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B R Champion

Publications and source records attributed to B R Champion.

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A thyroxine-containing peptide can induce murine experimental autoimmune thyroiditis.

A synthetic peptide based on a sequence containing thyroxine at position 2553 in thyroglobulin (Tg), and already shown to be recognized by two clonotypically distinct murine Tg autoreactive T cell hybridomas, can trigger primed lymph node cells to transfer thyroiditis to naive recipients. Donor lymph node cells could be prepared from mice immunized either with intact mouse Tg or with this peptide itself. After a second exposure to the priming antigen in vitro, both these populations induced 100% thyroiditis in recipient animals. The importance of the T4 residue in the development of disease was demonstrated by the failure of Tg tryptic peptides depleted of T4 to stimulate pathogenic effectors in vitro, even when the lymph node cells had been taken from mice primed with whole Tg. We conclude that this T4-containing 12mer sequence is a major thyroiditogenic epitope in CBA/J mice although we cannot exclude the possibility that there are other pathogenic epitopes present in the whole Tg molecule.

Animals

Thyroid autoimmunity.

Antigenic structure remains a major focus in thyroid immunology. The genes for three major thyroid antigens--thyroglobulin, thyroid peroxidase and the thyrotropin receptor--were sequenced in the late 1980's, and epitopes for antibody and T cells have been reported within the last year. In addition, new evidence for selective use of T-cell receptor V gene segments in human thyroid infiltrates may point the way to specific immunotherapy.

Autoantigens

Identification of a thyroxine-containing self-epitope of thyroglobulin which triggers thyroid autoreactive T cells.

Although thyroglobulin (Tg), the thyroid prohormone, is well known as a T cell dependent autoantigen in human and experimental autoimmune thyroid disease, very little is known about the molecular basis of Tg recognition by T cells. In this paper, we have characterized the epitopes recognized by two clonotypically distinct, murine Tg autoreactive T cell hybridomas, CH9 and ADA2. In vitro iodination of a Tg preparation which was deficient in in vivo organified iodine was first used to confirm our previous observation that these T cells recognize iodination-related epitopes in the Tg molecule. Affinity chromatography of tryptic peptides derived from normally iodinated human Tg revealed that these epitopes were exclusively located in thyroxine (T4) containing peptides. Through the use of synthetic T4-containing peptides, representing the four major hormonogenic sites in Tg, we demonstrated that both CH9 and ADA2 recognize an epitope containing the T4 at position 2553 in human Tg. Sets of overlapping 5mer to 12mer peptides around this T4 showed that the most potent peptide was a 9mer beginning at Asp 2551. The T4 was shown to be a critical residue, since its replacement with any of the 20 naturally occurring amino acids produced only nonstimulatory peptides. Since the T cell hybridomas could also be stimulated by major histocompatibility complex class II positive (interferon-gamma-treated) thyroid epithelial cells in vitro, and their parent T cell lines can induce thyroiditis on adoptive transfer, the T4-containing Tg sequence described here is implicated as a pathogenic epitope in murine thyroid autoimmunity.

Amino Acid Sequence

In vitro regulation of thyroglobulin (Tg) autoantibody production by Tg-specific T-cell lines and hybridomas.

To define the interactions between self thyroglobulin (Tg)-reactive T and B we co-cultured enriched B cells taken from rat or mouse Tg-primed mice with major histocompatibility complex (MHC) class II-restricted T-cell lines specific for iodinated determinants on self-Tg, or hybridomas derived from those lines. Using two clonally distinct T-cell hybridomas, ADA2 and CH9, in vitro help for Tg autoantibody responses was observed using mouse (M)Tg-primed B cells and a 100 ng/ml MTg challenge. Using rat Tg-primed B cells and the same conditions, only CH9 provided help, indicating that the fine specificity of B cells influences their ability to interact with specific anti-Tg T-cell clones. In contrast to T-cell hybridomas, their parent T-cell lines MTg9B3 and MTg12B suppressed Tg autoantibody responses in vitro, although they augmented bystander proliferation of unprimed B cells. The MTg12B cells also (i) diminished the survival of Tg-primed B cells, and (ii) inhibited the proliferation of an antigen-presenting B-cell hybridoma (LK35.2) in a cytostasis assay. These findings together support the view that their suppressive activity is mediated through cytotoxicity. While the role of class II-restricted cytotoxic cells in thyroid autoimmunity is unknown, the results suggest that such cells may act to suppress autoantibody responses as well as to mediate tissue damage to class II-expressing thyroid cells.

Animals

Secondary immunoglobulin responses of BALB/c mice previously stimulated with goat anti-mouse IgD.

Intravenous injection of goat antibodies to mouse IgD (GAMD) into BALB/c mice has been shown to induce vigorous T-cell dependent immunoglobulin responses, particularly of the IgG1 and IgE isotypes. We have confirmed these findings and show that IgA responses are also triggered in this model. Since the study of IgE regulation in allergic individuals is concerned with secondary and subsequent T- and B-cell responses, we boosted GAMD-primed mice with goat antibodies to IgE or IgA in an attempt to specifically retrigger IgE- and IgA-bearing memory B cells. However, we found that secondary IgG1, IgE and IgA production could be elicited equally well by either antibody preparation or by normal goat IgG (GIg). As with the primary response, GIg primed and boosted mice produced very low or undetectable IgG1, IgE and IgA responses. These data suggest that GAMD is very efficient at priming T cells specific for GIg epitopes and that once primed they can be readily re-triggered by GIg. Spleen cells taken 7 days after boosting GAMD-primed mice were found to spontaneously produce much higher levels of interleukin-6 (IL-6) in culture than cells from unboosted or GIg primed and boosted mice. In contrast to primary responses, where IgE levels return to background (less than 40 ng/ml) very quickly, circulating IgE levels in boosted mice initially declined before reaching a plateau level (approximately 1 microgram/ml) which was maintained for at least 148 days. IgG1 and IgA levels continued to fall over this same time period. Mice which had been primed (but not boosted) 10 months earlier were all found to have detectable IgE in their blood, despite the fact that following priming IgE becomes undetectable within 2-3 weeks. Since only a part of the IgE response was directed towards the antigen (GIg), these observations suggest the possibility that B cells initially primed to make IgE can be non-specifically retriggered in vivo.

Animals

In vitro and in vivo studies with purified recombinant human interleukin 5.

The functional activities of highly purified recombinant human IL 5 (hIL 5) have been characterized on a number of cell types in vitro and in BALB/c mice in vivo. In vitro, hIL 5 could induce the differentiation of eosinophils from precursors in both human and mouse bone marrow with approximately the same efficiency. A mouse IL 5/3-dependent B cell line, LyH7.B13, was found to proliferate in response to hIL 5 but not human interleukin 1 (IL 1), interleukin 2 (IL 2), interleukin 3 (IL 3), interleukin 4 (IL 4), interleukin 6 (IL 6), interferon-gamma (IFN-gamma), or granulocyte macrophage-colony stimulating factor (GM-CSF) and was at least 10-fold more sensitive than BCL1 mouse lymphoma cells. We have successfully used this cell line to demonstrate the production of IL 5 by human T cell clones. In marked contrast to its effects on murine B cell lines, hIL 5 had no demonstrable activity on CD23 expression, anti-mu costimulated proliferation or IgM, IgG, or IgE production by tonsillar B cells and did not influence such responses triggered by IL 4. BALB/c mice injected with hIL 5 for 7 consecutive days were shown to develop an eosinophilia comparable to that induced by infection with the parasite Mesocestoid corti.

Animals

Interleukin 1 responsiveness and receptor expression by murine TH1 and TH2 clones.

Murine Th1 and Th2 T cell lines differ in their responses to interleukin 1 (IL 1). Therefore, we examined two T-cell lines, D10.G4.1 (Th2) and MTg12B (Th1) in an attempt to correlate IL 1 receptor (IL 1R) expression with their IL 1 responsiveness. D10.G4.1 cells, which respond to IL 1, expressed two forms of the IL 1R, with molecular masses of approximately 80 kDa and approximately 60 kDa. In contrast, MTg12B cells failed to respond to IL 1 and only expressed the approximately 60 kDa receptor form. This suggests that the approximately 80 kDa receptor is essential for signaling. Expression of both IL 1R forms on D10.G4.1 cells could be inhibited by the anti-IL 4 antibody, 11B11. Antigen presentation reversibly upregulated both forms of the IL 1R, whereas stimulation with concanavalin A (ConA) and anti-CD3 only upregulated the approximately 60 kDa moiety. Upregulation of the approximately 80-kDa IL 1R by repeated antigenic stimulation resulted in a marked increase in sensitivity of D10.G4.1 cells to IL 1.

Animals

Immunoregulation in the common marmoset, Calithrix jaccus: functional properties of T and B lymphocytes and their response to human interleukins 2 and 4.

Non-human primates have been used to study immune function to a much lesser extent than readily available strains of inbred rodents. Nevertheless, in situations where it might be desirable, but impossible, to study human immune responses in vivo, lower primates could provide an acceptable alternative. In order to extent the knowledge of T- and B-lymphocyte function in lower primates, the common marmoset Callithrix jaccus was used as an experimental model. The functional similarities between this species and humans at the level of T-B co-operation in the antibody response were examined, and xenoreactive T-lymphocyte clones were obtained from marmoset spleen cells using Epstein-Barr virus (EBV)-transformed human B cells as stimulators. These clones could act as helper cells when co-cultured with human B lymphocytes, inducing the secretion of both IgM and IgG. Lymphokine production by mitogen-stimulated marmoset T-cell clones was also examined. Interleukins (IL) 2 and 4 activities were detected in clone supernatants using bioassays and interferon-gamma (IFN-gamma) was detected using a solid-phase ELISA system. However, SDS-PAGE analysis of biosynthetically labelled marmoset and human T-cell clone supernatant proteins revealed major differences between the soluble T-cell products of the two species. The proliferative responses of marmoset T and B cells to recombinant human IL-2 and IL-4 were also examined. Stimulation of [3H]thymidine uptake was detected in both T cell- and anti-IgM-stimulated B-cell cultures with both of the lymphokines. These results suggests that the key components of the antibody response are functionally conserved between lower primates and man and that the common marmoset may be useful as an in vivo model of immune function, particularly with regard to the role of interleukins such as IL-2 and IL-4.

Animals

Functional and phenotypic properties of T-cell clones which regulate IgE synthesis.

We have generated a panel of T-lymphocyte clones from a patient suffering from the hyper IgE syndrome, and have attempted to correlate the ability of each to help IgE responses in vitro with the profile of lymphokines secreted after mitogenic stimulation. Clones which showed positive IgE helper activity released larger amounts of interleukin-4 (IL-4) than the non-helpers, which tended to release more interleukin-2 (IL-2). Surprisingly, all clones released moderate amounts of gamma interferon (IFN), which has been shown to inhibit the action of IL-4 on B cells. The clones were analysed by indirect immunofluorescence using monoclonal antibodies to CDw29 and CD45R (4B4 and 2H4 respectively). Those T cells which could provide strong helper activity for all isotypes, expressed high levels of CDw29 and low CD45R. These data suggest that these CD4-positive T cells expressing surface antigen of the 'memory' subset i.e. CDw29, are involved in IgE isotype regulation by virtue of their ability to secrete IL-4 upon antigenic stimulation.

Antigens, Differentiation

Functional and phenotypic analysis of human T-cell clones which stimulate IgE production in vitro.

Peripheral blood mononuclear cells (PBMC) from a patient suffering from the hyper IgE syndrome were used to generate phytohaemagglutinin (PHA)-expanded T-cell clones (all CD4+, CD8-, CD23-). A selection of the clones was tested for their ability to help IgE secretion by culturing with normal B cells in the presence of solid-phase antibody to CD3. Supernatants were harvested on Day 7 and assayed by ELISA for IgE, IgG and IgM. Lymphokine secretion by the clones was assessed by culturing clones for 24 hr with solid-phase antibody to CD3 followed by assay of the supernatants for IL-2, IL-4 and interferon-gamma (IFN-gamma) production. In addition, clones were analysed by flow cytometry for CDw29 and CD45R expression. Initial experiments with seven clones indicated that those clones that could help IgE secretion also stimulated optimal IgG and IgM responses. All clones appeared to secrete IL-2, IL-4 and IFN-gamma, although the amounts of each varied. These results confirm recent findings that human T-cell clones do not fall into Tinf (Th1) and Th (Th2) type subsets as described in the mouse. There was no clear correlation between the lymphokines secreted by the clones and their capacity to help IgE production. However, the helper function of the clones for all isotypes, including IgE, appeared to be related to the level of expression of the surface antigen CDw29.

Antigens, Differentiation

Critical role of iodination for T cell recognition of thyroglobulin in experimental murine thyroid autoimmunity.

We have used two clonotypically distinct thyroglobulin (Tg)-specific, I-Ak restricted monoclonal T cell populations to investigate the role of thyroid peroxidase-catalyzed iodination in Tg recognition by autoreactive T cells. The results showed that these T cells could recognize Tg only it it was sufficiently iodinated. Unlike normal mouse Tg, noniodinated mouse Tg was unable to induce significant thyroid lesions but could trigger the production of Tg autoantibodies. In these experiments, the importance of T cell recognition of iodination-related epitopes was emphasized by the inability of serum antibodies to distinguish Tg on the basis of iodine content, whether they were induced with normal or noniodinated Tg. Therefore, thyroid peroxidase-dependent modification of Tg would appear to be central to its recognition by autoreactive T cells and hence its capacity to induce autoimmune thyroid lesions.

Amitrole

T-cell hybridomas specific for self and foreign thyroglobulins.

We have used somatic cell fusion techniques to produce and characterize murine T-cell hybridomas with specificity for self and foreign thyroglobulin (Tg). Two interleukin-2 (IL-2)-releasing I-Ak-restricted hybrid clones with specificity for self determinants on syngeneic Tg were derived from Tg-specific T-cell lines. These two autoreactive hybridomas were independently derived and were clonotypically distinct as determined by restriction fragment length polymorphism of the Ti beta-chain gene, but showed a similar pattern of cross-reactivity against rat and human (but not porcine) Tg. A third T-cell hybridoma showed a previously unknown specificity for the immunizing (non-inbred) Tg, but not for syngeneic Tg, indicating responsiveness to an allelic determinant. Although T-cell hybridization techniques have previously had only minimal application in experimental autoimmunity, this represents an approach to the study of Tg-specific T-cell responses at the molecular level.

Animals

Recognition of thyroglobulin autoantigenic epitopes by murine T and B cells.

We have used a large panel of thyroglobulins (Tg) prepared from a wide range of mammalian species to study the Tg autoantigenic epitopes recognized by populations of monoclonal and polyclonal murine T and B cells. This approach showed the existence of at least six different epitopes; three recognized by T cells (in association with I-Ak on antigen-presenting cells) and three by B cells (monoclonal antibodies). The majority of serum and monoclonal autoantibodies were found to be highly specific for mouse Tg, with some cross-reactive binding to rat Tg. In contrast, T-cell lines/clones and hybridomas recognized cross-reactive epitopes on Tg that were highly conserved throughout most of the mammalian orders. Moreover, two hybrid clones, which showed similar patterns of cross-reactivity, differed in their responsiveness to tryptic digests of human Tg. Thus, autoreactive T and B cells recognize distinct areas of the Tg molecule.

Animals

Antigenic determinants of human thyroglobulin differentiated using antigen fragments.

Human thyroglobulin (Tg) was digested with V8 protease and the fragments separated by high performance liquid chromatography (HPLC). The antigenic relationship of the fragments was investigated using mouse monoclonal antibodies to human Tg. The binding of Hashimoto's disease autoantibodies to the fragments was measured by radioimmunoassay. This demonstrated that a minority of the patients recognize an epitope on Tg which others do not. The epitopes identified by the autoantibodies were substantially destroyed in the smaller fragments tested, but these smaller fragments were more efficient stimulators of Tg-specific T-cell lines than the larger fragments which carry the antibody binding determinants. This suggests that the parts of the Tg molecule which stimulate autoimmune B cells differ from those which stimulate T cells.

Animals

Autoreactive T-cell lines specific for mouse thyroglobulin.

Autoreactive T-cell specific for mouse thyroglobulin have been established and characterized. These Lyt 1+ T cells proliferated specifically in response to thyroglobulin presented by syngeneic irradiated spleen cells. The antigen-presenting cell requirements of these autoreactive T cells appeared to be the same as those for foreign antigen (PPD) reactive T cells. All lines tested required antigen-presenting cells compatible at the I-A subregion of the H-2 complex. Both T-cell types responded to antigen presented by peritoneal cells and splenic dendritic cells, but only gave optimal responses when whole spleen cells were used. The cross-reactivity patterns of responses to mouse, rat, pig and human thyroglobulins indicated that at least two different epitopes could be recognized by the autoreactive T cells. Furthermore, these epitopes appeared to be different from those recognized by the majority of serum autoantibodies to mouse thyroglobulin.

Animals