Search PubMed⌕ Search

Biomedical subjects

J Kappler

Publications and source records attributed to J Kappler.

161 records · Page 9Linked to original sources

Use of somatic cell genetics to study chromosomes contributing to antigen plus I recognition by T cell hybridomas.

Keyhole limpet hemocyanin (KLH)/I region-specific T cell hybridomas have been prepared by fusing KLH/I-specific T cell blasts from mice with single pairs of metacentric chromosomes to the inducible, interleukin 2 (IL-2)-secreting T cell hybridoma FS6-14.13.AG2.1. T cell hybridomas with KLH/I receptors were identified by their ability to secrete IL-2 in response to KLH and the appropriate antigen-presenting cells. After cloning and subcloning, KLH/I reactivity was correlated with the presence or absence of metacentric chromosomes derived from the KLH/I-specific T cell blast parent. Hybridomas were identified that had lost all chromosomes 4 and 6 or 16 and 17 derived from their normal T cell parent, but retained the ability to respond to KLH/I. This suggested that products of genes on these chromosomes did not contribute to the specific portions of T cell Ag/I receptors. These gene products would include, of course, kappa and lambda chains and H-2. We did not obtain any T cell hybridomas that had lost both metacentric (8.12) chromosomes derived from T cells of the Robertsonian mouse strain Rb(8.12)5, so we could not draw any conclusions about the contributions of products of genes on these chromosomes. T cell hybridomas with KLH/I reactivity were found that contained only one metacentric (8.12) chromosome derived from this strain. Moreover, a T cell hybridoma was found that retained both metacentric (8.12) chromosomes from its normal T cell parent, but had lost KLH/I reactivity. These results suggested that neither two chromosomes 8 nor two chromosomes 12 were required for antigen/I reactivity in normal T cells and that antigen/I reactivity was controlled, at least in part, by genes mapping on chromosomes other than 8 or 12.

Animals↗

The major histocompatibility complex-restricted antigen receptor on T cells in mouse and man: identification of constant and variable peptides.

The variability of the MHC restricted receptor on murine T cells was examined by comparing tryptic peptide fingerprints of the receptor isolated fom three T cell hybridomas and a T cell tumor. Both variable and constant peptides were seen. Constant peptides were most apparent when comparing receptors from the same mouse strain. Peptide fingerprints of receptors from two independent T cell hybridomas with the same idiotype and specificity were identical. We also describe a molecule detected on the surface of a human T cell leukemia whose properties were identical to those reported for the MHC receptor on normal human T cells. The molecule was a dimer of 85,000-90,000 MW containing a 46,000 MW acidic alpha-chain and an unrelated 40,000 MW neutral beta-chain.

Animals↗

The mouse T cell receptor: comparison of MHC-restricted receptors on two T cell hybridomas.

The receptors for antigen plus a major histocompatibility complex (MHC) gene product on a T cell hybridoma specific for ovalbumin plus a Class II MHC product were compared with those on another T cell hybridoma, specific for a Class I MHC product. In each case receptor material was identified by a clone-specific monoclonal antibody. The two receptors proved to have very similar gross structures, being 70-85 kd proteins, and reducing to an acidic alpha-chain and a slightly basic beta-chain, each 40-43 kd. The charge of both the acidic and basic polypeptides varied between the two receptors studied, showing that variable amino acid sequences occur in both chains.

Animals↗

Characterization of the murine antigenic determinant, designated L3T4a, recognized by monoclonal antibody GK1.5: expression of L3T4a by functional T cell clones appears to correlate primarily with class II MHC antigen-reactivity.

We describe here the properties of mAb GK1.5, which recognizes a cell surface molecule designated L3T4; the determinant on L3T4 recognized by mAb GK1.5 is designated L3T4a. We present evidence here that: i) the expression of L3T4a by murine T cell clones correlates primarily with class II MHC antigen-reactivity; ii) mAb GK1.5 blocks all class II MHC antigen-specific functions (cytolysis, proliferation, release of lymphokines) by murine class II MHC antigen-reactive T cell clones, although there appears to be clonal heterogeneity in the degree to which these functions are blocked by mAb GK1.5; iii) mAb GK1.5 blocks class II MHC antigen-specific release of IL-2 from cloned T cell hybridomas by blocking class II MHC antigen-specific binding; and iv) L3T4 is very similar to the human Leu3/T4 antigen. The properties of mAb GK1.5 (complement fixation, reactivity with all mouse strains tested, profound blocking of all class II MHC antigen-specific functions by murine T cells, usefulness for FACS analyses, and usefulness for immuno-precipitation/SDS-PAGE analyses) make it suitable for investigating both the role of class II MHC antigen-reactive T cells in various immunological phenomena and the mechanistic basis, at the molecular level, of class II MHC antigen-reactivity by murine T cells.

Animals↗

Antigen-specific, major histocompatibility complex-restricted T cell receptors.

In this paper we have summarized our work on the structure of the receptor for Ag/MHC on 3 T cell hybridomas. In each case, these receptors have been identified by their reaction with antibodies, thought to be directed against Ag/MHC receptors because of their clone-specificity, and their ability to interfere with Ag/MHC recognition by the relevant hybridoma. The antibodies precipitate approximately 85 kd molecular weight heterodimeric glycoproteins from these cells. These reduce to 2 chains of 40-43 kd, one of acidic and the other of basic pI. These bulk characteristics apply to receptors from Class II-restricted, as well as Class I-specific T cells. There is evidence of molecular weight heterogeneity for both alpha and beta-chains in the mouse, both having 40 and 43 kd forms. Isoelectric focussing patterns suggest that both chains vary in amino acid sequence between clones. Peptide maps show that the receptor varies in amino acid sequence between clones, but that some peptides appear common, i.e., the receptor seems to have both variable and constant amino acid sequences. It is even possible that allotypic differences between the peptide maps of BALB/c and C57BL/6-derived receptors have been identified, though more data will be needed to confirm this. Finally we have recently shown that reaction with an anti-idiotype predicts both the Ag and MHC specificity of the T cell hybridoma bearing it, suggesting that a single receptor, responsible for binding both Ag and MHC, is identified by the anti-idiotypic antibody. The similarities between these T cell-bourne molecules, and immunoglobulin are inescapable. Both are disulphide-linked glycoproteins made up of 2 chains, both of which may vary in amino acid sequence. Secreted immunoglobulin is, of course, polyvalent, being composed of two or more of each type of chain, this contributes to the efficiency with which the molecule can bind polyvalent antigen or build precipitable lattices. Similar constraints do not apply to T cell-bound receptors, which do not seem to have a secreted form.

Animals↗

Use of I region-restricted, antigen-specific T cell hybridomas to produce idiotypically specific anti-receptor antibodies.

Murine T cell hybridomas bearing receptors for antigen plus I region gene products were used as immunogens in mice in an effort to raise anti-receptor antisera. The antisera were assayed for anti-receptor activity by the ability to inhibit interleukin 2 production by the T cell hybridomas stimulated by antigen and I region expressing antigen-presenting cells. The T cell hybridomas used in these experiments were made by fusing antigen-specific, I region-restricted BALB/c T cell blasts to the AKR thymoma, BW5147. Three groups of mice were immunized with the T cell hybridomas: (BALB/c X AKR)F1 animals, syngeneic to the hybridoma; (BALB.B X aKR)F1 animals, differing from the hybridomas at H2; and (C.B20 X AKR)F1 animals, differing from the hybridomas at Igh. Mice were immunized multiple times and sera from individual animals were assayed for anti-receptor antibodies. In all groups, some mice produced anti-receptor antibodies by the criterion that they were inhibitory in the assay mentioned above. The frequency of mice producing these inhibitory antibodies varied considerably between groups, with the (BALB.B X AKR)F1 animals producing these antibodies most frequently, and the (BALB/c X AKR)F1 animals producing them least often. All inhibitory antisera were idiotypically specific; they inhibited the response of the immunizing T cell hybridomas, but not the responses of closely related hybridomas with different specificities. Moreover, when they could be absorbed, the inhibitory antibodies could only be absorbed by the immunizing hybridoma. It is hoped that these antisera, and B cell hybridomas prepared from the immunized animals, will be useful in the elucidation of the structure of the receptors for antigen plus I region products on T cells.

Animals↗

Evidence implicating L3T4 in class II MHC antigen reactivity; monoclonal antibody GK1.5 (anti-L3T4a) blocks class II MHC antigen-specific proliferation, release of lymphokines, and binding by cloned murine helper T lymphocyte lines.

Monoclonal antibody GK1.5 recognizes a determinant, designated L3T4a, on the murine T cell surface molecule L3T4. The expression of L3T4a by functional murine T cell clones appears to correlate primarily with class II MHC antigen reactivity rather than with functional phenotype. In previous studies, antigen-specific cytolysis by a cloned class II MHC antigen(I-Ak)-reactive CTL line was found to be blocked entirely by monoclonal antibody (mAb) GK1.5, at a step before the lethal hit. In the present studies, we demonstrate that mAb GK1.5 profoundly blocks antigen-specific proliferation and release of lymphokines by cloned murine class II MHC antigen-reactive helper T lymphocyte (HTL) lines. Analysis of cloned T cell hybridomas, however, suggests that there exists clonal heterogeneity in the degree of inhibition of class II MHC antigen-specific function by mAb GK 1.5. Finally, we present evidence that mAb GK1.5 blocks class II MHC antigen-specific function by blocking class II MHC antigen-specific binding. The data presented here lend considerable support to the concept both that L3T4 and the human Leu-3/T4 molecules are similar and that L3T4 plays a role in class II MHC antigen-reactivity by murine T cells.

Animals↗

Characterization of the gamma-interferon-mediated induction of antigen-presenting ability in P388D1 cells.

We characterized an assay system to study the lymphokine-mediated induction of antigen-presenting ability in P388D1 cells. The ability of lymphokine-induced P388D1 macrophages to present antigen plus Id was measured by their ability to induce interleukin 2 production by antigen-specific, Id-restricted T cell hybridomas in the presence of the appropriate antigen. The production of IL 2 by the T cell hybridomas is known to be dependent on the expression of Ia antigens by the antigen-presenting cells. The results obtained suggest that a factor present in the supernatant of the T cell hybridoma FS7-20.6.18 is responsible for inducing the appearance of I-Ad and I-Ed on P388D1, measured by immunofluorescence, and the ability of the cell to present antigen in association with I-Ad or I-Ed. The factor mediating the induction of antigen-presenting ability is thought to be gamma-interferon, because the hybridoma FS7-20.6.18 is known to produce this lymphokine and the factor is sensitive to pH 2 incubation. gamma-Interferon produced by recombinant DNA technology was found to induce antigen-presenting ability in this assay; however, alpha- and beta-interferon were inactive. This observation suggests a unique immunoregulatory role for gamma-interferon. Using many T cell hybridomas in the assay, we were able to distinguish three groups: a) high avidity hybridomas that respond to antigen presented by uninduced P388D1 but show an enhanced response to antigen plus induced P388D1; b) medium avidity hybridomas that do not respond to antigen presented by uninduced P388D1; and c) low avidity hybridomas that show a limited response to antigen presented by induced P388D1, but the response of which increases if the P388D1 cells are induced for longer periods of time. These different patterns of response are believed to be dependent on the Ia antigen density expressed by the gamma-interferon-induced presenting cells, and suggest that the T cell receptors for Ag/Id display marked heterogeneity in their avidities for Ag/Id.

Animals↗

Antigen presentation by Ia+ B cell hybridomas to H-2-restricted T cell hybridomas.

The Ia+, H-2d BALB/c lymphoma cell line L10.A 2J was fused to T cell-depleted spleen cells from mouse strains bearing other H-2 haplotypes. A portion of the selected hybrids expressed Ia antigens of the normal spleen cell partner in the fusion as evidenced by their presentation of various antigens to a set of antigen-specific I-region-restricted T cell hybridomas. Three cloned hybrids were studied in detail. Antigen presentation was shown to be inhibited specifically by monoclonal anti-Ia antibodies. Both I-A and I-E molecules were expressed, including in the one case examined hybrid I-A and I-E molecules between the H-2d and H-2b haplotypes. These Ia+ B cell hybridomas provide a useful set of tools for studying the role of I-region-encoded molecules in antigen presentation to T cells.

Antibody Formation↗

Antigen-specific. I region-restricted interactions in vitro between tumor cell lines and T cell hybridomas.

A series of H-2d B cell tumor lines and one monocytic tumor cell line were shown to be capable of I region-restricted antigen presentation to I-A-d- and I-Ed- restricted, antigen-specific cloned T cell hybridomas. For the most part, antigen presentation correlated with the present of Ia antigens on the presenting cells, although in a few interesting cases Ia-expression lines failed to present antigen. These T cell hybridomas, together with the B cell and to monocyte tumor cell lines, offer a unique set of tools to study the phenomenon of I region-restricted antigen presentation.

Animals↗

B cell helper factors. II. Synergy among three helper factors in the response of T cell- and macrophage-depleted B cells.

The concanavalin A- (Con A) stimulated supernatant of normal spleen cells (normal Con A SN) was shown to contain a set of helper factors sufficient to allow T cell- and macrophage- (M phi) depleted murine splenic B cells to produce a plaque-forming cell response to the antigen sheep red blood cells (SRBC). The activity of normal Con A SN could be reconstituted by a mixture of three helper factor preparations. The first was the interleukin 2- (IL 2) containing Con A SN of the T cell hybridoma, FS6-14.13. The second was a normal Con A SN depleted of IL 2 by extended culture with T cell blasts from which the 30,000 to 50,000 m.w. factors were isolated (interleukin X, IL X). The third was a SN either from the M phi tumor cell line P388D1 or from normal M phi taken from Corynebacterium parvum-immune mice. The combination of all three helper factor preparations was required to equal the activity of normal Con A SN; however, the M phi SN had the least overall effect. The M phi SN and IL 2 had to be added at the initiation of the culture period for a maximal effect, but the IL X preparation was most effective when added 24 hr after the initiation of culture. These results indicate that at least three nonspecific helper factors contribute to the helper activity in normal Con A SN.

Animals↗

Concanavalin A-inducible, interleukin-2-producing T cell hybridoma.

The fusion of an AKR T cell tumor line to normal B6D2F1, T cells resulted in the production of a cloned T cell hybridoma (FS6-14.13) inducible with the mitogen concanavalin A (Con A). The supernate from Con A-stimulated hybridoma cells was active both in the stimulation of an anti-sheep red blood cell response by partially T cell-depleted B cells and in the stimulation of the growth of antigen-specific T cell blasts. The active principle in both assays had a molecular weight of approximately 30-40,000. These results indicated the presence of interleukin 2 (IL2) in the hybridoma supernate. The activity of the hybridoma supernate in B cell responses was dependent on the presence of adherent cells and a few contaminating T cells. On the other hand, Con A-stimulated supernates from normal spleen cells were active after either adherent cell removal or severe T cell depletion. These results suggested that IL2 was the only active helper factor in the hybridoma supernate, but that additional helper factors were present in supernates from Con A-stimulated normal spleen cells.

Animals↗

[Metabolism of antipsoriatic anthrone derivatives].

The metabolisation of the antipsoriatically active molecules 1,8,9-triacetoxy-anthracene und 1,8-diacetoxy-9-anthrone by serum is described. Under these conditions 1,8-dihydroxy-9-anthrone, 1-hydroxy-8-acetoxy-9-anthrone, 1,8,1',8'-tetrahydroxy-bisanthrone, 1,8-dihyroxy-anthraquinone, 1,8-diacetoxy-anthraquinone and 1-hydroxy-8-acetoxy-anthraquinone arise from both educts. Quantitative determinations of these metabolites indicate that hydrolytic reactions occur prior to oxidation. Contrary to 1,8-dihydroxy-9-anthrone, 1,8,9-triacetoxyanthracene and 1,8-diacetoxy-9-anthrone are effective against psoriatic lesions without accompanying inflammations of the skin. 1,8,9-Trimethoxy-anthracene, however, is ineffective, also indicating that at least 1,8,9-triacetoxy-anthracene is a prodrug.--In agreement with Krebs' hypothesis 10,10-dialkylated 1,8-dihydroxy-9-anthrones described in this paper are ineffective against psoriasis.

Anthracenes↗

Primary structure of human T-cell receptor alpha-chain.

The T-cell receptor has been studied intensely over the past 10 years in an effort to understand the molecular basis for major histocompatibility complex (MHC) restricted antigen recognition. The use of anti-receptor monoclonal antibodies to isolate and characterize the receptor from human and murine T-cell clones has shown that the protein consists of two disulphide-linked glycopeptides, alpha and beta, distinct from known immunoglobulin light and heavy chains. Like immunoglobulin light and heavy chains, however, both the alpha- and beta-chains are composed of variable and constant regions. Molecular cloning has revealed that the beta-chain is evolutionarily related to immunoglobulins, and is encoded in separate V (variable), D (diversity), J (joining) and C (constant) segments that are rearranged in T cells to produce a functional gene. We report here cDNA clones encoding the alpha-chain of the receptor of the human T-cell leukaemia line HPB-MLT. Using these cDNA probes, we find that expression of alpha-chain mRNA and rearrangement of an alpha-chain V-gene segment occur only in T cells. The protein sequence predicted by these cDNAs is homologous to T-cell receptor beta-chains and to immunoglobulin heavy and light chains, particularly in the V and J segments.

Amino Acid Sequence↗

Functional interaction between human T-cell protein CD4 and the major histocompatibility complex HLA-DR antigen.

Mature T cells segregate phenotypically into one of two classes: those that express the surface glycoprotein CD4, and those that express the glycoprotein CD8. The CD4 molecule is expressed primarily on helper T cells whereas CD8 is found on cytotoxic and suppressor cells. A more stringent association exists, however, between these T-cell subsets and the major histocompatibility complex (MHC) gene products recognized by their T-cell receptors (TCRs). CD8+ lymphocytes interact with targets expressing class I MHC gene products, whereas CD4+ cells interact with class II MHC-bearing targets. To explain this association, it has been proposed that these 'accessory' molecules bind to monomorphic regions of the MHC proteins on the target cell, CD4 to class II and CD8 to class I products. This binding could hold the T cell and its target together, thus improving the probability of the formation of the trimolecular antigen: MHC: TCR complex. Because the TCR on CD4+ cells binds antigen in association with class II MHC, it has been difficult to design experiments to detect the association of CD4 with a class II molecule. To address this issue, we devised a xenogeneic system in which human CD4 complementary DNA was transfected into the murine CD4-, CD8- T-cell hybridoma 3DT-52.5.8, the TCR of which recognizes the murine class I molecule H-2Dd. The murine H-2Dd-bearing target cell line, P815, was cotransfected with human class II HLA-DR alpha, beta and invariant chain cDNAs. Co-culture of the parental T-cell and P815 lines, or of one parental and one transfected line resulted in a low baseline response. In contrast, a substantial increase in response was observed when CD4+ 3DT-52.5.8 cells were co-cultured with HLA-DR+ P815 cells. This result strongly indicates that CD4:HLA-DR binding occurs in this system and that this interaction augments T-cell activation.

Animals↗

Peptide sequences of T-cell receptor delta and gamma chains are identical to predicted X and gamma proteins.

Although most mature peripheral T lymphocytes express a major histocompatibility complex restricted, CD3-associated, antigen receptor (TCR) which has been well characterized, some T cells carry a different CD3-associated heterodimer on their surface. One of the two disulphide-linked chains of this putative second receptor, which in mice has relative molecular mass (Mr) 35,000 (35K), has been identified as a product of the group of gamma genes. The other chain, termed delta (Mr 45K in mice), is not as well characterized. Although gamma/delta-bearing cells are a minor subset among peripheral T lymphocytes, they are the only CD3+ cells in the thymus early in ontogeny. Taking advantage of these kinetics, we have generated gamma/delta-bearing hybridomas, using a new TCR alpha chain-negative variant of the AKR thymoma BW5147 as tumour parent, fetal thymocytes as normal cell partners, and an anti-CD3 monoclonal antibody (mAb) as screening reagent. Gamma and delta chains from one of these hybrids have been purified and partially sequenced. The sequences obtained indicate that delta is indeed identical to the polypeptide encoded by the recently described gene X, as suggested by Chien et al.

Amino Acid Sequence↗