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M Kronenberg

Publications and source records attributed to M Kronenberg.

At least 109 records · Page 6Linked to original sources

Characterization of a CD4-positive T-cell line derived from an athymic (nu/nu) mouse.

We have isolated a Thy-1+, CD3+, CD4+ T-cell line from the spleen of a 12-week-old nu/nu (nude) BALB/c mouse. The cell line is clonal, and it expresses an alpha beta T-cell antigen receptor. Upon activation, these cells secrete IL-2 but not IL-4, putting them in the Th1 category. The cells can be triggered to proliferate and secrete lymphokines in the presence of irradiated syngeneic or allogeneic splenic feeder cells that express a variety of MHC haplotypes. This response is MHC class II-specific, because it can be blocked by either anti-Ia or anti-CD4 antibodies. From the response pattern of this T-cell line, we conclude that it recognizes a common determinant on class II MHC antigens. This nude mouse T-lymphocyte presumably has not undergone thymic selection. Therefore its unique specificity may reflect both the bias of T-cell antigen receptor genes for encoding receptors that recognize MHC molecules and the requirement for functional thymic epithelial cells for the efficient education of a self-MHC-restricted repertoire.

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Characterization of collagen-specific T cells derived from pathogenic and nonpathogenic rat T cell lines.

Rat/mouse T-T hybridomas have been developed from an arthritogenic and a nonarthritogenic T cell line. These hybridomas express alpha beta TCR and are CD4+, CD8-, and MRC OX-22-. They have type II collagen reactivity as assessed by an IL-2 release assay. Southern blot analysis of DNA extracted from these hybridomas demonstrates that each T cell line contains at least three different collagen-reactive clones. The data suggest that the spectrum of TCR beta gene rearrangements is limited, as one hybridoma from the nonpathogenic line shares an identically sized productive TCR beta gene rearrangement with two hybridomas from the pathogenic line. Both cell lines as well as one hybridoma from the pathogenic line are autoreactive to rat type II collagen. The anti-collagen responses of all the hybridomas are restricted to the rat class II MHC RT1.B gene loci. The hybridomas, like their parental cell lines, do not respond preferentially to either native or denatured type II collagen. These hybridomas recognize a specific type II collagen epitope and not repetitive collagen-like sequence motifs. They require antigen processing to respond to both native and denatured type II collagen.

Amino Acid Sequence↗

Expression of the thymus leukemia antigen in mouse intestinal epithelium.

The Qa and Tla regions of the mouse major histocompatibility complex contain a series of genes encoding proteins with structural similarity to the class I transplantation antigens of the same complex. In contrast to the genes encoding the transplantation antigens, the Qa and Tla genes show very little polymorphism. Function(s) of the proteins encoded by the Qa and Tla loci remain an enigma. Recently, the protein products of the Qa and Tla loci, often referred to as class Ib major histocompatibility complex molecules, have been proposed to present antigen to gamma delta T cells. In mice, gamma delta T cells have been found concentrated in several epithelial barriers and in the skin; yet, expression of serologically detectable Tla antigens is believed restricted to thymocytes, activated T lymphocytes, and some T-cell leukemias. Here we report that luminal epithelial cells of the mouse small intestine express the thymus leukemia antigen (TLA). We also find that, unlike T cells in Peyer's patches, a significant fraction of intestinal epithelial lymphocytes also express TLA. RNA prepared from intestinal cells contains transcripts of the T18d gene, which encodes TLA. These data extend the known expression profile of TLA molecules to mature lymphocytes and to nonhematopoietic cells. These data also demonstrate the specific expression of TLA on antigen-presenting cells in a site enriched for T cells that express gamma delta T-cell antigen receptor.

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Development of lymphoma in the thymus of AKR mice treated with the lymphomagenic virus SL 3-3.

A chronological study of the individual thymic lobes of young AKR mice after neonatal inoculation of the oncogenic AKR retrovirus SL 3-3 was performed. 100% of mice treated in this manner develop lymphoma between 60 and 100 days of age. A search for early lymphoma cells in individual thymi was carried out by inoculating the thymocytes subcutaneously in syngeneic and intrathymically in syngeneic and semisyngeneic recipients. Tumor progression was observed in animals between 48 and 60 days of age. These animals have: (a) normal weight lobes, in which no lymphoma cells could be detected, (b) thymus-dependent lymphoma cells, in one or both normal weight lobes; (c) thymus-independent lymphoma cells, found in lobes of normal weight as well as in thymi enlarged by lymphoma cells. Thymocyte characteristics of virus-treated animals of 21 to 63 days of age were compared with those of age-matched controls. Beginning at 28 days a concordant, progressive with time, increase of thymocyte surface staining for the viral envelope glycoprotein gp70 was seen in all lobes from virus-treated animals. Evaluation of cell surface markers by two-color fluorescence with antibodies to CD4 and CD8 showed that after 50 days of age, thymic lobes with and without lymphomas had nonspecific, but marked, alterations of the typical thymocyte surface marker pattern. No characteristic CD4, CD8 surface phenotype was found in primary lymphomas. Using probes for the T-cell receptor J beta 2 gene segments and the Akv ecotropic virus gp70 envelope genes, oligoclonality in J beta 2 rearrangements and clonality using the Akv env genes was demonstrated in thymi with the thymus-dependent phenotype. In lymphomas T-cell receptor beta gene probes showed either oligoclonality or clonality. Clonal virus integrations were found in these lymphomas. These experiments suggest the following series of events in virus-accelerated AKR lymphomagenesis. First, lymphoma cells arise which are initially thymus-dependent and can appear in one or simultaneously in both thymic lobes. These progress to become thymus-independent, fully autonomous, tumor cells. Thymocytes close to or at the time of the initial transformation event show a marked disorder of differentiation defined by the alterations in the CD4, CD8 surface phenotype distribution.

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Diversity of Ig V gene segments found in anti-DNA autoantibodies from a single (NZB x NZW)F1 mouse.

We have studied 18 anti-DNA secreting hybridomas derived from a single, nephritic NZB/NZW mouse. The antibodies were analyzed for the expression of idiotypic families that are enriched in the antibodies to DNA from diseased animals (IdGN2 and IdX), and for the expression of VH and V kappa gene segment subfamilies. Most of the mAb have characteristics similar to those that may be pathogenic because they 1) bound to native DNA, 2) were of the IgG2a or IgG2b isotype, and 3) expressed idiotopes associated with glomerulonephritis in NZB/NZW mice and human lupus. Among the 18 mAb, at least six VH subfamilies and six V kappa subfamilies were expressed. A majority of the antibodies utilized a VH gene segment from the large J558 subfamily. Slot blot analyses of total spleen cell RNA revealed that as NZB/NZW mice aged and developed nephritis, they expressed progressively higher quantities of Ig transcripts. The proportion of these transcripts derived from the VH J558 subfamily also increased. Our results indicate that a diversity of B cell clones participate in the anti-DNA response of a single NZB/NZW mouse. There was no preferential utilization of 3' Ig V gene segment subfamilies. Furthermore, there was no marked difference in the pattern of VH and V kappa gene segment expression in antibodies defined by their isotypes or idiotopes.

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Restriction fragment length polymorphisms of the mouse T-cell receptor gene families.

We have studied the restriction fragment length polymorphisms (RFLPs) found in the germline T-cell receptor genes of 25 inbred Mus musculus strains and 8 wild Mus species. Included in the inbred mice tested were several strains which spontaneously develop systemic autoimmune disease. Extensive polymorphism was evident for the variable (V) gene segments of the alpha gene family for both the inbred strains and wild mouse species. Changes in the total number of bands hybridizing with probes for V alpha gene segments suggest that members of a V alpha gene segment subfamily are not closely linked, but are interspersed with members of other subfamilies; that expansion and contraction of the multimembered subfamilies may be an important diversifying factor. Our data obtained with beta gene probes revealed genomic diversity that is much more limited than that seen for the alpha locus. Analysis of inbred mice with probes for the gamma gene locus revealed some RFLPs, but little evidence of expansion or contraction in the numbers of gene segments. Among the autoimmune mice, NZW, NZB, and BXSB/MpJ all display distinctive differences with alpha gene probes. NZW mice have a large deletion of the beta gene family, which has been reported previously. We found no differences to distinguish the MRL/MpJ lpr/lpr mice from non-autoimmune strains.

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Assignment of defensin gene(s) to human chromosome 8p23.

A relatively abundant component of the polymorphonuclear leukocyte granulocytes has been recently isolated and called defensin. Defensins have antimicrobial activity against gram-positive and gram-negative bacteria and enveloped viruses. A cDNA insert for defensin HNP-1 (DEF1) has been used to map the gene(s) to human chromosome 8p23 using a mouse/human somatic cell hybrid panel and in situ hybridization to normal human metaphase chromosomes. Because of the similarity of HNP-1 defensin to other defensins, it is likely that two of these genes map to this region.

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Mapping genomic organization by field inversion and two-dimensional gel electrophoresis: application to the murine T-cell receptor gamma gene family.

A new two-dimensional gel electrophoresis technique has been developed for the mapping of multigene families. Resolution in the first dimension is based on the generation of large size DNA fragments by infrequently-cutting restriction enzymes, and separation of these fragments by field inversion gel (FIG) electrophoresis. A second restriction enzyme digestion is then carried out with the separated DNA fragments in the agarose gel. Standard gel electrophoresis in the second dimension allows one to estimate the number of hybridizing genes contained in each large DNA fragment. We have also developed a novel method to increase the separation, resolution and hybridization signal in the second dimension by condensing the bands from the first dimension into spots. As an example, we have applied these techniques to determine the organization of the murine T-cell receptor gamma locus. The murine gamma gene family was found to be contained on two DNA fragments encompassing 195 kilobases of DNA. The two-dimensional gel electrophoresis method is particularly useful in the analysis of the organization of multigenic families where single copy probes are not readily available, and should extend the potential usefulness of field inversion gel electrophoresis in gene mapping.

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Molecular and serological diversity of anti-DNA autoantibodies from NZB and (NZB X NZW) F1 mice.

We have carried out an analysis of the serological and molecular diversity of a panel of monoclonal anti-DNA autoantibodies and serum autoantibodies from NZB and (NZB X NZW) F1 mice, in an attempt to obtain insights into the mechanisms responsible for the development of systemic autoimmune disease. Our data show that the autoantibodies are quite diverse. A dominant, binding-site idiotope on one of our monoclonal autoantibodies is expressed at variable levels in anti-DNA binding antibodies in the sera of both NZB and (NZB X NZW) F1 mice, but on none of the other monoclonal autoantibodies in our panel. We have cloned and sequenced the heavy chain variable region (VH) gene of one anti-DNA hybridoma and by hybridization have determined the VH and V kappa gene segments expressed by 14 others. All of the autoantibodies express members of known V gene subfamilies. A total of four different VH and at least six V kappa subfamilies are expressed by the hybridomas. Thus, a broad spectrum of the total murine Ig repertoire is represented in the anti-DNA autoantibodies present in these strains.

Amino Acid Sequence↗

Isolation and characterization of human defensin cDNA clones.

Four clones that encode defensins, a group of microbicidal and cytotoxic peptides made by neutrophils, were isolated from an HL-60 human promyelocytic leukemia cDNA library. Analysis of these clones indicated that the defensins are made as precursor proteins, which must be cleaved to yield the mature peptides. Defensin mRNA was detected in normal bone marrow cells, but not in normal peripheral blood leukocytes. Defensin transcripts were also found in the peripheral leukocytes of some leukemia patients and in some lung and intestine tissues. Defensin mRNA content was augmented by treatment of HL-60 cells with dimethyl sulfoxide. These results define important aspects of the mechanism of synthesis and the tissue-specific expression of a major group of neutrophil granule proteins.

Amino Acid Sequence↗

Rearrangement and expression of T cell antigen receptor and gamma genes during thymic development.

Rearrangement and expression of the T cell antigen receptor and the gamma genes during T cell ontogeny is a regulated process; the gamma genes are rearranged and expressed first, followed by the beta and then the alpha genes. Expression of both functional alpha and beta gene RNA first occurs at day 17 of gestation, along with the expression of T3 delta chain RNA. T cell antigen receptor gene rearrangements occur primarily or exclusively in the thymus, although some gamma gene rearrangements occur outside the thymus in fetal liver cells that may be committed T cell progenitors. There is no gross difference in the extent of beta and gamma gene rearrangements in the adult thymocyte subpopulations that were analyzed, despite the fact that some of these populations cannot respond to antigen and never emigrate from the thymus. Quantitative analysis of rearrangements in total adult thymocyte DNA shows that beta gene rearrangements generally occur on both chromosomal homologs, and that rearrangements occur preferentially to the J beta 2 gene segment cluster.

Aging↗

The molecular genetics of the T-cell antigen receptor and T-cell antigen recognition.

The genes encoding the alpha and beta chain of the T-cell receptor and the gamma gene have been cloned, and their structure, organization, ontogeny of expression, pattern of rearrangement, and diversification are now generally understood. In most cases, the immunoglobulin paradigm applied very well to the corresponding phenomena in T cells, although as described above, some interesting and potentially important differences exist. Nevertheless, there are still many unanswered questions regarding the ontogeny and mechanism of MHC-restricted antigen recognition, and it is not clear how far the immunoglobulin model can take us in understanding these phenomena. Although the alpha/beta heterodimer looks like an antibody and the binding sites of the two molecules may be similar, the rules governing B- and T-cell activation are clearly different, and the ligand(s) bound by the receptor are still poorly characterized. In the future, T-cell receptor genes, as well as those encoding the T-cell accessory molecules, will be altered in vitro and transferred into mammalian cells in culture and into whole organisms in an attempt to understand T-cell antigen recognition. These tools will allow us to manipulate the mammalian immune response in a variety of different ways that will have a profound impact both on our understanding of immunology and on medicine in the future.

Amino Acid Sequence↗

The T cell receptor beta chain genes are located on chromosome 6 in mice and chromosome 7 in humans.

Homologous clones that encode the beta chain of the T cell antigen receptor have been isolated recently from both murine and human cDNA libraries. These cDNA clones have been used in connection with interspecies hybrid cell lines to determine that the murine T cell receptor gene is located on chromosome 6 and the human gene on chromosome 7. In situ hybridization confirms these data and further localizes these genes to band B of chromosome 6 in the mouse and bands 7p13-21 in the human genome. The organization of the T cell antigen receptor J beta gene segments and C beta genes appears to be conserved, since very few intraspecies polymorphisms of restriction fragment length have been detected in either mouse or human DNA.

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Mouse T cell antigen receptor: structure and organization of constant and joining gene segments encoding the beta polypeptide.

The germ-line joining (J) gene segments and constant (C) genes encoding the beta chain of the mouse T cell antigen receptor have been isolated on a single cosmid clone. There are two constant genes, C beta 1 and C beta 2, each associated with a cluster of J beta gene segments. The nucleotide sequences of the C beta 2 gene and of the J beta 2 cluster gene segments have been determined. The coding sequence of the C beta 2 gene is very similar to the sequence of a cDNA clone encoded by the C beta 1 gene. The C beta 2 gene has four exons; exon-intron structure does not obviously correspond to the functional domains of the protein. The J beta 2 gene segment cluster contains six functional J gene segments. We have isolated specific probes for the C beta 1, C beta 2, J beta 1, and J beta 2 regions to examine DNA rearrangements in T lymphocytes. DNA rearrangements can occur in both J beta gene segment clusters, and both C beta genes appear functional.

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T and B cells that recognize the same antigen do not transcribe similar heavy chain variable region gene segments.

We have attempted to determine whether T cells and B cells that have the same antigenic specificity and whose receptors share idiotypic determinants in fact express similar VH gene segments. To do this, we have obtained and characterized a cDNA clone containing the entire coding sequence for the VH gene from a glutamic acid60/alanine30/tyrosine10 (GAT)-binding immunoglobulin that carries the CGAT idiotype. The GAT-VH clone was hybridized to Northern blots of GAT-specific T cell RNAs; there was no evidence of a T cell transcript that hybridized to the GAT-VH probe. The T cells analyzed included: (a) 10 GAT-binding suppressor T cell hybridomas, 6 of which secreted factors with CGAT idiotypic determinants, (b) one GAT-specific helper T cell hybridoma, and (c) two GAT-specific helper T cell lines grown in the absence of feeder cells. The detection limit of the Northern blot analysis was 1-2 copies of a particular mRNA species per cell for the hybridomas and 5-10 copies per cell for the T cell lines. Therefore, we conclude that T and B lymphocytes responding to GAT do not utilize similar VH gene segments. Furthermore, the presence of idiotypic determinants on T lymphocytes does not necessarily imply close structural similarity between T and B cell antigen receptors.

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Three T cell hybridomas do not contain detectable heavy chain variable gene transcripts.

We attempted to determine whether T cells express any VH gene segments. cDNA libraries were constructed from one suppressor and two helper T cell hybridomas. Both the library construction and screening were designed to maximize detection of a wide range of VH gene segments. One screening method should detect about half of the sequenced VH genes, while the second should detect most of these genes. The probability of detecting a VH gene homologous to the probes and present at 10 copies per cell was 77% for one helper cell cDNA library, 88% for the second helper cell library, and greater than 99% for the suppressor cell library. No cDNA clones with VH gene segments were detected. From this result, we conclude that VH gene segments are not likely to encode the antigen-specific receptor in the cells we tested.

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