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B Arnold

Publications and source records attributed to B Arnold.

At least 19 recordsLinked to original sources

Autoimmune diabetes as a consequence of locally produced interleukin-2.

During cell differentiation in the thymus, self-reactive T cells can be generated. The majority of these seem to be deleted after intrathymic encounter with the relevant autoantigen. As all self antigens are unlikely to be present in the thymus, some autoreactive T cells may escape censorship. Here we study the fate of these cells using transgenic mice expressing the class I molecule H-2Kb (Kb) in the insulin-producing beta-cells of the pancreas. These mice were crossed with mice transgenic for genes encoding a Kb-specific T-cell antigen receptor (TCR) which could be detected using a clonotype-specific monoclonal antibody. Although T cells expressing the highest level of transgenic TCR were deleted intrathymically in double-transgenic mice, Kb-specific T cells were detected in the periphery. These cells caused the rejection of Kb-expressing skin grafts, but ignored islet Kb antigens even after priming. But when double-transgenic mice were crossed with transgenic mice expressing the lymphokine interleukin-2 in the pancreatic beta-cells, there was a rapid onset of diabetes. These results indicate that autoreactive T cells that ignore self antigens may cause autoimmune diabetes when provided with exogenous 'help' in the form of interleukin-2.

Animals

Anergy induced by thymic medullary epithelium.

Thymocytes can be rendered tolerant by non-deletional mechanisms upon interaction with major histocompatibility complex (MHC) antigens on thymic epithelium. Whether the epithelial cells in the cortex or medulla could mediate this effect was not clear so far. To address this question, a transgenic mouse was generated in which the bovine keratin IV promoter was used to control expression of the alloantigen Kb. In the periphery the Kb transgene was expressed on a subset of keratinocytes. In the thymus expression was restricted to a subpopulation of medullary epithelial cells. No expression was found in the cortex. Such a tissue distribution has been reported for the keratin IV molecule demonstrating the faithfulness of the promoter used here. To follow the fate of the Kb-reactive thymocytes, this mouse was mated with another transgenic mouse expressing an anti-Kb T cell receptor (TcR). In the double-transgenic mice the CD8+CD4- thymocytes were not deleted but they were found to be anergic as assayed by their failure to be activated in vitro by either Kb-positive spleen cells or by cross-linked anti-TcR antibodies. These observations establish that expression of an MHC class I antigen in the thymic medullary epithelium is sufficient to induce anergy in the mature CD8+CD4- thymocyte population.

Animals

Expression of major histocompatibility complex class I antigens at low levels in the thymus induces T cell tolerance via a non-deletional mechanism.

Transgenic CBA (H-2k haplotype) mice expressing the H-2 Kb major histocompatibility complex (MHC) class I gene under control of transcriptional promoter elements from a milk protein gene display high-level H-2 Kb transcription in lactating mammary glands and low-level transcription in skin and thymus of male and virgin female transgenic mice. However, H-2 Kb antigen could be detected only in lactating mammary gland epithelial cells by immunohistological methods. All transgenic mice are tolerant of H-2 Kb since they fail to reject skin grafts from mice expressing H-2 Kb molecules. Furthermore, anti-H-2 Kb cytotoxic responses could not be generated using responder T cells from transgenic mice but T cells from the same mice proliferated, in the presence of interleukin-2, in response to stimulator cells expressing H-2 Kb. Tolerance to H-2 Kb is induced in the thymus since CBA mice grafted with thymus tissue from transgenic mice fail to reject H-2 Kb disparate skin grafts. However, experiments with double-transgenic mice also expressing a T cell receptor with anti-H-2 Kb specificity reveal that tolerance induction is not brought about by elimination of thymocytes bearing H-2 Kb-reactive receptors. Instead, a non-deletional mechanism which results in down-modulation of both CD8 and T cell receptor expression in peripheral T cells correlates with the induction of tolerance in these mice. These data reveal that extremely low levels of self-antigen expression in the thymus are sufficient to induce tolerance via non-deletional mechanisms.

Animals

Serial studies of autologous antibody reactivity to squamous cell carcinoma of the head and neck.

In previous studies we evaluated the incidence and specificity of autologous antibody reactivity against squamous cell carcinoma of the head and neck (SCCHN). We were able to demonstrate that autologous antibody reactivity is present in native sera but was usually of too low a titer to allow further analysis. Dissociation of immune complexes by acidification and ultrafiltration of serum augmented autologous antibody reactivity in nine out of nine autologous systems tested. Native antibody and antibody derived from immune complexes produced by the host and reactive with autologous tumor cells may be directed against physiologically relevant antigens. Therefore, correlations of antibody titers with clinical course may provide insight into the nature of the host response to cancer. In the present analysis, serological studies of six patients with SCCHN were performed with serum samples obtained over many months. Results of serial serological assays were correlated to tumor progression and clinical course. Fluctuations in autologous antibody reactivity were noted over time. In four cases, rises in autologous antibody titers preceded the clinical diagnosis of recurrence by several months. Drops in autologous antibody reactivity were noted in two cases following surgery or radiation therapy. In two cases of long-term survivors, no correlation between antibody reactivity and clinical course was noted. Specificity analysis of the six autologous systems demonstrated reactivity against autologous and allogeneic SCCHN as well as melanoma cell lines. These sera did not react with glioma, neuroblastoma, renal cell, breast, bladder and colon carcinoma cell lines nor with fetal calf serum, pooled lymphocytes, red blood cells and platelets. Autologous serial serological studies may provide a means by which to evaluate the host/tumor relationship in patients with SCCHN.

Aged

Extrathymic T-cell selection.

The T-cell repertoire is formed during T lymphocyte maturation in the thymus. There is, however, increasing evidence that there are additions to, and modifications of, this repertoire by extrathymic events. Most importantly, mature peripheral T cells are not only susceptible to activation signals but also to tolerance induction upon encounter of extrathymic antigen. An understanding of these inactivation processes should result in strategies for specific immunosuppression in organ transplantation and autoimmune diseases.

Animals

T cell activation and thymic tolerance induction require different adhesion intensities of the CD8 co-receptor.

Activation of mature lymphocytes requires in addition to the TCR contact with the corresponding antigen the binding of the CD8 or CD4 co-receptors to MHC class I or class II proteins respectively. To investigate the contribution of the CD8-class I interaction to the elimination of autoreactive T cells during negative selection in the thymus we generated two types of transgenic mice. One set expressed a modified Kb molecule which contained a human HLA-A2 alpha 3 domain, thereby missing the binding residues for the murine CD8 molecules. The second set of mice expressed an anti-Kb specific TCR. Both lines were crossed and in the resulting double transgenic mice the development of Kb-reactive T cells was followed with an anti-clonotypic antibody. Surprisingly, efficient clonal deletion in the thymus was still observed, although the reduced CD8-class I adhesion abrogated effector functions in vivo and in vitro. These results imply that even T cells with intermediate affinity for self are negatively selected in the thymus despite the fact that they are not able to react against self antigens in the periphery. Thus a safety window is created which decreases the risk of autoaggression.

Animals

Threshold tolerance in H-2Kb-specific TCR transgenic mice expressing mutant H-2Kb: conversion of helper-independent to helper-dependent CTL.

To evaluate the role of the structure of the class I molecule and associated peptide(s) in intrathymic selection and tolerance, mice expressing as a transgene (tg) a TCR specific for the H-2Kb alloantigen were crossed with mice expressing the mutant class I molecule H-2Kbm1 or H-2Kbm8. In H-2k/k TCR tg mice (in a situation of exclusive positive selection), peripheral tg TCR expressing (Ti+) CD8+ T cells showed high, suboptimal, and an absence of reactivity for H-2Kb, H-2Kbm1, and H-2Kbm8, respectively. In the peripheral lymphoid organs of TCR tg H-2k/k, H-2k/bm8, H-2k/bm1, and H-2k/b mice respectively, the tg TCR was expressed on T cells with decreasing intensity of surface CD8. Thymic subpopulations of TCR tg mice presented a pattern of negative selection with decreasing intensity from H-2k/b to H-2k/bm1 and H-2k/bm8. This suggests that a weak interaction between the TCR and H-2Kbm8 exists which partially results in negative, but not in positive, intrathymic selection. Results further indicate that expression of H-2Kbm8 does not induce tolerance to H-2Kb. In H-2k/bm1 mice, the peripheral Ti+ CD8lo cells express two distinct types of 'threshold' tolerance in vitro: (i) they generate cytotoxic T lymphocytes (CTL), in the presence of exogenous IL-2, which fail to respond to H-2Kbm1 but remain reactive to H-2Kb; and (ii) they do not make significant titers of IL-2 and do not significantly proliferate in response to H-2Kb, unlike the Ti+ CD8+ T cells from H-2k/k TCR tg mice which respond efficiently. These results show that tolerance is induced up to a level of non-reactivity within a given MHC environment: for the same TCR, CTL reactivity to H-2Kbm1 is totally lost, whereas CTL reactivity to H-2Kb is only slightly reduced. Additionally, proliferation and IL-2 production by Ti+ CD8+ cells in response to H-2Kb were strongly affected in H-2k/bm1 mice. Thus, in H-2k/k mice the Ti+ CD8+ cells behave as helper-independent, whereas in H-2k/bm1 mice CD8+ cells expressing the same TCR behave as helper-dependent CTL.

Animals

Influence of antigen density on degree of clonal deletion in T cell receptor transgenic mice.

The extent of peripheral clonal deletion of the T cell antigen receptor (TCR) from a CD8-dependent cytotoxic T lymphocyte of H-2k origin with alloreactivity for H-2Kb was measured in a TCR transgenic (Tg) model by use of a clonotype-specific mAb (anti-Ti mAb). Deletion varied depending on whether the TCR Tg was expressed in mice heterozygous (H-2k x b) or homozygous (H-2b x b) for the H-2Kb antigen. CD8 surface staining and functional analyses of peripheral T cells stimulated with polyclonal activators in bulk culture or by limiting dilution confirmed that in the H-2b x b mice few Ti+ cells were generated as measured by anti-Ti mAb-dependent target cell killing; while such cells could readily be detected in the H-2k x b mice. The latter maintained non-responsiveness to H-2Kb, as measured by cytolysis of H-2Kb-expressing tumor target cells, due to their down-regulation of surface CD8 expression. The question of whether the difference between H-2b x b and H-2k x b mice was due to the influence of positive selection imposed by the k haplotype in the H-2k x b hybrid, or to the lower antigen density in heterozygous than homozygous mice was addressed by analysis of H-2b x d Tg mice, H-2d being a non-selecting haplotype. Results obtained were similar for H-2b x d and H-2k x b Tg mice, suggesting that the density of the H-2Kb antigen may be one of the parameters controlling the extent of clonal deletion in the thymus.

Animals

Distinct mechanisms of extrathymic T cell tolerance due to differential expression of self antigen.

Self-reactive T lymphocytes escaping thymic tolerance induction can be rendered non-responsive by contact with antigens in the periphery. In order to determine the parameters controlling peripheral tolerance induction we followed the fate of one well-defined self-reactive T cell population in three different mice expressing the self antigen in various nonlymphoid tissues outside the thymus. This was achieved by crossing anti-Kb T cell receptor (TCR) transgenic mice with transgenic animals expressing the Kb antigen exclusively on hepatocytes or keratinocytes or neuroectodermal cells. Due to this differential expression clonotype+, anti-Kb reactive T cells were found to exist at three different levels of tolerance. These levels were distinct with regard to downregulation of TCR and CD8 molecules, and the requirements for reexpression of TCR in vitro. This differential induction of peripheral tolerance suggest that some tissues are more likely to be affected in autoimmune diseases than others.

Animals

Modulation by interferon alpha and gamma of the expression of a melanoma-associated antigen detected by autologous antibody.

Interferons (IFN) are known to alter the expression of histocompatibility and tumour-associated antigens. We have reported the isolation and purification of a 66-kD melanoma-associated antigen (MAA) that is recognized by the host. Competitive binding with MAA reduced autologous antibody binding to five melanoma cell lines, suggesting that a similar antigen is detected by other patients with melanoma. Nine melanoma cell lines were incubated for 3 days with 0.01-100 units/ml of interferon alpha (IFN-alpha) or interferon gamma (IFN-gamma) and the maximum titre of autologous antibody reactivity was determined by protein A haemadsorption. Incubation with IFN-alpha or IFN-gamma resulted in a decrease in maximum titre of autologous antibody reactivity directed against all melanoma cell lines. A 3-day incubation of three melanoma cell lines with IFN-gamma augmented the expression of HLA-DR, as has been reported by others. Incubation with spent media from autologous melanoma cells exposed to IFN-alpha inhibited autologous antibody binding less than control media from melanoma cells to which no IFN was added, indicative of decreased production or internalization of MAA. Conversely, incubation with spent media obtained after exposure to IFN-gamma inhibited autologous antibody binding to a greater degree than control spent media, consistent with increased shedding of antigen. These results suggest that IFN-alpha and IFN-gamma down-regulate the expression of MAA detected by autologous antibody by different mechanisms of action.

Antigenic Modulation

Recombinant human TNF-alpha stimulates the secretion of granulocyte colony-stimulating factor in vivo.

Tumor necrosis factor (TNF) is a macrophage-derived cytokine that causes hemorrhagic necrosis of several human tumors in vitro. It has a wide range of biologic effects including stimulation of secretion of both granulocyte colony-stimulating factor (G-CSF) and granulocyte/macrophage colony-stimulating factor (GM-CSF) by normal adult lung fibroblasts in culture. No in vivo data are available on the effect of exogenously administered TNF on cytokine production. In the studies reported here, we show that G-CSF accumulates in the serum in vivo in response to recombinant TNF (rTNF) administration. At the peak of the response circulating levels of 2-6 ng/ml of biologically active G-CSF are detectable. Surprisingly, circulating levels of GM-CSF, interleukin-3 as well as a number of other cytokines were not detectable within the limits of the assays. The results indicate that the levels of GM-CSF or interleukin-3 are minimally 100-fold lower than the peak levels of G-CSF. These data illustrate the complex interplay that cytokines have in vivo. Understanding these interactions in humans is crucial to the correct use of this new class of agents in the clinic.

Adenocarcinoma

Uneven tissue distribution of minor histocompatibility proteins versus peptides is caused by MHC expression.

Naturally processed minor histocompatibility (H) peptides corresponding to H-4b, H-Y, and an unmapped BALB.B minor H gene were quantified in a relative way in 15 different tissues of male BALB.B mice. For one of these minor H antigens, we could also determine the relative content of the respective protein. For each minor H peptide, an individual tissue distribution was found. Tissues expressing little or no MHC (major histocompatibility complex), like brain, contained only small amounts of minor H peptides or none at all, although the same tissues contained minor H protein in substantial quantities. By contrast, Kb-expressing brains from mice transgenic for Kb under control of the glial acidic protein promoter contained both minor H peptide and protein in high amounts. Thus, the expression of minor H peptides in a given tissue is dependent on coexpression of the restricting MHC class I molecules.

Animals

Down-regulation of T cell receptors on self-reactive T cells as a novel mechanism for extrathymic tolerance induction.

By generating two types of transgenic mice we have investigated how extrathymic events can contribute to self tolerance. The major histocompatibility complex class I gene Kb was expressed under the control of the glial fibrillary acidic protein promoter in cells of neuroectodermal origin outside the thymus. These mice were tolerant to Kb. When crossed to transgenic mice expressing a Kb-specific T cell receptor (TCR), clonotype+, CD8+CD4- mature T cells could be detected in normal numbers in the thymus of the double-transgenic mice but were strongly reduced in spleen and lymph nodes in comparison with TCR single-transgenic mice. After isolation of clonotype negative splenic T cells and activation in vitro, reappearance of the clonotype+, CD8+CD4- cells was observed. These results indicate that down-regulation of TCR and CD8 molecules on the antigen-specific T cells is a novel mechanism, by which peripheral tolerance to this antigen can occur.

Animals

Non-deletional mechanisms of peripheral and central tolerance: studies with transgenic mice with tissue-specific expression of a foreign MHC class I antigen.

The studies described here reveal a surprising variety of non-deletional manifestations of tolerance (anergy and unresponsiveness) in both the thymus and peripheral lymphoid organs. This can be observed in anti-Kb TCR transgenic mice crossed with normal Kb positive mice, and in TCR mice crossed with transgenic mice expressing Kb in restricted tissues, such as liver, epithelial cells, cells of neuroectodermal origin etc. Thymic induction of unresponsiveness: Transgenic mice were prepared with the a, beta TCR genes from a CD8-dependent and Kb-specific CTL clone. In homozygous H-2b mice clonotype+ cells were found in the thymus but none or few in the periphery, suggesting that deletion occurs in the thymus although lack of migration to the periphery has not been ruled out. In H-2 heterozygous mice (TCR.H-2kxb) deletion was incomplete in the thymus and clonotype+ cells accumulated substantially in the periphery. Most of them had downregulated their CD8 molecules. The clonotype+ cells in both the thymus and periphery were unresponsive to the Kb antigen in vitro, suggesting the induction of anergy in the thymus. The inefficient negative selection in H-hkxb heterozygous mice is probably due to the lower Kb expression in comparison to H-2b homozygous mice. We then further reduced the amount of Kb expression in the thymus by constructing Kb transgenic mice using the 0.8 Kb fragment of the keratin IV promoter. In the thymus expression was only observed on a subset of medullary epithelial cells. When these mice were crossed with the TCR transgenic mice than no deletion was observed in the thymus. However, the clonotype+ CD8+ thymocytes could not respond to Kb in vitro, indicating that they had been rendered anergic in the thymus. These data show that unresponsiveness can be induced in the thymus, that the extent of clonal deletion can vary greatly owing to a change in antigen expression by a factor of two as in H-2 heterozygous versus homozygous mice, and that expression of Kb on a few medullary thymic epithelial cells is sufficient to induce anergy. Peripheral induction of unresponsiveness: To study the consequence of tissue-specific tolerogen expression we have generated transgenic mice expressing Kb exclusively in cells of neuroectodermal origin (GFAP.Kb mice) in the liver (alumin.Kb mice), or in certain epithelial cells outside the thymus (2.4 keratin IV.Kb mice). Consistent with the absence of Kb expression in the thymus there was no deletion of clonotype+ CD8+ cells in the thymus, and the thymocytes were fully functional.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Clonal deletion of autospecific B lymphocytes.

Using mice transgenic for functional, rearranged immunoglobulin heavy and light chain genes, it can be demonstrated that B lymphocytes reactive with cell surface-bound class I MHC antigen can be controlled by clonal elimination. Even low-affinity cell-bound ligands can induce deletion. Deletion can occur in the pre-B to B cell transitional stage or after the B cells exist the bone marrow, depending on where the cells first encounter autoantigen. IgD appears to play no role in protecting cells from deletion. It is argued that defects in B-cell tolerance alone may be sufficient to lead to systemic autoimmunity.

Animals

MHC class-I transgenic mice.

The introduction of cloned genes into the germline of mice has been proven to be a powerful tool to investigate the role of the respective gene products within the immune system. Here we summarize the transgenic mouse models that have been established with major histocompatibility complex (MHC) class-I genes. Foreign class-I alleles can be expressed in transgenic mice according to their normal expression patterns as authentic self molecules and can function in T-cell responses in the same way as endogenous class-I molecules. Since this is also true for most of the introduced human HLA class-I alleles, there is great interest in establishing mouse models for HLA-linked diseases. A new field of experimental approaches concerning self-tolerance has been opened by tissue specific expression of MHC antigens under specific promoters. Besides negative selection in the thymus, peripheral mechanisms could be identified that induce and maintain self-tolerance.

Animals