-positive (SP) murine thymocytes and peripheral T cells to the superantigen staphylococcal enterotoxin B (SEB) utilizing as antigen-presenting cells (APC) a fibroblast cell line expressing transfected I-Ek class II molecules. Whereas approximately 70% of SEB-reactive SP thymocytes, either CD4+ or CD8+, undergo programmed cell death (apoptosis) and, therefore, negative selection, CD4+ and CD8+ antigen-specific peripheral T cells are predominantly activated and proliferate to APC+SEB. Thus, mature thymocytes and peripheral T cells, with identical patterns and levels of expression of CD4, CD8 and T cell receptor (TCR), are programmed to elicit different responses following TCR stimulation. Unexpectedly, however activation of peripheral T cells was preceded by deletion of a large fraction of V beta 8+ T lymphocytes (SEB specific). This surprising phenomenon was also observed in in vivo studies: in fact, administration of SEB to adult mice resulted in depletion of the majority of antigen-specific T cells from the peripheral lymphoid tissues analyzed (lymph nodes and spleen). This depletion is the consequence of deletion as indicated by program cell death of V beta 8+ T cells and is followed by proliferation of the remaining SEB-reactive T cells. Clonal elimination of peripheral T cells may represent a mechanism by which tolerance to self antigens never expressed in and/or exported to the thymus is achieved.

Animals↗

Autoimmune diseases: the failure of self tolerance.

The ability to discriminate between self and nonself antigens is vital to the functioning of the immune system as a specific defense against invading microorganisms. Failure of the immune system to "tolerate" self tissues can result in pathological autoimmune states leading to debilitating illness and sometimes death. The induction of autoimmunity involves genetic and environmental factors that have focused the attention of researchers on the trimolecular complex formed by major histocompatibility complex molecules, antigen, and T cell receptors. Detailed molecular characterization of these components points to potential strategies for disease intervention.

Animals↗

Regulation of B cell self-tolerance by BAFF.

To avoid the generation of pathogenic autoantibodies, self-reactive lymphocytes are deleted at several distinct checkpoints during B cell maturation. BAFF is required for mature B cell development and survival but causes B cell hyperplasia and autoimmunity when it is overexpressed. Self-reactive B cells have reduced responsiveness to BAFF and therefore die due to the limiting levels of BAFF available in vivo. Elevated BAFF expression subverts B cell self-tolerance by rescuing self-reactive B cells normally deleted relatively late during maturation. Strongly self-reactive B cells are deleted prior to expression of BAFF-R and are therefore resistant to rescue by BAFF.

Animals↗

Essential role for STAT5 signaling in CD25+CD4+ regulatory T cell homeostasis and the maintenance of self-tolerance.

A population of CD25(+)CD4(+) regulatory T cells (T regs) functions to maintain immunological self tolerance by inhibiting autoreactive T cell responses. CD25(+)CD4(+) T regs are present in low, but steady, numbers in the peripheral lymphoid tissues of healthy mice. Recent studies have shown that IL-2 is an essential growth factor for these cells. How this cytokine functions to regulate CD25(+)CD4(+) T reg homeostasis and prevent autoimmune disease remains unknown. In conventional CD4(+) T cells, IL-2 triggers signaling pathways that promote proliferation and survival by activating the STAT5 transcription factor and by increasing the expression of the antiapoptotic protein, Bcl-2. We show here that bcl-2 deficiency does not affect CD25(+)CD4(+) T reg homeostasis, and that ectopic expression of this molecule fails to rescue CD25(+)CD4(+) T reg numbers or to prevent the development of autoimmunity in IL-2-deficient mice. Furthermore, transient activation of STAT5 is sufficient to increase CD25(+)CD4(+) T reg numbers in IL-2-deficient mice. Our study uncovers an essential role for STAT5 in maintaining CD25(+)CD4(+) T reg homeostasis and self-tolerance.

Animals↗

Self-tolerance and autoimmunity.

Studies of self-tolerance and autoimmunity have moved rapidly into new arenas. These include the definition of at least two mechanisms for tolerance induction in both T and B cells, the creation of new disease-susceptible strains such as the HLA-B27 transgenic rats, the creation of new disease-resistant strains such as I-E or I-Ak NOD transgenic mice, and the precise definition of both antigen and antigen receptor for pathogenic lymphocytes in some models. More effective therapies for autoimmune disease should result from the knowledge gained.

Animals↗

The Le Douarin phenomenon: a shift in the paradigm of developmental self-tolerance.

Ever since the foundations of Immunology, "self-tolerance" has remained a central issue in this field, pertaining to basic and clinical questions alike. Burnet and Medawar shared the Nobel Prize in 1960 for proposing that tolerance is induced by tissue antigens, if present during the development of the immune system during the embryonic/neonatal period. Very elegant experiments by Le Douarin and colleagues in the 1980's demonstrated that this is not the case; rather, the establishment of tolerance to peripheral tissues requires thymic epithelium which selects CD4 T lymphocytes mediating "dominant tolerance". The recent wealth of work on "regulatory T cells", as well as observations on the selective regulation of "tissue-specific" gene expression in thymic epithelial cells, confirm the critical relevance of those seminal findings in modern immunology.

Animals↗

Multiple levels of regulation for self-tolerance in beef insulin transgenic mice.

To characterize the mechanism(s) of tolerance toward soluble self-antigens (Ags), beef insulin (BI) transgenic (Tg) mice were generated in which the transgene was expressed in pancreatic beta-cells. Our previous data showed that: (i) Ag-specific tolerance can be induced and/or maintained in peripheral T cells in thymectomized BI-Tg mice and (ii) CD4+ Th2 regulatory T cells are involved in maintaining peripheral tolerance (by anti-BI antibody response). In this paper, we have further characterized the relationship of low levels of BI expression (10(-10)-10(-11) M) in Th1/Th2 activation. In addition, we have explored intrathymic events associated with tolerance to self-Ags not expressed in the thymus and/or to circulating self-Ags. Limiting dilution analysis showed that there was a significantly higher frequency of BI-specific Th2 cells in Tg mice with a corresponding higher frequency of Th1 cells in non-Tg mice. While there was no transgene expression in the thymus (by RT-PCR), independent studies showed that BI can be processed and presented in the Tg thymus, which correlated with the Ag-specific hyporesponsiveness of mature thymocyes detected in vitro. High-dose rIL-2 (150 U/ml) was able to restore in vitro peripheral T cell response of Tg mice to levels comparable to those of the non-Tg control. Collectively, our data suggest that: (i) there is a differential activation of BI-specific Th1/Th2 cells in vivo in the presence of low Ag concentration; (ii) the thymus may play a role in self-tolerance to Ags whose expression in adults is restricted to the periphery; and (iii) multiple levels of regulation such as thymic selection, peripheral anergy, and active suppression may be involved in tolerance to BI in BI-Tg mice.

Animals↗

Immune discrimination of self and nonself: a unified theory for the induction of self tolerance among thymocytes and mature peripheral T cells.

A comprehensive model of immunological self tolerance is described which is based on the unique tenet that interactions between T cell antigen receptors (TcR) and specific MHC ligands may vary in efficacy (the ability of an MHC ligand to catalyze TcR-mediated activation). Based on this postulate, two interrelated mechanisms are described to explain how self tolerance is induced among immature thymocytes and mature peripheral T cells, respectively. In the thymus, APC apparently present a diverse array of self MHC ligands (complexes of self peptides and MHC glycoproteins) to clonotypic T cells. According to the first mechanism, immature thymocytes that efficaciously bind specific MHC ligands undergo TcR-mediated activation and programmed cell death whereas those that nonefficaciously bind MHC ligands are not activated and thereby escape negative selection. The latter T cells undergo positive selection and eventually constitute the mature T cell repertoire. This model of thymic selection ensures that interactions of mature T cells with self in peripheral tissues are predominantly nonefficacious. According to the second mechanism, clonotypically diverse T cells and individual APC comprise an integrative unit that measures antigenic complexity of the local environment as a basis to enable or disable immunogenic responses by mature T cells. T cells recognize efficacious MHC ligands (E) via the TcR/CD3 complex but are also able to detect nonefficacious MHC ligands (N) by conserved signal transduction pathways that are initiated upon cell-cell contact with APC. Clonotypic T cells relay E or N signals by conserved feedback pathways back to APC. APC integrate and compare large numbers of E or N signals to derive an E/N ratio.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Distinct contributions of Aire and antigen-presenting-cell subsets to the generation of self-tolerance in the thymus.

The contribution of thymic antigen-presenting-cell (APC) subsets in selecting a self-tolerant T cell population remains unclear. We show that bone marrow (BM) APCs and medullary thymic epithelial cells (mTECs) played nonoverlapping roles in shaping the T cell receptor (TCR) repertoire by deletion and regulatory T (Treg) cell selection of distinct TCRs. Aire, which induces tissue-specific antigen expression in mTECs, affected the TCR repertoire in a manner distinct from mTEC presentation. Approximately half of Aire-dependent deletion or Treg cell selection utilized a pathway dependent on antigen presentation by BM APCs. Batf3-dependent CD8α⁺ dendritic cells (DCs) were the crucial BM APCs for Treg cell selection via this pathway, showing enhanced ability to present antigens from stromal cells. These results demonstrate the division of function between thymic APCs in shaping the self-tolerant TCR repertoire and reveal an unappreciated cooperation between mTECs and CD8α⁺ DCs for presentation of Aire-induced self-antigens to developing thymocytes.

Animals↗

The function of TGF-beta-mediated innocent bystander suppression associated with physiological self-tolerance in vivo.

Innocent bystander suppression has been demonstrated in experimental models of transplantation tolerance and oral tolerance. This phenomenon is associated with expression of cytokines such as TGF-beta or/and type II cytokines (e.g., IL-4, IL-10). However, the mechanism responsible for bystander suppression is poorly understood, as is its role in antigen-specific self-tolerance. Here, we describe a series of investigations using an antigen coimmunization strategy to examine the outcome of bystander suppression in vivo in a well-characterized physiological model, using beef insulin transgenic (BI-Tg) mice, for self-tolerance. Our results demonstrate that: (1) T-cell-mediated peripheral hyporesponsiveness, or CD4(+) regulatory type II Th cell-mediated adoptive transfer of peripheral hyporesponsiveness (defined by an ELISA antibody assay), is antigen-specific at induction but effector-nonspecific (bystander suppression) when the self-antigen (BI) and a control antigen (chicken ovalbumin) are coadministered in BI-Tg mice; (2) bystander suppression is manifest as a local and transient, rather than a systemic and long-term, phenomenon; (3) bystander suppression is both time and antigen dose dependent; and (4) anti-TGF-beta Mab abolishes the effect of bystander suppression in vivo. We suggest that TGF-beta-mediated innocent bystander suppression associated with physiological self-tolerance thus produces no major biological consequence for general immune responsiveness. It may prevent the activation of auto(or cross)-reactive lymphocytes.

Adoptive Transfer↗

T cell recognition of a highly conserved epitope in heat shock protein 60: self-tolerance maintained by TCR distinguishing between asparagine and aspartic acid.

Cross-reactive T cell recognition of self-heat shock proteins (hsp) has been ascribed a regulatory role in inflammatory arthritis in both animal models and human disease. The previous work implies that a repertoire for epitopes in self-hsp60 should exist in normal subjects. Accordingly, we sought to generate self-hsp60-reactive T cell clones from a healthy individual using a highly purified preparation of recombinant human (Hu) hsp60. Epitope mapping using synthetic peptides and truncated constructs indicated that the T cell clones obtained actually recognized hsp60 derived from Escherichia coli. Using a series of alanine-substituted peptides and additional appropriate synthetic peptides, it was demonstrated that the clones maintain self-tolerance because of their sensitivity to an asparagine to aspartic acid sequence difference between E. coli and HuHsp60 in the epitope-containing peptide. In addition, despite substantial conservation of sequence, the homologous peptide from HuHsp60 did not compete with the E. coli-derived peptide for recognition or antagonize responses by acting as an altered peptide ligand. The results suggest that, even when the immune system targets a highly conserved epitope in bacterial hsp60, self-tolerance is maintained. Furthermore, the finding that T cell clones specific for minor contaminant proteins in HuHsp60 preparations can readily be isolated raises the possibility that the HuHsp60 facilitates presentation of antigenic proteins to the immune system.

Antibodies, Monoclonal↗

Self-tolerance in B lymphocytes.

Normally the immune system does not produce pathogenic antibodies to autologous antigens, due to induction of self-tolerance in both the T and B lymphocyte repertoires. The aim of this paper is to review the evidence for self-tolerance within the B cell repertoire, and the range of possible mechanisms responsible for it. In practice, the mechanism of B cell tolerance to autologous antigens in vivo remains controversial, and may in fact vary (depending on the nature of the self antigen and the properties of the self-reactive B cell. Recent work in transgenic mouse models of B cell tolerance has helped to assimilate the numerous and sometimes disparate findings from other models, firstly by allowing direct visualization of the fate of self-reactive B cells in vivo, and secondly, by enabling systematic genetic changes to be made either in the self antigen or in the self-reactive B cell.

Animals↗

Breakdown of self-tolerance and the pathogenesis of autoimmunity.

Autoimmunity results from a breakdown of physiological mechanisms responsible for maintaining tolerance to self-antigens. These mechanisms are traditionally divided into central and peripheral. T or B lymphocytes that bind to self-antigens with high avidity are deleted or rendered unresponsive during their ontogeny in generative lymphoid organs such as the thymus and the bone marrow (central tolerance). However, this elimination process is incomplete, and regulatory mechanisms that keep mature autoreactive lymphocytes in check are necessary for preventing autoimmunity (peripheral tolerance). Peripheral tolerance mechanisms include passive or activation-induced T and B cell apoptosis, anergy, ignorance, and perhaps suppression of autoreactivity by regulatory lymphocytes. Observations in humans and experimental animals with defined genetic mutations provide examples of autoimmune disorders arising from failure to maintain peripheral tolerance to self. However, multiple factors are necessary for the induction of autoimmunity. For example, bacterial and viral infections may precipitate autoimmune disease in genetically susceptible individuals by exposing autoreactive T cells to cross-reactive peptides (molecular mimicry) or by enhancing lymphocyte stimulation.

Adaptation, Physiological↗

A role for suppressor T cells in induction of self-tolerance.

The potential role of suppressor T cells (Ts) in the induction of self-tolerance was investigated by eliminating I-J+ cells during ontogeny (I-J antigens are encoded by the I-J subregion of the murine major histocompatibility complex). To achieve this, F1 mice were exposed to anti-I-J antibodies via the transplacental route by mating B10.A(3R) females, preimmunized with B10.A(5R) cells, with CBA males. At 6 weeks of age, the offspring were injected with rat erythrocytes (RRBC) to induce erythrocyte autoantibodies. By comparison with age-matched controls, Ts-depleted mice produced significantly higher titers of autoantibody, whereas there was no difference in the antibody response of the two groups to the foreign determinants on the RRBC. The selective increase in autoantibody production was mirrored at the clonal level by the appearance of self-reactive B-cell hybridomas after fusion of RRBC-immune spleen cells with the NS-1 cell line. On the other hand, when helper cell function of RRBC-primed cells was measured in a T-cell proliferative assay, Ts depletion in utero resulted in enhanced T-cell activity to nonself (RRBC) but not to self (mouse erythrocyte) determinants. Thus, helper T cells recognizing nonself determinants on RRBC appeared to be responsible for activating self-specific B cells, presumably through linked recognition of different epitopes on mouse erythrocytes. Taken together, these findings indicate that elimination of I-J+ cells during ontogeny can lead to the appearance and activation of "forbidden" B-cell clones and points to a central role for Ts in induction as well as maintenance of self-tolerance.

Age Factors↗

Fine tuning of natural killer cell specificity and maintenance of self tolerance in MHC class I-deficient mice.

TAP1-/-, beta2-microglobulin (beta2m)-/- and TAP1/beta2m-/- mice all express low but quantitatively different levels of MHC class I molecules. Using these mice, we have addressed questions relating to the fine tuning of natural killer (NK) cell specificity and maintenance of self tolerance in the NK cell system. NK cells from B6 wild-type mice killed target cells from TAP1-/-, beta2m-/- and TAP1/beta2m-/- mice in vivo and rejected bone marrow grafts from the same mice in vivo at equivalent levels. NK cells from TAP1-/-, beta2m-/- mice did not kill target cells or reject bone marrow grafts from TAP1/beta2m-/- mice. NK cells in all MHC class I-deficient mice were tolerant to autologous MHC class I-deficient cells, as revealed by in vitro cytotoxicity assays using NK cell effectors activated with the interferon-inducing agent Tilorone, or by in vivo bone marrow graft experiments. However, the self-tolerant state of MHC class I-deficient NK cells was broken by in vitro stimulation with IL-2 for 4 days. Under these conditions, NK cells from the MHC class I-deficient mice killed autologous MHC class I-deficient cells while MHC class I-positive targets were spared. The C-type lectin inhibitory receptor Ly49C has a specificity for H-2Kb and is expressed on a subset of NK1.1+ cells in B6 mice. Wild-type and all MHC class I-deficient mice had similar numbers of Ly49C-positive NK1.1+ cells. However, Ly49C expression was markedly down-regulated on NK1.1+ cells from B6 mice, as compared to TAP1-/-, beta2m-/- and TAP1/beta2m-/- mice. In vitro stimulation of NK cells with IL-2 for 4 days did not significantly change this pattern. The present results are discussed in relation to the role of MHC class I molecules and Ly49 receptors in shaping the NK cell repertoire and raise new questions about maintenance of self tolerance in the NK cell system.

Animals↗

Naturally arising CD4+ regulatory t cells for immunologic self-tolerance and negative control of immune responses.

Naturally occurring CD4+ regulatory T cells, the majority of which express CD25, are engaged in dominant control of self-reactive T cells, contributing to the maintenance of immunologic self-tolerance. Their depletion or functional alteration leads to the development of autoimmune disease in otherwise normal animals. The majority, if not all, of such CD25+CD4+ regulatory T cells are produced by the normal thymus as a functionally distinct and mature subpopulation of T cells. Their repertoire of antigen specificities is as broad as that of naive T cells, and they are capable of recognizing both self and nonself antigens, thus enabling them to control various immune responses. In addition to antigen recognition, signals through various accessory molecules and via cytokines control their activation, expansion, and survival, and tune their suppressive activity. Furthermore, the generation of CD25+CD4+ regulatory T cells in the immune system is at least in part developmentally and genetically controlled. Genetic defects that primarily affect their development or function can indeed be a primary cause of autoimmune and other inflammatory disorders in humans. Based on recent advances in our understanding of the cellular and molecular basis of this T cell-mediated immune regulation, this review discusses how naturally arising CD25+CD4+ regulatory T cells contribute to the maintenance of immunologic self-tolerance and negative control of various immune responses, and how they can be exploited to prevent and treat autoimmune disease, allergy, cancer, and chronic infection, or establish donor-specific transplantation tolerance.

Animals↗

Hen egg-white lysozyme-specific T cells elicited in hen egg-white lysozyme-transgenic mice retain an imprint of self-tolerance.

The characteristics of T cell self-tolerance were examined in hen egg-white lysozyme (HEL)-transgenic (Tg) mice that were tolerant to a dose of HEL that was immunogenic in non-Tg littermates. HEL-specific T cells were identified in the periphery of the Tg mice after immunization with 100-times more HEL than was required to achieve a response in normal littermates. The Tg T cells were functional in vivo as they were capable of providing help to generate a HEL-specific antibody response. Selective deletion of T cells specific for the dominant T cell determinant of the native protein was not the primary mechanism of T cell tolerance in the HEL-Tg mice because, similar to non-Tg littermates, the majority of lymph node (LN) and T cell clones from HEL-Tg mice were specific for the dominant T cell determinant of HEL. Rather, our findings support the idea that the HEL-reactive T cells were anergic in vivo, but could be partially activated with a strong stimulus to the immune system (i.e., 20 nmol HEL and CFA). This conclusion is based on three observations: 1) proliferation in vitro to HEL by Tg LN T cells was subnormal (25% of control) and required 2 log more Ag to proliferate when compared with proliferation of LN from non-Tg littermates; 2) T cell clones isolated from HEL-Tg mice also proliferated poorly upon stimulation with HEL and Con A, although lymphokine production from the same stimuli was similar to that obtained from non-Tg clones; 3) invariably, upon repeated antigenic stimulation in vitro, the Tg T cell clones acquired full proliferative capacity to Ag and mitogens.

Animals↗