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C A Janeway

Publications and source records attributed to C A Janeway.

At least 199 records · Page 11Linked to original sources

Tissue-specific and cell surface expression of human major histocompatibility complex class I heavy (HLA-B7) and light (beta 2-microglobulin) chain genes in transgenic mice.

We introduced the human genes HLA-B7 and B2M encoding the heavy (HLA-B7) and light [beta 2-microglobulin (beta 2m)] chains of a human major histocompatibility complex class I antigen into separate lines of transgenic mice. The tissue-specific pattern of HLA-B7 RNA expression was similar to that of endogenous class I H-2 genes, although the HLA-B7 gene was about 10-fold underexpressed in liver. Identical patterns of RNA expression were detected whether the HLA-B7 gene contained 12 or 0.66 kilobase(s) (kb) of 5' flanking sequence. The level of expression was copy number dependent and as efficient as that of H-2 genes; gamma interferon enhanced HLA-B7 RNA expression in parallel to that of H-2. In addition to the mechanism(s) responsible for gamma interferon-enhanced expression, there must be at least one other tissue-specific mechanism controlling the constitutive levels of class I RNA. Tissue-specific human beta 2m RNA expression was similar to that of mouse beta 2m, including high-level expression in liver. Cell surface HLA-B7 increased 10- to 17-fold on T cells and on a subset of thymocytes from HLA-B7/B2M doubly transgenic mice compared to HLA-B7 singly transgenic mice. The pattern of expression of HLA-B7 on thymocytes resembled that of H-2K as opposed to H-2D. These results confirm that coexpression of both human chains is required for efficient surface expression and that HLA-B7 may share a regulatory mechanism with H-2K, which distinguishes it from H-2D.

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Immune recognition and effector function in subsets of CD4 T cells.

T cells expressing the cell surface differentiation antigen CD4 are involved in most immune responses. Our studies address two issues about CD4 T cell responses to antigen: first, how does the T cell receptor come together with its ligand to generate an immune response, and what is the role of the CD4 molecule in this response? Second, are all CD4 T cells identical in their functional activity, and how does the activating signal determine the functional outcome of a response? Our studies outlined below suggest that the T cell receptor and its peptide: class II major histocompatibility complex (MHC) molecule ligand come together in a defined orientation determined in part by the binding of CD4 to both the T cell receptor and its ligand. Our studies suggest that the V beta chain is involved directly in MHC antigen recognition, binding self MHC with low affinity and non-self MHC with high affinity. The selective effect of the Mls locus on V beta expression is believed to reflect the binding of the Mls protein directly to the V beta region. CD4 is described as a co-receptor, forming an inducible part of the T cell receptor and binding to the same class II MHC molecule as that receptor. Studies with both cloned lines and normal CD4 T cell populations suggest the existence of two separable subsets with definable function. One set appears to be specialized for the activation of the humoral immune response, while the other drives the cell-mediated immune responses, particularly those involving the activation of macrophages. These two subsets of CD4 T cells have differential activation requirements, seen particularly in the requirement for interleukin 1 (IL-1) in the activation and clonal expansion of CD4 T cells involved in humoral immunity. This requirement for IL-1 may also be observed in the priming of this subset of CD4 T cells. These studies demonstrate that the optimal activation of CD4+ T cells involves recognition of peptide fragments presented by class II MHC molecules and accessory signals derived from the antigen presenting cells.

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Defective antigen presentation in chronically protein-deprived mice.

Immunodeficiency syndromes associated with protein-energy malnutrition (PEM) have been documented extensively, although to date the mechanism underlying these defects remains uncharacterized. In this study, we have evaluated T, B, and antigen-presenting cell functions of malnourished mice fed a 4% protein diet compared with litter-mate controls fed a 20% protein diet. Spleen cells from malnourished mice presented both soluble foreign protein and allogeneic MHC antigens less efficiently than control mice. However, T cells from malnourished animals demonstrated effective or enhanced specific T-cell activation when stimulated with allogeneic cells, while B cells from protein-deprived animals responded normally in proliferative responses to T-cell driven cognate and non-cognate, as well as mitogen, stimulation. To assess further antigen-presenting cell function, three requirements for successful antigen presentation were evaluated. First, the proliferation of the IL-1-dependent cloned T-cell line D10 demonstrated a slight deficiency in IL-1 production by malnourished splenic antigen-presenting cells, and the addition of saturating amounts of IL-1 to the assay could partially reconstitute function. Second, quantitative cell-sorter analysis revealed minimal deficiencies of spleen-cell Ia expression. Third, antigen-processing function was assayed in vitro by using processed antigen fragments; no improvement in protein-deprived antigen-presenting function resulted. Together, these findings suggest that either decreased Ia glycoprotein expression on a critical subset of antigen-presenting cells (APCs) or a quantitative deficiency in such a subset of cells, or both, underlie the defective antigen-presenting cell function observed in chronic protein deprivation (CPD).

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The influence of valence on the functional activities of monoclonal anti-L3T4 antibodies. Discrimination of signaling from other effects.

Anti-L3T4 antibodies have different functional effects on different ligands that activate a cloned, L3T4+ helper T cell line. It is reported here that some of these effects involve positive or negative signaling induced by cross-linking L3T4 molecules, because such effects are not observed using the Fab fragment of anti-L3T4. However, the Fab fragment does inhibit responses to antigen:self class II major histocompatibility complex (MHC) and to anti-T cell receptor monoclonal antibodies directed at a particular V region epitope. The finding that the Fab fragment of anti-L3T4, which does not block binding of anti-T cell receptor V region antibodies and does not negative signal can still block activation by such antibodies suggests an intimate association of L3T4 with the T3: alpha: beta T cell receptor complex. This association may normally be induced by interaction of both structures with antigen:self class II MHC complexes. The data also support the hypothesis that cross-linking the L3T4 molecule in the absence of engagement of the T3: alpha: beta complex generates negative or inhibitory signals. Thus, L3T4 plays a central role in the process of class II MHC-restricted T cell antigen recognition and activation.

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Inverse Ir gene control of the antibody and T cell proliferative responses to human basement membrane collagen.

The immune response to pepsin-soluble human basement membrane-derived type IV collagen in mice has been characterized. Both T cell proliferative and antibody responses have been shown to be under major histocompatibility complex (MHC)-linked Ir gene control in inbred and MHC congenic mice. However, unlike previous examples studied, this response shows a separation of these two types of immunologic responsiveness. Only mice having I-As give potent in vitro T cell proliferative responses to type IV collagen whereas all mice except those having I-As give high antibody responses to this antigen. In (I-As X I-Anon-s) F1 mice, the T cell proliferative response was dominant, whereas antibody responses were markedly reduced compared with the responder parent. Given the recent demonstration that class II MHC-restricted, L3T4+ T cells can be divided into two sets, one of which helps for antibody responses and the other of which produces interleukin 2 and can also suppress such responses, it seems likely that these data can be accounted for on the basis of differential activation by this antigen of these two cell sets in mice of different MHC genotypes.

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Ability of fixed B-lymphoma cells to present foreign protein antigen fragments and allogenic MHC molecules to a cloned helper-T-cell line.

Cloned, L3T4+ T cells have been shown to respond to foreign protein antigens in the context of self-Ia glycoproteins and to non-self Ia glycoproteins. In the case of responses to foreign proteins, fixed antigen-presenting cells can present antigen fragments, but cannot present native proteins. Whether fixed allogenic cells can stimulate has been controversial. We have examined this question using a dual-reactive cloned helper-T-cell line. We find that conditions of fixation that block the presentation of native antigen to this cloned line, but which allow the presentation of antigen fragments, also allow presentation of allogeneic Ia molecules, leading to stimulation of the cloned line. This study also revealed an occult alloreactivity in the cloned T-cell line, which was expressed by fixed, but not by normal, antigen-presenting B lymphoma cells. All of these stimuli proceeded via the same clonotypic receptor, as determined by blocking with anti-T-cell receptor monoclonal antibody. These data suggest that responses to non-self Ia glycoproteins involve direct recognition of the allogeneic Ia molecules and do not require processing and presentation of these antigens by self Ia molecules.

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Differential effects of antibodies to Lyt-2 and L3T4 on cytolysis by cloned, Ia-restricted T cells expressing both proteins.

Cloned T cell lines specific for the antigen ovalbumin (OVA) in the context of self I-A or I-E class II MHC-encoded molecules were found to express equivalent levels of the Lyt-2 and L3T4 surface molecules by FACS analysis. Functionally, these cloned T cell lines will kill OVA-pulsed, class II MHC-bearing B lymphoma cells. This system allowed us to examine the relative contribution of the Lyt-2 and L3T4 molecules to recognition of antigen in the context of self class II MHC molecules. We find that anti-L3T4 is 25- to 100-fold more potent at inhibiting cytotoxicity by these cloned lines than is anti-Lyt-2, where potency is calculated as the ratio of the concentration needed for inhibition divided by the concentration needed for binding. Both antibodies can completely inhibit cytotoxicity. These results suggest that the accessory molecules Lyt-2 and L3T4 can play two different roles in antigen:MHC recognition. In class II MHC recognition, L3T4 plays a dominant role, highly sensitive to inhibition by anti-L3T4. By contrast, Lyt-2 plays a minor yet important role in the cell interaction, perhaps by adhesion strengthening. Previous analysis in several laboratories supports the concept that the ligand for L3T4 is class II MHC, whereas the ligand for Lyt-2 is class I MHC. The present results are consistent with the hypothesis that these molecules are actually part of the T cell antigen:MHC recognition complex, and play an important role in the class of MHC molecule recognized by a T cell alpha:beta heterodimeric receptor. As such, they are not accessory proteins, but a direct part of the recognition apparatus, and the term accessory protein may apply only in those cases in which the specificity of the T cell receptor is for a different class of MHC than that normally associated with the L3T4 or Lyt-2 molecule.

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The B cell is the initiating antigen-presenting cell in peripheral lymph nodes.

We have examined the role of B cells in antigen presentation in lymph nodes in several ways. We found that mice depleted of B lymphocytes via chronic injection of anti-mu-chain antibody do not mount peripheral lymph node T cell proliferative responses to normally immunogenic doses of antigen. Depletion of B cells by passage of immune lymph node cells over anti-immunoglobulin columns early after immunization depletes antigen-presenting function from draining lymph nodes, and this function can be restored by using B cells or splenic adherent cells to allow the remaining T cells to proliferate. Lymph node B cells present antigen very effectively to lines of antigen-specific T cells. However, unfractionated lymph node cells from anti-mu-treated mice present very poorly, if at all, whereas unfractionated spleen cells from the same mice do present antigen. This is in keeping with our previous finding that helper T cell function in the spleen is normal in B cell-deprived mice. Finally, when mice homozygous for the lymphoproliferative gene lpr are treated chronically with anti-mu-chain antibody, lymphadenopathy is greatly retarded, suggesting a role for B cells in the massive proliferation of T cells in this syndrome. From this analysis, it would appear that the initiating antigen-presenting cell in the lymph node is a B lymphocyte, and that B lymphocytes in lymph nodes may be distinct from those in the spleen. It is of interest that these results also suggest that the lymph node lacks an antigen-presenting cell that is found in the spleen, perhaps the dendritic cell.

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Coclustering of CD4 (L3T4) molecule with the T-cell receptor is induced by specific direct interaction of helper T cells and antigen-presenting cells.

Blocking studies with monoclonal antibodies have suggested that helper T cell recognition and triggering involve the CD4 (L3T4) accessory molecule as well as the T-cell receptor (TCR) that is linked to the T3 complex. We have investigated the surface distribution of L3T4 and TCR during the direct interaction of a cloned murine helper T-cell line with an antigen-presenting B-cell line. Using immunofluorescence microscopy, we show that in 1:1 cell couples formed between the two cells, in which a specific interaction can be demonstrated, the L3T4 and the TCR become redistributed on the T-cell surface so that they are concentrated in the cell-cell contact region. This coclustering of L3T4 with TCR occurs only when the relevant antigen and appropriate major histocompatibility class II molecules are presented to the T cell, and it therefore requires the specific interaction of the TCR with its complex ligand on the antigen-presenting cell.

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The role of the murine L3T4 molecule in T cell activation: differential effects of anti-L3T4 on activation by monoclonal anti-receptor antibodies.

MHC restricted T cells can be divided into two subsets based on the mutually exclusive expression of the cell surface differentiation antigens L3T4 and Lyt-2 in the mouse. Expression of the L3T4 marker is correlated most strictly with recognition of foreign antigen in association with self class II MHC molecules, or Ia molecules. Less stringently correlated with L3T4 expression is the recognition of unmodified self or non-self Ia molecules. Finally, expression of L3T4 is also correlated with certain functional properties, although this correlation is even less stringent. The major correlation for function is between L3T4 and the ability to activate B cells. These correlations have led to the hypothesis that L3T4 recognizes Ia molecules, and plays a role in increasing the affinity of T cell:Ia bearing cell interactions. This hypothesis is bolstered by the finding that anti-L3T4 antibody blocks such interactions. Recently, we and others proposed a second effect of cross-linking L3T4 molecules, namely negative signalling. We further proposed that the natural ligand for L3T4 is Ia molecules, and that Ia-driven cross-linking of L3T4 molecules on the T cell in the absence of receptor aggregation would lead to off signalling to the T cell and separation of cell conjugates. To better understand the role of the L3T4 molecule in T cell activation, we have examined the effect of several anti-L3T4 antibodies on stimulation of a cloned line of helper T cells by a panel of monoclonal antibodies directed at what appear to be different epitopes on the T cell receptor. Unlike previous analyses of stimulation of helper T cells with anti-T cell receptor antibodies, we observe differential effects of anti-L3T4 on T cell activation by anti-receptor antibodies, the effect of anti-L3T4 depending on the characteristics of the anti-receptor antibody. This result suggests that L3T4 is intimately associated with the T cell receptor, and may thus play a critical role in T cell specificity as part of the antigen:Ia recognition complex. This proposed role is in keeping with the very strong correlation between L3T4 expression and recognition of self class II MHC molecules. While these studies do not provide definitive evidence for a physical association between L3T4 and the T cell receptor, they do place certain constraints on current models and suggest new possibilities for understanding T cell recognition and development.(ABSTRACT TRUNCATED AT 400 WORDS)

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Direct receptor:receptor interactions between T and B lymphocytes: idiotypic restriction in the antibody response to a cloned helper T cell receptor.

The concept of an immunological network includes the possibility of interactions between receptors on T and B lymphocytes, and such interactions, should they occur, might be expected to influence the repertoire of receptors in each set of cells. Indeed, B cell idiotype specific helper T cells, both MHC-restricted and MHC-unrestricted, have been reported and have been shown to influence the expression of the B cell repertoire. Likewise, it has been reported that B cells may influence the specificity of both regulatory and MHC-restricted T cells. However, interactions between receptors on cloned, MHC-restricted helper T cells and B cells have been difficult to document. Recently, we have taken advantage of an unusual cloned helper T cell line to demonstrate that anti-T cell receptor antibody is produced by direct receptor:receptor interactions between T and B lymphocytes, and that these interactions are not MHC restricted. However, these earlier studies did not address the question of whether such interactions led to activation of B cells expressing multiple distinct antibodies, or whether direct T cell receptor:B cell receptor interactions would lead to an idiotypically restricted B cell response. To address this question, we have now examined both monoclonal and polyclonal responses to the receptor of a conventional, MHC-restricted cloned T cell line, and have shown that these responses are of limited idiotype heterogeneity. Indeed, about 60% of antibodies produced to the receptor of this cloned line share idiotypic determinants, and appear to recognize a single epitope on the receptor. Idiotypically unrelated anti-receptor antibodies, although still specific for the cloned line, recognize what appears to be a distinct epitope on the receptor. These data suggest several conclusions. First, they demonstrate further that direct receptor:receptor interactions between helper T cells and B cells can occur, and can be mutually stimulatory for the two cell types. Second, as shown previously, such interactions are not MHC restricted. Third, such interactions can lead to an idiotypically restricted B cell response. Finally, it is interesting to compared these results with those of other investigators studying idiotype-specific helper T cells. As the cloned line used in this study is a conventional, MHC-restricted, antigen specific helper T cell bearing an alpha:beta heterodimeric receptor complex, and as its interaction with B cells is MHC unrestricted and leads to idiotypically restricted antibody responses, one might propose that such cells are candidates for a clone of an idiotype-specific helper.(ABSTRACT TRUNCATED AT 400 WORDS)

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Influence of immunoglobulin-dependent T cells on antibody class switching.

Normal and B cell-deficient, carrier-primed mice were irradiated and were adoptively transferred with B cells to evaluate the role of putative Ig- and B cell-dependent T cells in anti-hapten antibody responses. The response was analyzed by using the splenic focus assay, which allowed us to examine the frequency of responding B cells and the production of multiple isotypes by single precursor B cells. This analysis revealed that both primary and secondary B cells were activated at higher frequency in the spleens of normal recipients, and production of isotypes other than IgM and IgG1 was enhanced in normal recipients as compared with anti-mu-treated recipients. Both changes could be restored to control levels by co-transfer of T cells from normal donors primed with an unrelated carrier, provided the free carrier was added to the assay culture. These results are consistent with a role for Ig or B cell-dependent helper T cells in the optimal activation and the resulting isotype expression of both primary and secondary B cells.

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Molecular characterization of antibodies bearing Id-460. I. The structure of two highly homologous VH genes used to produce idiotype positive immunoglobulins.

The heavy chain immunoglobulin genes encoding a variety of antibodies specific for DNP or Pasteurella pneumotropica and bearing the dominant idiotype of MOPC 460, Id-460, were cloned and sequenced. The VH genes encoding the M460 and D35 (DNP binding) antibodies were found to be homologous but not identical to the VH gene encoding the LB8 (P. pneumotropica binding) monoclonal antibody. Two of at least eight genes in the VH460 cross-hybridizing gene family can encode Id-460 positive antibodies. The VH460 gene family overlaps with the gene family described by VH36-60 and more completely describes this germ-line VH gene family. We have previously demonstrated a genetic requirement for VK1 expression in order to observe the expression of Id-460 in anti-DNP antibody responses. Southern blot analysis of these monoclonal antibody-producing cells demonstrates, as with the cross-hybridizing VH, that two cross-hybridizing VK1 genes (VK1A and VK1C) can be used to encode Id-460-positive immunoglobulins. We demonstrate that immunoglobulin idiotype determinant expression can be the result of the expression of nonidentical but highly homologous genes in the VH460 cross-hybridizing VH gene family and also in the VK1 cross-hybridizing VL family.

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Direct interactions between B and T lymphocytes bearing complementary receptors.

A murine cloned Th cell line specific for the antigen conalbumin in the context of self I-A molecules can be activated by low concentrations of soluble antireceptor mAb. By using an antireceptor mAb to shared antigenic determinants on T cell receptors, we have shown that the ability to be activated by soluble antireceptor mAb is an unusual, although not unique, feature of this cloned T cell line. This activation does not involve occult APC, FcR, or interaction between individual cloned T cells, as limiting-dilution analysis shows that individual cells of this clone will grow in the presence of the antireceptor antibody and IL-1 as stimulus. This cloned T cell line is highly immunogenic in vivo, giving rise to antireceptor antibodies that stimulate its growth in both mice and rats. This response is not dependent upon exogenous T cells. Rather, the clone directly interacts with complementary B cells, as shown by the production of mAb in nude mice, and by production of stimulating antireceptor antibodies by purified B cells cultured with cloned Th cells in vitro. Several features of this cloned Th cell line, most especially its ability to be activated, rather than inhibited, by antireceptor antibodies, may account for its striking ability to directly activate B cells bearing complementary receptors. The direct interaction of the cloned Th cell with B cells bearing complementary receptors may serve as a model for receptor-receptor interactions in the generation of both T and B cell repertoires.

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