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P Marrack

Publications and source records attributed to P Marrack.

At least 145 records · Page 8Linked to original sources

The T-cell repertoire is heavily influenced by tolerance to polymorphic self-antigens.

T cells with V beta 3+ alpha beta receptors are deleted by self-tolerance in mice with particular major histocompatibility complex/self-antigen combinations. This also occurs for other V beta elements. Polymorphism in the major histocompatibility complex and/or the self-antigens that cause massive deletion of T cells using particular V beta elements may be maintained by the need to balance the advantage of a diverse T-cell repertoire against the potential involvement of those elements in autoimmune disease.

Animals↗

Involvement of major histocompatibility complex products in tolerance induction in the thymus.

KJ23a+ T cell clones, which bear the determinant encoded by the V beta 17a T cell receptor gene segment, frequently recognize IE molecules of various murine H-2 haplotypes. In the presence of IE molecules, thymic maturation of KJ23a+ clones is infrequent. We investigated the basis of this phenomenon by blocking expression of IE molecules with monoclonal anti-IE antibodies in organ cultures of fetal thymus and in neonates from the C57BR/cdJ strain (H-2k, V beta 17a homozygous). Our data support the contention that this process results from deletion of clones with anti-IE reactivity, as functional blocking of the IE molecule results in maturation of IE-reactive clones and increased numbers of KJ23a+ mature cells. In addition, we noted that blocking of functional IE expression in this haplotype permitted development of both CD4+/KJ23a+ and CD8+/KJ23a+ T cells. The CD4+ clones isolated from anti-IE-treated animals were frequently reactive against IEk; we could demonstrate no alloreactivity against B cell or B lymphoma stimulators in the CD4- clones. We conclude that clonal deletion events during thymic development may be initiated by T cell precursor interactions with MHC molecules against which the mature clones display no measurable reactivity. Specifically, clones destined to be MHC Class I-reactive may be deleted during development by interactions with MHC Class II molecules.

Animals↗

Isotypic exclusion of gamma delta T cell receptors in transgenic mice bearing a rearranged beta-chain gene.

The rearrangement of T cell antigen receptor beta- and gamma-chain gene segments was studied in transgenic mice that bear a functional beta-chain gene. Virtually all CD3-positive T cells derived from transgenic mice express beta chains containing the transgene-encoded V beta 8.2 variable region on their surfaces and do not express endogenous beta-chain variable regions. Expression of endogenous V beta genes is inhibited at the level of somatic recombination during thymic ontogeny. Furthermore, rearrangements of the TCR gamma-chain genes are also markedly inhibited in these transgenic animals. Hence expression of the TCR beta transgene has led to allelic exclusion of alpha beta receptors and isotypic exclusion of gamma delta T cell receptors.

Alleles↗

Remethylation at sites 5' of the murine Lyt-2 gene in association with shutdown of Lyt-2 expression.

We have used hybridomas made by fusing the Lyt-2- AKR thymoma, BW5147, to Lyt-2+ SJL/J lymph node cells to study the regulation of Lyt-2 expression. Fusions of this type yielded hybridomas, the majority of which failed to express Lyt-2. In the minority of hybridomas that did express surface Lyt-2, expression was transient and greatly diminished in terms of molecules of Lyt-2 per cell. Lack of Lyt-2 expression was not due to loss of the gene encoding this cell surface molecule; rather, negative regulation of Lyt-2 appeared to be at the level of transcription (i.e., no Lyt-2 transcripts were detected in these hybridomas). We have shown that the Lyt-2 gene is undermethylated in normal Lyt-2+ T cells, whereas the gene is heavily methylated in Lyt-2- liver cells and in BW5147. Loss of Lyt-2 expression in (BW5147 x Lyt-2+ SJL/J lymph node cell) hybridomas was associated with remethylation of DNA within the Lyt-2 gene and at sites 5' of the Lyt-2 gene.

Animals↗

The effect of thymus environment on T cell development and tolerance.

During development in the thymus, T cells are deleted if their receptors are able to recognize self major histocompatibility complex (MHC) proteins. We show that such clonal deletion can occur because of interaction between receptors on T cells and MHC expressed on bone marrow-derived cells. In addition, development in the thymus picks out T cells to mature if their receptors will be restricted for antigen recognition in association with self MHC alleles expressed on thymus epithelial cells. This process is usually thought to involve positive selection of T cells bearing receptors with high and low affinity for MHC on thymus epithelium, and subsequent deletion of high affinity cells by interaction with bone marrow-derived cells. Our data do not fit such a model, but rather suggest that MHC molecules on thymus epithelium and bone marrow-derived cells may not be seen identically by T cell receptors.

Animals↗

Compartmentalization of MHC class II gene expression in transgenic mice.

A set of transgenic mouse lines carrying Ek alpha genes with promoter region deletions was created in an attempt to compartmentalize MHC class II gene expression. Fine immunohistological analyses established that one transgenic line is essentially devoid of E complex in the thymic cortex, another displays almost no E in the thymic medulla or on peripheral macrophages, and two lines display no E on greater than 98% of B cells. We have assayed these mice for immune function: E-dependent tolerance, antigen presentation, T cell priming, and antibody response. Certain of the findings are difficult to reconcile with currently popular hypotheses, e.g., tolerance induction to E molecules in the virtual absence of E complex in the thymic medulla and efficient antibody responses to E-restricted antigens when almost all B cells are E-.

Animals↗

Rearrangement of IgH genes in normal thymocyte development.

IgH chain gene segments are rearranged in 30 to 50% of peripheral T cells. We have analyzed IgH gene rearrangements during normal T cell development, using a well characterized collection of hybridomas derived from fetal, newborn, adult, or aged thymocytes. Our results show that IgH rearrangements occur in the thymus after T cell receptor gene and T cell specific gamma-gene rearrangements but before thymocyte maturation is completed. Therefore IgH gene rearrangements occur at an intermediate stage in thymocyte development. This may be of significance in delineating human lymphoid leukemias. Not all thymocyte hybridomas carried IgH gene rearrangements. Age-related shifts in frequencies of cells with IgH gene rearrangements, probably indicating changes in the composition of thymocyte populations, were found. Finally, a detailed analysis of D to J joins revealed an ordered progression of partial rearrangements at the IgH locus, whereby the most proximal DH-segment, DQ52, is used predominantly at early stages, but that other D to J rearrangements at the same locus may occur subsequently.

Animals↗

T cells can distinguish between allogeneic major histocompatibility complex products on different cell types.

In the response of T cells to foreign antigens, the ligand for the T cell alpha/beta receptor is presented on a cell surface as a fragment of antigen complexed to one of the membrane molecules encoded in the major histocompatibility complex (MHC). The receptor apparently interacts via its variable elements (V beta, D beta, J beta, V alpha and J alpha) with residues within both the antigen and MHC portion of the ligand. The frequency of T cells responding to a conventional antigen plus self MHC is usually quite low, presumably reflecting the relative rarity of receptors with the particular combination of variable elements to match the antigen/MHC ligand. T cells also respond to allogeneic forms of MHC molecules in the absence of added antigen. In this case the frequency of responding T cells is very high. One hypothesis to explain this observation is that, in the absence of foreign antigen, MHC molecules are complexed to a large array of peptides derived from self-proteins. In this case the combination of the polymorphic MHC amino acid residues and many different self peptides presents so many possible ligands that the likelihood of recognition by a given T cell receptor is quite high. The recent crystallography experiments which revealed a dramatic binding cleft on the face of a human MHC molecule have given impetus to this view, but as yet there is no direct supporting evidence. We have recently described a close association between murine T cell receptors utilizing the V beta 17a element and reactivity to various allogeneic forms of the murine MHC molecule, I-E (ref. 8). In this paper, we show that this I-E ligand is detected on B cells, but not on I-E+ macrophages or fibroblasts expressing a transfected I-E gene. These results strongly suggest a B cell specific product combines with I-E to form the allogeneic ligand for V beta 17a+ receptors and thus support the concept of alloreactivity described above.

Animals↗

The development of helper T cell precursors in mouse thymus.

We have examined the appearance in mouse ontogeny of thymocyte precursors for Ag-specific, MHC-restricted Th. These cells are first detectable at day 18 of fetal life, about 1 day after alpha/beta, TCR-positive cells begin to appear. These early Th precursors are not dependent on the thymus for priming with Ag and MHC, and are L3T4+, Lyt-2-. Thus, these cells already have the phenotype of mature Th. In neonatal F1 animals expressing both IAk and IAb, the appearance of Th precursors restricted by either IAk or IAb is specifically inhibited by treatment of the mice with anti-IAk or anti-IAb antibodies, respectively. These results indicate that cells of mature T cell phenotype and function can arise fairly rapidly from immature, receptor-bearing precursors, once these appear. Moreover the results are in line with those previously obtained in chimeric animal experiments which suggested that specific interaction of TCR on thymocytes with class II alleles in the thymus is required for the subsequent appearance of T cells restricted by those class II alleles.

Animals↗

The T-cell accessory molecule CD4 recognizes a monomorphic determinant on isolated Ia.

The membrane protein CD4 is commonly found on mature T cells specific for antigen in association with class II major histocompatibility complex (MHC; Ia) proteins. This correlation has led to the suggestion that CD4 binds to a monomorphic region of the Ia molecule on the antigen-presenting cell (APC) and functions either by enhancing interaction between the T cell and the APC, or conversely, by transducing negative signals to the T cell. To address this hypothesis, we have made use of sublines from an unusual T hybrid that is class I MHC restricted but also CD4+. By incorporating purified MHC proteins into a planar membrane system, we show that different Ia molecules can greatly enhance the ability of a CD4+ but not a CD4- variant of this class I-restricted T hybrid to respond to isolated class I molecules. T-cell responses can be strongly augmented by the concurrent expression of CD4 on the T cell and any of four different Ia proteins on planar membranes, thus supporting the idea that CD4 binds to a monomorphic region of the Ia molecule and increases the avidity with which the T cell can interact with its target.

Animals↗

The T cell receptor.

The primary structure of T cell receptor proteins and genes is well understood. Immunologists are now trying to understand the properties of these interesting molecules. Evidence suggests that T cell alpha beta receptors recognize a complex of an antigen-derived peptide bound to one of the cell-surface products of the major histocompatibility complex (MHC) genes. It is likely that alpha beta receptors and MHC proteins have coevolved to have some affinity for each other. During T cell development in the thymus, cells bearing self-reactive receptors are deleted by the mechanisms of tolerance, and cells are preferentially allowed to mature if they bear receptors that will be able to recognize antigen plus self-MHC after they have become full-fledged T cells. Some explanations for these phenomena have been tested, but no satisfactory theory can yet be proposed to account for them.

Animals↗

Thymocytes with the predicted properties of pre-T cells.

T cell receptor synthesis in thymocytes was examined by the differential immunoprecipitation of receptors from the surfaces and interiors of metabolically labeled newborn and adult thymocytes. Precipitated molecules were then analyzed for size, charge, and state of glycosylation. Our experiments identified cells within the thymic cortex that contained a large pool of cytoplasmic-free receptor beta chain. The beta chain in this pool was synthesized and degraded rapidly and bore only high-mannose N-linked oligosaccharides. This pool was found predominantly in cells that lacked surface alpha/beta receptors and appeared in ontogeny before cells expressing surface alpha/beta. These results are consistent with a model in which the progenitor of cells with surface alpha/beta expression is the T cell equivalent of the pre-B cell, which has rearranged and expressed beta chain, but not alpha chain.

Animals↗

A T cell receptor V beta segment that imparts reactivity to a class II major histocompatibility complex product.

We have identified in mice an allele of a new T cell receptor V beta gene, V beta 17a, whose product is bound by the monoclonal antibody KJ23a. Over 90% of T cell hybridomas prepared from V beta 17a+ T cells of SWR mice respond to allogeneic forms of the IE class II MHC protein, indicating that V beta 17a has an appreciable affinity for IE regardless of the other components of the T cell receptor. These results suggest a bias in the germ-line T cell receptor repertoire toward recognition of MHC proteins and indicate that the V beta portion of the receptor may form the most important contact points with MHC ligands.

Animals↗

T cell tolerance by clonal elimination in the thymus.

The monoclonal antibody KJ23a reacts with T cell receptors utilizing the V beta segment V beta 17a. T cells bearing V beta 17a+ receptors react with very high frequency with the MHC class II protein, IE. In this paper we show that T cells expressing V beta 17a are selectively eliminated from the peripheral T cell and mature thymocyte pool of mice expressing IE, but are present in expected numbers in the immature thymocyte population of such animals. These results show that in normal animals tolerance to self-MHC is due to clonal elimination rather than suppression. In addition, they indicate that tolerance induction may occur in the thymus at the time immature thymocytes are selected to move into the mature thymocyte pool.

Animals↗

Expression and role of the T cell receptor in early thymocyte differentiation in vitro.

Fetal thymus organ culture was used to study the expression and function of antigen-specific, major histocompatibility complex-restricted receptors on thymocytes. Receptor gene rearrangement and expression occurred de novo in organ culture indicating that these events are induced in the thymus itself, presumably in response to thymus-derived stimuli. During organ culture a population of immature thymocytes expressing low levels of receptors developed first, and then diminished as mature thymocytes with high levels of receptor expression appeared. Continuous culture with antireceptor antibody modulated receptor from the surfaces of immature thymocytes, but did not prevent their appearance or accumulation. By contrast, appearance of receptor-bearing mature thymocytes was prevented in the presence of antireceptor antibody. These results indicate that the receptor is not essential for the generation of immature thymocytes but is involved in the selection or maintenance of mature cells from this pool.

Animals↗