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R DeMars

Publications and source records attributed to R DeMars.

At least 55 records · Page 3Linked to original sources

CD4+ proliferative T-cell clones reactive to autologous Epstein-Barr virus-transformed B cells (EBV-LCL) can be restricted by HLA class I molecules.

In this study, we show that an HLA-loss variant, EBV-LCL .180, which lacks HLA-DR, DP, DQ and B determinants but expresses HLA-A and C molecules, can activate autologous proliferative T cells which recognize EBV-LCL antigens (or LYDMA). T-cell clones isolated from bulk culture (A.180) of T cell primed with autologous variant .180 when tested for their proliferative reactivity to .180 and three autologous class I-loss variants, each lacking specific class I determinants, showed requirement for class I HLA molecules. Clones A.180.Cl and A.180.F3D respond to the A2+, B-null, C+ mutant .53, but not to the A-null, B5+, C+ mutant .144, or the A-null, B-null, C+ mutant .184, indicating that these clones are restricted by an HLA-A2 determinant. These proliferative T-cell clones express the CD4 marker and are noncytotoxic, even in the presence of concanavalin A (Con A) lectin. In coculture experiments, A.180.Cl was further shown to provide lymphokine "help" for EBV-LCL-specific, autologous cytotoxic T-cell clones. These results suggest the repertoire of HLA determinants employed by EBV-LCL-specific proliferative T cells, in addition to the previously shown HLA-DR, DP, and DQ determinants, also includes class I molecules.

Antigens, Differentiation↗

Transfer and expression of three cloned human non-HLA-A,B,C class I major histocompatibility complex genes in mutant lymphoblastoid cells.

The HLA-A, -B, and -C class I human histocompatibility antigens and the genes that encode them have been isolated and characterized. Apparently complete class I non-HLA-A, B, C genes have been identified on HindIII-generated 5.4-kilobase (kb), 6.0-kb, and 6.2-kb DNA fragments derived from lymphoblastoid cell line (LCL) 721. We studied the expressibility of these genes by subcloning them into the nonintegrating pHeBo vector and transferring the chimeric plasmids into mutant LCL 721.221. This mutant was derived from LCL 721 by means of immunoselections following gamma-ray mutagenesis that eliminated expressions of the HLA-A, -B, and -C alpha chains. The HLA-A, B, C-null phenotype of mutant 721.221 made it possible to monitor the expression of class I genes transferred into it by assaying cell surface binding of monoclonal antibodies BBM.1 and W6/32, which recognize beta 2-microglobulin and HLA class I alpha-chain epitopes, respectively. Increased binding of BBM.1 and W6/32 was clearly observed in transferents containing the class I gene of the 6.0-kb DNA fragment but not in transferents containing the class I genes of the 5.4- and 6.2-kb DNA fragments. However, one-dimensional gel electrophoresis of BBM.1 and W6/32 immunoprecipitates made with [35S]methionine-labeled cell lysates showed that transfer of each non-HLA-A, B, C class I gene into 721.221 resulted in the appearance of an alpha chain that coprecipitated with beta 2-microglobulin. The three previously unreported alpha chains differed from each other in size and were smaller than HLA-A, -B, and -C alpha chains. These observations clearly show that these three cloned, nonallelic, non-HLA-A, B, C class I genes encode alpha chains that can be expressed in human cells.

B-Lymphocytes↗

Presentation of soluble antigen to human T cells by products of multiple HLA-linked loci: analysis of antigen presentation by a panel of cloned, autologous, HLA-mutant Epstein-Barr virus-transformed lymphoblastoid cell lines.

Epstein-Barr virus-transformed human B lymphoblastoid cell lines (EBV-LCL) can present soluble antigens to antigen-primed T lymphocytes. In this study, we used HLA antigen-loss mutants of an EBV-LCL line (LCL 721) to demonstrate that the presentation of a soluble antigen from Candida albicans (CAN) by EBV-LCL to primed T cells can be restricted by multiple HLA determinants. Haplotype-deletion mutants that contained only the maternal or only the paternal HLA-haplotype were used to demonstrate the preferential role of autologous HLA antigens in presenting soluble antigens to Candida-primed T cells from the donor of LCL-721, and to T cells from her mother and father. Immunoselected mutants of LCL-721 showing a variety of distinct phenotypes that are deficient in HLA-DR, DQ, or DP antigen expression were tested as antigen-presenting cells. The antigen-presenting ability of these class II deficient EBV-LCL variants weakened with progressive loss of class II HLA determinants expressed on the cell surface. Our study, therefore, provides evidence for multiple HLA restriction determinants, including HLA-DR, DQ, and DP. Furthermore, LCL lacking all HLA-DR, DQ, and DP expression because of homozygous deletion of these MHC class II genes still presented CAN and Tetanus toxid (TET), although to a much lesser degree than presented by LCL-721. This suggests that determinants other than DR, DQ, and DP which are expressed on these EBV-LCL may also function as restriction elements for the proliferative T-cell response to soluble antigens.

Antigen-Presenting Cells↗

Insulin binding to human B lymphoblasts is a function of HLA haplotype.

A variety of genetic and biochemical evidence points to an association between major histocompatibility complex (MHC) haplotype and several types of cell surface receptors including epidermal growth factor and insulin receptors. We report evidence for such associations between human class I MHC antigens, HLA antigens, and specific insulin binding sites on human B lymphoblasts. We have measured insulin binding to cells of an HLA-heterozygous, Epstein-Barr virus-transformed B-cell line, LCL 721, and to derivative mutants from which all or part of the HLA complex had been deleted. The affinity, Ka, of insulin binding sites is approximately 10(8) M-1 in mutants expressing antigen HLA-B5 together with other HLA antigens and in mutants expressing only HLA-C. HLA-A1; HLA-A1,B8; HLA-A2,C; and HLA null mutants (not expressing any HLA antigens) bind insulin to sites with an affinity of approximately 10(9) M-1.

B-Lymphocytes↗

Derepression of HPRT locus on inactive X chromosome of human lymphoblastoid cell line.

Human XX lymphoblastoid cells with a deletion in the HPRT locus on the active X were exposed to HPRT clone pHPT32. HPRT+ isolates GPT3 and GPT5 lacked pHPT32 DNA, suggesting that their HPRT+ phenotype resulted from expression of a cellular gene. GPT3 mutated to thioguanine resistance at least 100 times more frequently than cells in which the expressed HPRT locus was on the active X. Most GPT3-derived HPRT- had lost one entire X chromosome, indicating that the HPRT+ phenotype of GPT3 resulted from derepression of the HPRT locus on its inactive X. Virtually unchanged G6PD and PGK activities and the presence of a late-replicating X in GPT3 suggest that derepression of the inactive X was not general. Eleven of the GPT3-derived mutants had a tiny centric remnant that may result from a frequently operative mechanism of X chromosome loss. The detection of partial or complete loss of an X by direct selection presents unusual opportunities for genotoxicity detection with human cells.

Cell Line↗

Molecular analysis of HLA class I and class II antigen loss mutants reveals a homozygous deletion of the DR, DQ, and part of the DP region: implications for class II gene order.

The mutant human B-lymphoblastoid cell lines, 721.174 and 721.180, previously reported to exhibit greatly reduced expression of human HLA class I and II antigens (DeMars et al., Hum Immunol 11:77, 1984), were analyzed by Southern blotting using class II cDNA and genomic clones as hybridization probes. All genomic sequences complementary to DR alpha, DR beta, DQ alpha, and DQ beta probes were absent from these mutants. DZ alpha genomic sequences were deleted as were the DP alpha 1 and DP beta 1 loci but the DP beta 2 and most, if not all, of the DP alpha 2 locus were retained. However, no RNA transcripts for either DP alpha 2 or DP beta 2 could be detected. The mapping of the deletion breakpoint within the DP cluster allows the orientation of the loci in the DP region with respect to the centromere as follows: centromere, DP beta 2, DP beta 1, DP alpha 1, (DQ, DR). In addition, the analysis of a set of DR-, DQ-, DP+ homozygous deletion mutants (721.82, 721.84, and 721.101) reveals a deletion breakpoint between the DQ alpha 1/DQ beta 1 loci and the DQ alpha 2/DQ beta 2 loci. These mutants retain DZ alpha genomic sequences, tentatively mapping the DZ alpha locus between the DQ and the DP region. The residual ability of the DR-, DQ-, DP- mutants (174 and 180)* to stimulate allogeneic and autologous lymphoproliferative responses must be attributed to expression of as yet unidentified class II antigens, or to non-class II antigens.

Cell Line↗

The proliferative immune response to autologous Epstein-Barr virus transformed lymphoblastoid cells. II. Studies with HLA class II loss variants demonstrate a role for gene products other than DR and DQ.

The Epstein-Barr virus (EBV) transformed lymphoblastoid cell line (LCL-721) and some of its HLA loss mutant derivatives were used to study the immune specificity of the autologous proliferative T cell response to antigens expressed as a result of EBV infection. We have measured secondary and tertiary proliferative responses to well-characterized variants that lack expression of some or all known class II gene products (DR, DQ, and DP). These experiments prove that the region mapping between DR/DQ and glyoxalase I (GLO) of one haplotype controls at least one specific restriction element which is recognized in the autologous response to LCL-721. Furthermore, specific proliferative responses to variants lacking expression of all known class II gene products indicate the recognition of determinants other than DR, DQ, and DP.

Cell Transformation, Viral↗

Construction of a map of the short arm of human chromosome 6.

Four DNA sequences that reveal restriction fragment length polymorphisms (RFLPs) on the short arm of human chromosome 6 have been identified. Two of these sequences were isolated from recombinant DNA libraries enriched for DNA from human chromosome 6, one was isolated as a subclone from a human DNA segment having homology to an HLA class I sequence, and one was isolated by virtue of its homology to part of the insulin gene. Genetic linkage was determined among these four polymorphic sequences and several genes known to be on chromosome 6: glyoxylase I (GLO1), HLA-DR alpha, HLA-DQ alpha, and HLA-B. Additionally, two of the four RFLPs were regionally localized by using 53 deletion cell lines that had been typed for HLA-A, -B, and -DR, and for glyoxylase I. A genetic map of the short arm of chromosome 6 has been constructed on the basis of linkage studies with the eight markers. The map spans a minimum of 60 recombinational units and will be useful in the study of HLA-associated diseases.

Chromosome Mapping↗

Natural killer susceptibility of human cells may be regulated by genes in the HLA region on chromosome 6.

Natural killer (NK) cells exist in each individual in the absence of any intentional immunization. They are able to kill a wide range of targets from tumoral as well as from normal origin. However, their exact physiologic role is not clearly understood. In this study we report results about a human Epstein-Barr virus-transformed B-cell line from which variants perturbed in the expression of HLA molecules have been derived. Our results indicate that in these cell lines an inverse relationship exists between expression of HLA antigens and susceptibility to NK lysis. The original cell line is highly resistant to NK lysis. On the contrary, the variant perturbed in class I antigen expression is highly susceptible. Variant perturbed in class II antigen expression is intermediate in susceptibility. Interferon, which induces HLA class I expression and NK resistance in the unrelated classical K-562 target cells, does not change either HLA expression or NK susceptibility in the variant cell lines. The difference between the original cell line and the variants does not reside in the ability to be bound by NK effectors. Our results suggest a different role for HLA molecules. By some unknown mechanism discussed here, the presence of HLA molecules at the surface of a cell would prevent this cell from being killed by NK cells. The loss of this "good health" signal would lead to the elimination of the cell through NK lysis.

Antigens, Surface↗

Transfer of cloned human class I major histocompatibility complex genes into HLA mutant human lymphoblastoid cells.

Three new kinds of recombinant DNA constructs were used to transfer cloned human class I HLA genes (A2 and B8) into unique HLA mutant lymphoblastoid cells: pHeBo(x): a class I gene, "x," in plasmid vector pHeBo, which contains a hygromycin resistance gene and Epstein-Barr virus oriP element that sustains extrachromosomal replication; pHPT(x): gene x in a vector with a hypoxanthine-guanine phosphoribosyltransferase (HPRT) gene; pHPTe(x): gene x in a vector with the HPRT gene and oriP element. Cell surface class I antigen expression was strong in transferents made with class I-deficient lymphoblastoid cell line mutants .144 (A-null), .53 (B-null), and .184 (A-null, B-null). Transferents expressing HLA-A2 were recognized specifically by HLA-A2-specific cytotoxic T lymphocytes. When introduced on either of the vectors with the Epstein-Barr virus oriP element, the class I gene replicated extrachromosomally and was lost at rates of 0.2 to 0.3 per cell division. When introduced with vector pHPT (lacking Epstein-Barr virus oriP), the B8 gene was inserted at different chromosomal locations. Introduction of the HLA-B8 gene failed to restore antigen expression by HLA-B-null mutant .174, providing evidence that, unlike mutants exemplified by .53, .144, and .184, some HLA antigen loss mutants are deficient in a trans-acting function needed for class I antigen expression. Of more general interest, the results obtained with HLA class I genes in vectors that replicate extrachromosomally suggest ways of relating genic expression to chromatin structure and function and of attempting to clone functional human centromeres.

Cell Line↗

DO beta: a new beta chain gene in HLA-D with a distinct regulation of expression.

The HLA-D region of the human major histocompatibility complex encodes the genes for the alpha and beta chains of the DP, DQ and DR class II antigens. A cDNA clone encoding a new class II beta chain (designated DO) was isolated from a library constructed from mRNA of a mutant B-cell line having a single HLA haplotype. Complete cDNA clones encoding the four isotypic beta chains of the DR1, DQw1, DPw2 and putative DO antigens were sequenced. The DO beta gene was mapped in the D region by hybridization with DNA of HLA-deletion mutants. DO beta mRNA expression is low in B-cell lines but remains in mutant lines which have lost expression of other class II genes. Unlike other class II genes DO beta is not induced by gamma-interferon in fibroblast lines. The DO beta gene is distinct from the DP beta, DQ beta and DR beta genes in its pattern of nucleotide divergence. The independent evolution and expression of DO beta suggest that it may be part of a functionally distinct class II molecule.

Amino Acid Sequence↗

Evidence for chromatin structure as a regulatory determinant in HLA-DR alpha gene expression.

We examined the possibility that one mechanism for controlling HLA-DR alpha gene expression involves the alteration of chromatin structure. Chromatin structure was analyzed by measuring the susceptibility of DR alpha genes in intact nuclei to nuclease treatment. We first examined a somatic cell hybrid of a T-lymphoblastoid cell line (LCL) and a B-LCL, since the DR alpha gene, which is inactive in the T-LCL parent, is expressed in the hybrid, thus providing a system to study DR alpha gene induction. The hybrid line 174 X CEM.T1 contains and expresses solely the DR alpha gene from the T-LCL parent, since the DR alpha gene from the B-LCL parent, 174, is deleted. Using cytoplasmic dot blot analysis and RNA-DNA Northern hybridization, we detected DR alpha-specific transcripts in the hybrid, but not in the parental lines, indicating activation of the DR alpha gene in the hybrid. The transcribed DR alpha gene from the hybrid was compared with the untranscribed gene from the T-LCL parental line, and an association between DR alpha gene expression and increased sensitivity to DNase I was observed. A switch in the chromatin structure of the DR alpha gene from a closed to an open configuration apparently occurred in this hybrid. Such a change is associated with DR alpha gene expression. Comparison of a DR-positive B-LCL and an isogenic DR-negative T-LCL also showed that the chromatin of the former is more sensitive to DNase I digestion. There were no restriction enzyme fragment length differences between the DR alpha genes from 174 X CEM.T1 and CEMR, indicating that the process of somatic cell hybridization did not result in DNA rearrangement or translocation.

Cell Line↗

The proliferative immune response to autologous Epstein-Barr virus-transformed lymphoblastoid cells. I. Studies with HLA haplotype loss variants demonstrate a role for MHC-linked genes.

The human Epstein-Barr virus transformed lymphoblastoid cell line (EBV-LCL) 721 and MHC haplotype loss variants derived from it were utilized to dissect the functional role of MHC genes in the proliferative response of autologous T lymphocytes to EBV-LCL. LCL-721 is heterozygous at all phenotypically defined MHC loci. One type of LCL-721 variant expresses only determinants encoded by the maternal (m) haplotype and the other expresses determinants encoded by the paternal (p) haplotype. Autologous (individual A) primary proliferative responses are strong to each type of haplotype deletant. The strong tertiary responses to the priming haplotype in comparison to the relatively weak responses to the reciprocal haplotype indicate that MHC linked genes encoded by each haplotype are important in the autologous response to EBV-LCL. Similar specific tertiary responses are observed when peripheral blood lymphocytes (PBLs) from the donor's mother are used as responding cells. Allogeneic responses were also studied by priming PBLs from unrelated donors with the haplotype deletants. Quantitative comparisons of the proliferation by primed allogeneic and autologous lymphocytes stimulated by irradiated PBLs from donor A and her mother, and by LCL-721 and its variants, show that some of the tertiary responses involve specific recognition of EBV-LCL while others detect recognition of alloantigens.

Cell Line↗

Specificity of monoclonal antibodies directed against human and murine class II histocompatibility antigens as analyzed by binding to HLA-deletion mutant cell lines.

The specificity of 70 monoclonal anti-Ia monoclonal antibodies (MoAbs) (18 mouse allo-induced and 52 rodent anti-human) was studied with a panel of 17 HLA-deletion mutants that were derived from a single parent line and vary in expression of Ia antigens due to deletion of different subregions of HLA. MoAb binding was analyzed both by ELISA and flow microfluorometry. Characterization of the MoAbs with respect to specificity for products of subregions of a DR1-DC1-SB2 haplotype revealed great complexity. Many antibodies were quite specific for DR-linked determinants (26 MoAbs), DC-linked determinants (5 MoAbs), or determinants indistinguishable from SB (4 MoAbs). However, many MoAbs bound to products of more than one subregion: DR + SB (+/- weak DC) (22 MoAbs); DR + DC (3 MoAbs); or DR + DC + SB (1 MoAb). Furthermore, a number of the MoAbs bound unequally to products of the two HLA haplotypes analyzed, particularly among those recognizing DC1-linked determinants and the murine alloinduced MoAbs. Finally, despite strong structural homologies of murine I-A to human DC and murine I-E to human DR, the intraspecies cross-reactions of MoAbs do not closely follow that pattern. These data: (1) illustrate the usefulness of HLA-deletion mutant cell lines for analysis of the specificity of MoAbs and for delineation of HLA subregions; (2) demonstrate the great diversity of MoAbs specific for class II molecules and the high frequency of MoAbs that bind to products of more than one Ia subregion, particularly DR and SB. In view of such complexity, many (perhaps most) MoAbs cannot be relied on to unambiguously identify products of a particular Ia subregion, without extensive characterization.

Animals↗

Mutations that impair a posttranscriptional step in expression of HLA-A and -B antigens.

Mutations can interfere with posttranscriptional expression of the HLA-A and -B genes. B-lymphoblastoid cells that contain one copy of the major histocompatibility complex (MHC) were subjected to mutagenesis and immunoselection for MHC antigen-loss mutants. Some mutations partially reduced surface expression of HLA-A and eliminated HLA-B expression concurrently, although the HLA-A and -B genes were present and transcribed. Antigen expression was fully restored in hybrids of these mutants with other B-lymphoblastoid cells. Therefore, normal cell surface expression of the HLA-A and -B antigens on B lymphoblasts requires (i) execution of at least one trans-active step in the production of the antigens after transcription of the HLA-A and -B genes or (ii) association of the class I antigens with other molecules. DNA analysis of one mutant suggests the possibility that a locus required for the normal expression of the HLA-A and -B antigens is located between the MHC complement genes and the HLA-DP alpha II locus.

Antibodies, Monoclonal↗

Allelic polymorphism and transassociation of molecules encoded by the HLA-DQ subregion.

A monoclonal antibody, CC11.23, with monomorphic specificity predominantly for products of the HLA-DQ subregion, has been used to demonstrate primary structural variation among DQ molecules. Two cell lines of each haplotype (DR1-7) were radiolabeled with [3H]tyrosine. alpha and beta chains were isolated from CC11.23-reactive preparations, and their amino-terminal tyrosine sequences were determined. Each DR haplotype (with the exception of DRw6) was found to express a distinct DQ molecule with a minimum of three allelic forms of the DQ alpha chain and five allelic forms of the DQ beta chain. At the primary structural level, the locus for the DQ beta chain appears to be as polymorphic as the locus for the DR beta chain. Unlike the locus for the DR alpha chain (which is essentially nonpolymorphic), the locus for the DQ alpha chain was found to be polymorphic. Comparison of DQ molecules from two different heterozygous cell lines with those from homozygous cell lines revealed that in heterozygotes, DQ alpha chains from either allele can associate with DQ beta chains from one allele. The formation of hybrid HLA-DQ molecules by both cis and trans gene complementation, coupled with several polymorphic forms of each of the DQ subunits, considerably increases the repertoire of DQ alloantigens in heterozygotes.

Alleles↗

Comparison of multiple HLA-A alleles at the DNA level by using Southern blotting and HLA-A-specific probes.

Numerous alleles of the HLA-A gene have been serologically identified. In this report we present a rapid and straightforward means to assess HLA-A polymorphism at the genomic level. Using 5' and 3' HLA-A-specific DNA probes and Southern blotting, we have placed the recognition sequences for five endonucleases relative to the coding regions of 15 HLA-A alleles. These data permit two interesting conclusions: four of the HLA-A alleles studied are associated with unique restriction fragments, and HLA-A alleles of a cross-reactive group are more closely related at the DNA level than are noncross-reactive alleles.

Alleles↗