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Biomedical subjects

G Jay

Publications and source records attributed to G Jay.

At least 109 records · Page 6Linked to original sources

Comparison of HLA class I gene sequences. Derivation of locus-specific oligonucleotide probes specific for HLA-A, HLA-B, and HLA-C genes.

The major histocompatibility complex in man contains at least 20 class I genes. Included within this family are three closely linked loci with 11-47 codominant alleles that encode the classical transplantation antigens HLA-A, -B, and -C. The study of individual HLA-A, -B, and -C genes is complicated both by the high degree of sequence homology among all members of the class I gene family and by the high degree of polymorphism exhibited by HLA-A, -B, and -C genes. Identification of potential locus-specific regions suitable for use as unique probes has been limited by the small number of nucleotide sequences available for comparison. In the present study, the nucleotide sequences of two cDNA clones, designated HLA-4 and HLA-10, that encode previously unsequenced alleles of HLA-C and HLA-A genes, respectively, are compared with those of other class I genes. From these intergenic and interallelic comparisons, it was deduced that the nucleotide sequence encoding amino acids 291-299 of the transmembrane region showed sufficient divergence between loci and similarity between alleles, to be suitable for the generation of locus-specific probes. Synthetic oligonucleotides were generated and shown to be highly locus-specific in hybridization. These probes were used successfully for the quantitation of the relative amounts of mRNA transcribed in human liver from HLA-A, -B, and -C genes; they should greatly simplify future studies of restriction fragment length polymorphisms of HLA-A, -B, and -C alleles as genetic markers of disease susceptibility.

Alleles↗

Reversal of oncogenesis by the expression of a major histocompatibility complex class I gene.

The classical transplantation antigens (the major histocompatibility complex class I antigens) play a key role in host defense against cells expressing foreign antigens. Several naturally occurring tumors and virally transformed cells show an overall suppression of these surface antigens. Since the class I molecules are required in the presentation of neoantigens on tumor cells to the cytotoxic T lymphocytes, their absence from the cell surface may lead to the escape of these tumors from immunosurveillance. To test this possibility, a functional class I gene was transfected into human adenovirus 12-transformed mouse cells that do not express detectable levels of class I antigens; the transformants were tested for expression of the transfected gene and for changes in oncogenicity. The expression of a single class I gene, introduced by DNA-mediated gene transfer into highly tumorigenic adenovirus 12-transformed cells, was sufficient to abrogate the oncogenicity of these cells. This finding has important implications for the regulation of the malignant phenotype in certain tumors and for the potential modulation of oncogenicity through derepression of the endogenous class I genes.

Animals↗

Neoplastic transformation of human epidermal keratinocytes by AD12-SV40 and Kirsten sarcoma viruses.

Recent investigations have begun to dissect the number and nature of genetic alterations associated with cancer cells. In the present study, primary human epidermal keratinocytes acquired indefinite life-span in culture but did not undergo malignant conversion in response to infection with a hybrid of adenovirus 12 and simian virus 40. Addition of Kirsten murine sarcoma virus, which contains a K-ras oncogene, to these cells induced morphological alterations associated with the acquisition of neoplastic properties. These findings demonstrate the malignant transformation of human primary epithelial cells in culture and support a multiple-step process for neoplastic conversion.

Adenoviruses, Human↗

Occurrence of a unique MHC class I gene in distantly related members of the genus Mus.

There is unequivocal evidence that a relatively nonpolymorphic class I gene (designated Q10) from the Qa region of inbred mice encodes a secreted class I molecule. We have used a cDNA probe specific for this gene and an antiserum specific for its secreted protein product to investigate the occurrence and expression of this gene in different species of wild mice broadly representing the entire genus Mus. Evidence is presented that a Q10-like gene has been conserved and is transcribed and translated throughout the genus, suggesting that it serves an important function. However, the data also show that some differences have appeared in this gene over the period of evolutionary time covered by this sampling of wild mice. These results indicate that a specific class I DNA probe isolated from inbred mice can be used to discriminate a particular gene among the multiple class I genes present in other species.

Animals↗

Modulation of the tumorigenicity of human adenovirus-12-transformed cells by interferon.

Human adenovirus-12-transformed cells express greatly reduced levels of the major histocompatibility complex class I antigens and are highly tumorigenic in syngeneic hosts. The finding that expression of a transfected class I gene is sufficient to abrogate their tumorigenicity underscores the importance of defining the conditions that will lead to derepression of endogenous class I genes in these cells. Brief treatment of Ad12-transformed cells with interferon results in the rapid but transient expression of class I antigens, and these interferon-treated cells have significantly reduced tumorigenicity in immunocompetent hosts. We have further demonstrated that subcutaneous administration of interferon, subsequent to the introduction of a tumorigenic dose of Ad12-transformed cells, results in complete protection against this tumor. The ability of interferon to "induce" class I gene expression may be an important modality in the treatment of a variety of spontaneous tumors that exhibit greatly reduced levels of class I antigens on their cell surface.

Adenoviruses, Human↗

Stable transfer and restricted expression of a cloned class I gene encoding a secreted transplantation-like antigen.

The identification of a unique major histocompatibility complex class I gene, designated Q10, which encodes a secreted rather than a cell surface antigen has led to questions regarding its potential role in regulating immunological functions. Since the Q10 gene is specifically activated only in the liver, we sought to define the molecular mechanisms which control its expression in a tissue-specific fashion. Results obtained by transfection of the cloned Q10 gene, either in the absence or presence of a heterologous transcriptional enhancer, into a variety of cell types of different tissue derivations are consistent with the Q10 gene being regulated at two levels. The first is by a cis-dependent mechanism which appears to involve site-specific DNA methylation. The second is by a trans-acting mechanism which would include the possibility of an enhancer binding factor. The ability to efficiently express the Q10 gene in certain transfected cell lines offers an opportunity to obtain this secreted class I antigen in quantities sufficient for functional studies; this should also make it possible to define regulatory sequences which may be responsible for the tissue-specific expression of Q10.

Animals↗

Functional insertion of an Alu type 2 (B2 SINE) repetitive sequence in murine class I genes.

The regulation of expression of the family of MHC (major histocompatibility complex) class I genes is complex. Sequence analysis has revealed that class I genes from the H-2D subregion of the MHC (which includes the D and L genes) differ from the class I gene from the H-2K subregion (the K gene) by the insertion of a type 2 Alu-like repetitive element (the murine B2 sequence) within the 3' noncoding region of the D and L genes. The consequence of this insertion in the D and L genes is the introduction of a novel polyadenylation signal, which is preferentially used over the more distal signal, the analog of that found in the K gene. The insertion of the type 2 Alu-like sequence results in a change in the preferred site for endonucleolytic cleavage which is necessary for generating a correct 3' terminus for polyadenylation. The data demonstrate that the type 2 Alu-like sequence has a function; the data also suggest a possible regulatory role of this sequence in the expression of class I genes.

Animals↗

A nonpolymorphic class I gene in the murine major histocompatibility complex.

DNA sequence analysis of a class I gene (Q10), which maps to the Qa2,3 locus in the C57BL/10 (H-2b haplotype) mouse, reveals that it is almost identical to a cDNA clone (pH16) isolated from a SWR/J (H-2q haplotype) mouse liver cDNA library. Exon 5, in particular, has an unusual structure such that a polypeptide product is unlikely to be anchored in the cell membrane. Our findings suggest that the two sequences are derived from allelic class I genes, which are nonpolymorphic, in contrast to H-2K allelic sequences from the same mice, and they may encode liver-specific polypeptides of unknown function. Our previous studies indicate that the Q10 gene is a potential donor gene for the generation of mutations at the H-2K locus by inter-gene transfer of genetic information. Thus the lack of polymorphism in class I genes at the Q10 locus implies either that they are not recipients for such exchanges or that selective pressure prevents the accumulation of mutations in genes at this locus.

Alleles↗

Structural analysis of the gene encoding human gastrin: the large intron contains an Alu sequence.

We have isolated a human gastrin gene from a genomic library by employing a human gastrin cDNA clone as a hybridization probe. The total length of the gene is approximately 4.0 kilobase pairs, and the gene is separated into three exons and two introns. A 130-base-pair intron interrupts the coding region and a 3.0-kilobase-pair intron is located in the 5' untranslated region. Nucleotide sequence analysis showed that all of the exon-intron boundaries follow the A-G/G-T consensus sequences. A putative transcription initiation site is assigned to the adenine 60 nucleotides upstream from the exon-intron junction on the basis of S1 nuclease protection mapping. A possible "TATA" equivalent sequence T-T-A-T-A-A is located 28 base pairs upstream from the transcription initiation site. A "CAT box" sequence, C-A-T-T, is located 99 nucleotides upstream of the transcription initiation site. A poly(A)-addition signal, A-A-U-A-A-A, is located 80 base pairs downstream from the termination codon. Comparison of the nucleotide sequences of the human cDNA and the genomic clone revealed that the aspartic acid codon at position 71 of preprogastrin is interrupted by the small intron (130 base pairs). The 3' region of the large intron contains a sequence of 300 nucleotides that is flanked by 15-nucleotide direct repeats. This sequence exhibits a striking homology to the human Alu-type sequence.

Amino Acid Sequence↗

Detection of a secreted form of the murine H-2 class I antigen with an antibody against its predicted carboxyl terminus.

Analysis of H-2 class I-specific cDNA clones has suggested the synthesis by the liver of a class I molecule that is secreted rather than membrane bound. To detect this putative class I-related molecule, we have predicted a unique region of amino acid sequence located toward the carboxyl terminus of the molecule that is not expected to be shared with any of the classical H-2 class I antigens, and we have generated specific antibodies to a synthetic peptide corresponding to this sequence. Indirect immunoprecipitation with this antibody led to the identification of a Mr 40,000 polypeptide in association with beta 2-microglobulin in the serum of mice of five different H-2 haplotypes. This class I molecule is also detected in the liver together with lower molecular weight components, which are presumably underglycosylated precursors. Synthesis of this molecule is not detected in thymus, spleen, kidney, or testis. This class I serum component has no detectable reactivity with either a broad-specificity alloantiserum against H-2b or a xenoantiserum against purified H-2a class I molecules. The availability of a specific antibody against the secreted class I molecule offers a means to purify this protein for structural and functional studies.

Amino Acid Sequence↗

Comparison of class I (H-2) gene sequences. Derivation of unique probes for members of this multigene family.

The genes for the classical transplantation antigens are unique in that they belong to a multigene family of which each member is represented by a large number of alleles. Since all of these genes are highly related in sequence, it has been difficult to study the expression of individual members of this complex gene family. Based upon our initial suggestion that the 3' noncoding regions of these genes may be useful in identifying mRNA molecules transcribed from different loci, we have compared a large number of sequences from different inbred mouse strains and have been able to assign each of these sequences without ambiguity into distinct allelic series. Such accurate assignment has afforded the opportunity to compare the coding regions of these highly homologous genes and has led to the identification of sequences which are apparently unique to specific genes in the family. Synthetic oligonucleotides corresponding to each of the locus-specific unique regions have been used successfully to type a panel of cDNA sequences, as well as to quantitate the relative amounts of mRNA transcribed from distinct loci. The availability of these specific coding probes will allow the analysis of individual genes and their specific expression without interference from other highly homologous sequences in this multigene family.

Amino Acid Sequence↗

Secretion of a transplantation-related antigen.

Analysis of mouse cDNA clones has led to the identification of a class I (H-2)-related gene that encodes a truncated transplantation-like antigen. Unlike the products of the class I genes (H-2K, H-2D, and H2-L), which are synthesized and displayed on the surface of all cells, the class I-related gene product is expressed only in liver cells and is secreted. The region of the secreted molecule corresponding to the extracellular domain of the membrane-bound class I antigens shows unusual amino acid substitutions at positions otherwise invariably conserved. There is also loss of a glycosylation site that is used in all class I antigens. Within the region corresponding to the transmembrane domain are multiple nonconservative substitutions of hydrophobic residues, alterations that render the encoded protein incapable of inserting into the plasma membrane. Toward the end of the same domain, the polypeptide chain terminates abruptly and thus lacks the intracellular domain present on all class I antigens. A candidate for this secreted molecule, detected using various heteroantisera against class I antigens, has been identified. A potential role for this serum protein in mediating active tolerance is discussed.

Amino Acid Sequence↗

Developmental activation of the H-2K gene is correlated with an increase in DNA methylation.

Embryonal carcinoma cell lines present strong developmental analogies with early embryonic cells. Previous studies have shown that treatment of F9 teratocarcinoma cells with retinoic acid induces the expression of the classical transplantation antigens which are indispensable for effective interactions between cells. In contrast to several genes that were analyzed, all of which were highly and heterogeneously methylated in F9 cells, the H-2K gene was poorly methylated if at all. Activation of the H-2K gene upon differentiation of F9 cells was accompanied by an increase in DNA methylation. While increased methylation of the H-2K gene in one of the two homologous chromosomes was correlated with a low level of expression, increased methylation in both chromosomes was associated with a high level of expression. Treatment of differentiated F9 cells with 5-azacytidine resulted in inhibition of DNA methylation and a concomitant repression of the H-2K gene expression. Thus, in contrast to the many examples of an inverse correlation between the level of gene methylation and its transcriptional activity, expression of the H-2K gene is directly correlated with the extent of methylation. This finding offers an explanation whereby the hypomethylation observed in tumor cells may be responsible for the establishment and maintenance of a malignant state of growth.

Animals↗

Control of H-2 antigen and beta 2-microglobulin gene expression in mouse trophoblast cell clones.

We have investigated the expression of H-2 antigen and beta 2-microglobulin in recently established mouse trophoblast cell clones. These clones, derived from C57BL/6 (H-2b) or BALB/c (H-2d) strains, synthesized extra-embryonic endoderm- and trophectoderm-specific cytoskeletal proteins, termed "Endo A" and "Endo B," and no detectable SSEA-1 embryonic antigen. Flow microfluorometry indicated that H-2 antigen expression on the cell surface of trophoblast cells was very low, corresponding to 2-5% of the amounts found on differentiated teratocarcinoma cells (12-1a) and BALB/c 3T3 cells, respectively. Expression of beta 2-microglobulin was reduced to approximately equal to 14% of the amounts found on 12-la cells. Immunoprecipitation and polyacrylamide gel electrophoretic analysis indicated that the synthesis of H-2 antigen and beta 2-microglobulin in the trophoblast cells was lower than that found in normal spleen cells. In addition low, but unequal, levels of mRNA specific for H-2 antigen and beta 2-microglobulin were found in trophoblast cells by blot hybridization with cDNA probes. The low mRNA levels may be due to transcriptional control of the genes encoding H-2 antigen and beta 2-microglobulin.

Animals↗

Subcellular localization of the simian virus 40 agnoprotein.

The intracellular distribution of the simian virus 40 agnoprotein in infected cells was determined by indirect immunofluorescence and biochemical fractionation followed by indirect immunoprecipitation. The specific antibodies used in these studies were directed against either purified agnoprotein or a synthetic oligopeptide homologous to the N-terminus of the processed protein. Both procedures showed predominant localization of the agnoprotein to the cytosol and to the perinuclear region in association with the outer nuclear membrane. A minor but detectable fraction of the protein was also found in the nucleus. The definition of its subcellular distribution, as well as its high lability in vivo and affinity for nucleic acid, provide a basis for speculation on the function of this gene product.

Animals↗

Simian virus 40 tumor antigen: isolation of the origin-specific DNA-binding domain.

To localize the origin-specific DNA-binding domain on the simian virus 40 tumor (T) antigen molecule, we used limited proteolysis with trypsin to generate fractional peptides for analysis. A 17,000-Mr peptide was found to be capable of binding not only to calf thymus DNA, but also specifically to the simian virus 40 origin of DNA replication. This approximately 130-amino-acid peptide was derived from the extreme N-terminus of the T antigen and represented less than one-fifth of the entire molecule. The coding sequence for this tryptic peptide was located approximately between 0.51 and 0.67 map units (excluding the intron, which maps between 0.54 and 0.59). Since the first 82 amino acids are shared between large T and small t antigens, and since the latter does not bind DNA, it can be concluded that the sequence between isoleucine 83 and approximately arginine 130 is necessary for origin-specific binding by the T antigen. We also observed that in vivo phosphorylation of the T antigen within this region completely abolished the ability of the 17,000-Mr peptide to bind DNA. This observation is consistent with the idea that DNA binding by the T antigen is regulated by posttranslational modifications.

Animals↗