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D S Singer

Publications and source records attributed to D S Singer.

At least 73 records · Page 4Linked to original sources

Ethanol: an enhancer of transplantation antigen expression.

Major histocompatibility antigens (MHC) play a pivotal role in the immune response. Abnormal expression of MHC antigens has been correlated with aberrant regulation of the immune response. Studies on the effect of ethanol on class I MHC antigens demonstrate that ethanol significantly enhances their cell surface expression in a variety of cell lines in vitro. These changes in cell surface levels reflect increased intracellular protein synthesis and increased steady state mRNA levels. The effective ethanol concentrations (0.1-1.0%) are physiologically attainable. Measurement of class I MHC antigens on peripheral blood lymphocytes in a population of acutely ethanol-intoxicated patients showed a highly significant increase relative to controls. The possibility that the elevated levels of MHC antigens induced by ethanol may play a role in the evolution of ethanol-related disease is discussed.

Adult↗

Characterization of a new subfamily of class I genes in the H-2 complex of the mouse.

A previously undescribed subfamily of mouse class I MHC genes, consisting of two to three members, has been identified. The structure and organization of one of these, Mb1, has been determined. Mb1 consists of five exons with open reading frames and potentially encodes a class I-like transmembrane protein. In the genome, Mb1 is linked to the H-2 complex, mapping telomeric to Qa. However, this gene has low (ca. 60%) nucleotide identity with other class I sequences and is no more related to mouse class I genes than to class I genes from other species. Mb1 transcripts have not been found in a variety of adult tissues or cell lines, suggesting that, if Mb1 is expressed, its expression is highly regulated. From DNA sequence identity and intron-exon organization, Mb1 appears to be a primordial gene which antedates mouse speciation and which has evolved independently of the rest of the class I gene family. Examination of various species of wild mice demonstrates the presence of a discrete Mb1 subfamily over long evolutionary periods of time.

Amino Acid Sequence↗

Evidence of increased class I MHC expression on human peripheral blood lymphocytes during acute ethanol intoxication.

Certain ethanol-related diseases in humans have been linked to disorders of immunity. Although humoral and cellular immunity have been studied, the precise mechanisms whereby ethanol use leads to tissue damage remain unknown. In order to explore the hypothesis that ethanol may lead to alteration in expression of tissue Class I major histocompatibility antigen causing an autoimmune phenomenon, a population of acutely ethanol-intoxicated patients was studied. Measurement of Class I major histocompatibility antigen on peripheral blood lymphocytes in this population showed a highly significant (p less than 0.01) increase over controls. The role that this increased antigenicity may play in the evolution of clinical disease is discussed.

Adult↗

Identification of negative and positive regulatory elements associated with a class I major histocompatibility complex gene.

Regulatory DNA sequence elements were functionally identified in the 5'-flanking region of a gene, PD1, which encodes a porcine classical transplantation antigen. Both a positive regulatory element and a novel negative regulatory DNA element were mapped within 1.1 kilobases upstream of exon 1. The negative regulatory element reduced the activity of both the homologous PD1 promoter and a heterologous simian virus 40 promoter. In vivo competition experiments indicated that the functions of the PD1 positive and negative regulatory elements are mediated by distinct cellular trans-acting factors. The PD1 positive regulatory element interacted with cellular factors in common with those binding to the simian virus 40 enhancer. Finally, the negative regulatory element required the presence of a positive regulatory element to function. This interaction between positive and negative regulatory elements represents a novel mechanism for regulating gene expression.

Amino Acid Sequence↗

Beta-chain gene rearrangements and V beta gene usage in DPw2-specific T cells.

The diversity of human T cell receptor beta-chain gene rearrangements and variable region gene usage in the T cell response to a single allogeneic class II HLA gene product has been investigated. Nine clones of cytotoxic T lymphocytes (8.2 to 8.10) that are specific for the class II specificity DPw2 were analyzed for their T cell receptor beta-chain gene rearrangements using a constant-region probe. A minimum of seven different clonotypes were present in this panel of clones. The beta-gene expressed by one clone, 8.9, was isolated and the variable (V), diversity (D), and joining (J) segments were sequenced. The sequence of the V beta 8.9 segment is identical to the V beta 14 sequence, and is joined to D beta 1.1 and J beta 1.1 segments. Northern analysis revealed that three of the eight clones analyzed, 8.5, 8.7, and 8.9, expressed a 1.3 kb transcript that hybridized with the V beta 8.9 probe, indicating that these clones were using the same V beta gene (these clones shared common DNA rearrangements). The remaining five clones did not express V beta 8.9. Southern analysis of DNA obtained from a DPw2-specific tertiary mixed lymphocyte reaction bulk culture from which the clones were derived showed a prominent rearrangement of the V beta 8.9 gene that was indistinguishable from those observed for clones 8.5, 8.7, and 8.9. This prominent rearrangement of V beta 8.9 was not observed in DNA obtained from normal peripheral blood lymphocytes. These results suggest that although the number of V beta genes which can contribute to a DPw2 specificity may be relatively large, only a limited number of clonotypes ultimately predominate in the response to certain class II HLA antigens.

Base Sequence↗

Tissue-specific expression and structure of a divergent member of a class I MHC gene family.

The class I gene family of the major histocompatibility complex (MHC) of the miniature swine (SLA) contains seven members. Six of these are highly homologous, whereas the seventh, PD6, is only distantly related. A genomic clone containing PD6 has been isolated and characterized. The PD6 SLA gene, although only 55% homologous to the other SLA class I sequences, is still a member of the family; its size and exon/intron organization are similar to other class I genes. When aligned with other SLA genes, exons 1 to 6 of PD6 have open reading frames; exon 7 contains a termination codon. PD6 is transcribed in transfected mouse L cells where its expression is enhanced by interferon. In vivo expression of PD6 is observed in a variety of tissues, with the highest levels in mature lymphoid tissues. Peripheral T cells contain high levels of PD6-specific RNA relative to B cells, whereas no PD6 transcripts are detectable in thymocytes.

Amino Acid Sequence↗

Cytotoxic T lymphocyte recognition of a xenogeneic major histocompatibility complex antigen expressed in transgenic mice.

Introduction of a porcine major histocompatability complex (MHC) class I gene (PD1) into the genome of a C57BL/10 (B10) mouse has been shown to lead to cell surface expression of the porcine MHC antigen, SLAPD1 in a transgenic mouse. The PD1 product expressed on spleen cells from the transgenic mice stimulated B10 spleen cells in a mixed lymphocyte culture to generate PD1-specific cytotoxic T lymphocytes (CTL). The CTL were PD1 specific since they lysed transgenic splenic blast cells and PD1-transfected L cells, but not B10 blasts or control L cells. The CTL were L3T4-, Lyt-2+ and their activity was partially inhibited by either anti-Lyt-2 antibody or by anti-swine MHC alloantibodies. The repertoire of responding B10 anti-transgenic CTL was assessed by examining their cross-reactivity on a series of murine allogeneic targets. The B10 anti-transgenic CTL showed some cross-reactivity on conventional allogeneic targets, but reacted strongly on a series of mutant H-2Kbm blast cells. In addition, B10 anti-B6.cH-2bm6 CTL cross-reacted extensively on the transgenic target cells. These results demonstrated that normal B10 CTL possess a repertoire specific for the products of the xenogeneic class I gene PD1, that this repertoire is cross-reactive with the conventional alloreactive CTL repertoire, and that there exists an unanticipated relationship between PD1-specific CTL and CTL specific for Kb mutant determinants.

Animals↗

Structure and expression of class I MHC genes in the miniature swine.

The genome of the miniature swine, unlike other species, contains a relatively small class I MHC gene family, consisting of only seven members. This provides an excellent system in which to identify and characterize the regulatory mechanisms which operate to both coordinately and differentially regulate the expression of a multi-gene family. The structure of class I SLA genes, like other class I genes, consists of eight exons encoding a leader sequence, three extracytoplasmic domains, a transmembrane domain and intracytoplasmic domains. Despite the common structure, two sub-families of class I genes can be distinguished within the SLA family. One, containing the closely related PD1 and PD14 genes, encodes the classical transplantation antigens. Another contains the highly divergent PD6; the functions of the products of this subfamily, if any, are not known. The class I SLA genes share some common regulatory mechanisms, as evidenced by the fact that all three genes analyzed are transcribed in mouse L cells. Furthermore, interferon treatment of transfected mouse L cells enhances expression of all three genes. Both PD1 and PD6 are transcribed in vivo, where the highest levels of expression are observed in lymphoid tissues. Superimposed on the common patterns of class I gene expression are distinct ones, as evidenced by the findings that PD1 is preferentially expressed in B cells, whereas PD6 is preferentially expressed in T cells. These differences may reflect the extensive divergence of the 5' flanking sequences of these genes. Future studies will be aimed at elucidating the precise molecular interactions and mechanisms which give rise to the observed differential expression.

Animals↗

Ethanol: an enhancer of major histocompatibility complex antigen expression.

Ethanol enhances expression of cell surface class I major histocompatibility complex (MHC) antigens in a variety of cell lines; up to an eightfold increase is observed in an embryonic cell line. In ethanol-treated L cells, increased cell surface expression of MHC antigens occurs with a concomitant increase in steady-state RNA levels. This effect is promoter dependent and restricted, because not all gene products are elevated. The effective ethanol concentration (1%) is physiologically attainable, leading to speculations about the role of elevated MHC antigens in alcohol-related diseases.

Animals↗

Expression of a microinjected porcine class I major histocompatibility complex gene in transgenic mice.

A porcine class I major histocompatibility complex (SLA) gene has been introduced into the genome of a C57BL/10 mouse. This transgenic mouse expressed SLA antigen on its cell surfaces and transmitted the gene to offspring, in which the gene is also expressed. Skin grafts of such transgenic mice were rejected by normal C57BL/10 mice, suggesting that the foreign SLA antigen expressed in the transgenic mice is recognized as a functional transplantation antigen.

Animals↗

Comparison of MHC genes among distantly related members of the genus Mus.

The genomic content of class I and class II MHC DNA sequences in a variety of wild mice has been analyzed. The panel of mice includes members of three subgenera of the genus Mus. By genomic hybridization with the use of a variety of DNA probes, both class I and class II DNA sequences appear to be conserved in all of the species examined. However, the number of class I DNA sequences differs among the species. Furthermore, this variation appears to result from differential increases within subsets of class I genes. These data suggest that the class I multigene family is dynamic and changing over short periods of evolutionary time. In contrast, none of the class II genes appears to vary in copy number. More extensive polymorphism was noted amongst the class II beta genes than the alpha genes. Interestingly, the genomic sequence corresponding to E beta 2 is highly conserved, leading to the prediction that it is a genetically functional sequence.

Animals↗

Structure and expression of two porcine genomic clones encoding class I MHC antigens.

Two nonallelic porcine class I MHC (SLA) genes have been isolated and characterized. Both genes are expressed in mouse L cells, directing the synthesis of class I SLA molecules that carry common monomorphic determinants but are serologically distinct. The corresponding DNA sequences have been determined. The organization of both of these genes is similar to that of other class I genes: a leader exon, three exons encoding extracellular domains, a transmembrane exon, and three intracytoplasmic exons. The two genes are highly homologous in both exon and intron segments, with average homologies of 88% and 80%, respectively. Nucleotide changes in exon 2 are clustered, whereas those in the other exons are dispersed throughout. Comparison of the swine DNA sequences with class I genes from other species reveals a generally high conservation of exons 2, 3, 4, and 6 with lower homology in the remaining protein-encoding domains. Introns are markedly less well conserved, although moderate homology is found between swine and human class I MHC genes in both introns and 3' flanking regions. Taken together with comparisons of the deduced protein sequences, these data indicate an order of swine greater than human greater than rabbit greater than mouse in the relationship of class I genes.

Amino Acid Sequence↗

Effect of mouse interferon on the expression of a porcine major histocompatibility gene introduced into mouse L cells.

Mouse L cells transformed with a swine genomic clone, which encodes a major histocompatibility (MHC) antigen (SLAd), stably express SLAd on their surface. Mouse interferon (IFN) markedly enhances the expression of the heterologous SLAd as well as endogenous H-2k antigens in two independent transformants, as measured by flow microfluorometry. The expression of an unrelated surface antigen, gp70, is not affected. The increased expression of SLAd antigens is the result of an increased pool of SLA mRNA in IFN-treated cells. In vitro nuclear transcription experiments suggest that this increased accumulation of SLA mRNA results largely from an enhanced transcription of the heterologous SLA gene. The effect of IFN is not restricted to the MHC coding sequences; the transcription of two DNA sequence elements flanking the SLA gene, which are constitutively expressed in one L cell transformant, is also enhanced by IFN. In contrast, in another transformant these same flanking sequences are not transcribed and do not respond to IFN. The results suggest that IFN enhances the transcription of MHC coding and the flanking sequences that are expressed in its absence, but it does not appear to induce do novo transcription of the silent flanking genes examined.

Animals↗

Differential expression of porcine major histocompatibility DNA sequences introduced into mouse L cells.

The expression of a porcine genomic DNA segment containing a major histocompatibility gene and its chromatin structure in mouse L cells have been investigated. The transformed cells, which contain about two copies of the 17.8-kilobase pig DNA insert per haploid genome, stably and uniformly express major histocompatibility antigen on their surfaces. This expression is the result of differential transcription of the 3-kilobase major histocompatibility gene; the other 14 kilobases of pig sequences flanking the coding sequence are not transcribed. Although the entire pig DNA segment is packaged into nucleosomes, only the transcriptionally active DNA sequences are packaged in a DNase I-sensitive conformation. These results suggest that the expression of this foreign DNA is actively regulated in L cells.

Animals↗

Specific association of repetitive DNA sequences with major histocompatibility genes.

The DNA sequence organization of a 17.8-kilobase segment of porcine DNA, containing a functional major histocompatibility (MHC) gene, has been studied. The DNA flanking the MHC gene contains at least 10 distinct repetitive DNA sequence elements, each of which occurs only once within the 17.8-kilobase DNA segment. Their reiteration frequencies in the genome range from 10(2) to 10(4). The genomic organization of seven of these sequence elements has been examined; all are interspersed with other, unrelated DNA sequences. These seven repeated sequences are not generally associated in the genome. However, they appear to be nonrandomly linked in MHC-associated regions of the genome: at least two additional DNA segments containing MHC-homologous DNA also contain sequences homologous to DNA fragments bearing the seven different repeats. Of the seven sequences, four can be detected in splenic total RNA. These results suggest that these repeated elements are specifically associated with the MHC locus.

Animals↗