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Designation by restriction fragment length polymorphism of major histocompatibility complex class IV haplotypes in meat-type chickens.

Major histocompatibility complex (MHC) class IV haplotypes were identified in a population of meat-type chickens by restriction fragment length polymorphism (RFLP) analysis. Fourteen different haplotypes were designated on the basis of restriction patterns obtained from Southern blots of PvuII- or BglII-digested DNA, hybridized with the MHC class IV cDNA probe bg32.1. Digestion with each restriction enzyme yielded the same level of polymorphism among individuals. For each haplotype, 4-10 restriction fragments ranging from 0.8 to 8 kb were observed. Such a designation of meat-type chicken MHC class IV haplotypes enables a rapid recognition of previously defined haplotypes, is readily adjustable to additional, newly found restriction patterns and could prove useful in practical breeding programmes.

Animals↗

Natural selection at major histocompatibility complex loci of vertebrates.

The loci of the vertebrate major histocompatibility complex encode cell-surface glycoproteins that present peptides to T cells. Certain of these loci are highly polymorphic, and the mechanisms responsible for this polymorphism have been intensely debated. Four independent lines of evidence support the hypothesis that MHC polymorphisms are selectively maintained: (a) The distribution of allelic frequencies does not fit the neutral expectation. (b) The rate of nonsynonymous nucleotide substitution significantly exceeds the rate of synonymous substitution in the codons encoding the peptide-binding region of the molecule. (c) Polymorphisms have been maintained for long periods of time ("trans-species polymorphism"). (d) Introns have been homogenized relative to exons over evolutionary time, suggesting that balancing selection acts to maintain diversity in the latter, in contrast to the former.

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↗

Rhesus macaque class I duplicon structures, organization, and evolution within the alpha block of the major histocompatibility complex.

The alpha block of the human and chimpanzee major histocompatibility complex (MHC) class I genomic region contains 10 to 11 duplicated MHC class I genes, including the HLA/Patr-A, -G, and -F genes. In comparison, the alpha block of the rhesus macaque (Macaca mulatta, Mamu) has an additional 20 MHC class I genes within this orthologous region. The present study describes the identification and analysis of the duplicated segmental genomic structures (duplicons) and genomic markers within the alpha block of the rhesus macaque and their use to reconstruct the duplication history of the genes within this region. A variety of MHC class I genes, pseudogenes, transposons, and retrotransposons, such as Alu and ERV16, were used to categorize the 28 duplicons into four distinct structural categories. The phylogenetic relationship of MHC class I genes, Alu, and LTR16B sequences within the duplicons was examined by use of the Neighbor-Joining (NJ) method. Two single-duplicon tandem duplications, two polyduplicon tandem duplications with an accompanying inversion product per duplication, eight polyduplicon tandem duplications steps, 12 deletions, and at least two recombinations were reconstructed to explain the highly complex organization and evolution of the 28 duplicons (nine inversions) within the Mamu alpha block. On the basis of the phylogenetic evidence and the reconstructed tandem duplication history of the 28 duplicons, the Mamu/Patr/HLA-F ortholog was the first MHC class I gene to have been fixed without further duplication within the alpha block of primates. Assuming that the rhesus macaque and the chimpanzee/human lineages had started with the same number of MHC class I duplicons at the time of their divergence approximately 24 to 31 MYA, then the number of genes within the alpha block have been duplicated at an approximately three times greater rate in the rhesus macaque than in either the human or chimpanzee.

Animals↗

Chemical properties of two antigens controlled by the major histocompatibility complex of the chicken.

The chemistry of antigens controlled by the major histocompatibility complex of the chicken has been investigated. Peripheral blood leukocytes of five chicken strains were radioactively labeled by incorporation of tritiated amino acids, enzymatic iodination, or mild periodate oxidation followed by reduction with tritiated sodium borohydride. Membrane-bound antigens were solubilized with Nonidet P-40 and purified by a two-step immunoprecipitation procedure. The resulting immunoprecipitates were analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis under reducing or nonreducing conditions. The chicken major histocompatibility antigens (B antigens) are composed of polypeptide chains with molecular weights (in the reduced form) of 40,000 to 43,000 and 11,000 to 12,000, as deduced from their mobilities in internally calibrated gels. The larger chains, when isolated from different chicken strains, can have slightly different mobilities in such gels; thus the mobilities of the large polypeptides from strains WA and WB correspond to molecular weights of 40,000 and 43,000, respectively. Gels run under nonreducing conditions give similar results; in particular no dimers or oligomers of the larger chains are detectable, thus ruling out an immunoglobulin-like structure for the B antigens. The large chains are labeled by the periodate oxidation-reduction procedure, suggesting that they are glycoproteins (probably containing sialic acid), while the small polypeptides cannot be labeled by this method. An additional protein or proteins of apparent molecular weight about 30,000 could be precipitated from 3H-amino-acid-labeled leukocyte lysates by one particular anti-B serum. This protein(s), named B-L, differs from the B major histocompatibility antigens in that it is not associated with the small chain of molecular weight 11,000 to 12,000 and does not occur on erythrocytes. Thus, at least two protein chains are coded for (or have their synthesis controlled by) genes in the chicken major histocompatibility complex.

Animals↗

Major histocompatibility complex class I-restricted antigen processing and presentation.

Major histocompatibility complex (MHC) class I molecules present antigenic peptides to CD8-expressing cytotoxic T lymphocytes (CTLs). This antigen recognition system is critically important for immune surveillance against viruses and tumors. Most class I-binding peptides are generated in the cytosol, as side products from the degradation of misfolded proteins by proteasomes. A subset of the resulting peptides are translocated across the endoplasmic reticulum (ER) membrane by a dedicated peptide transporter, and these peptides are then loaded onto peptide-receptive class I molecules in the ER. The stable assembly of class I molecules with peptides is controlled by a variety of accessory proteins, including chaperones with general housekeeping functions and factors with dedicated roles in class I assembly. Peptide-filled class I molecules are then delivered to the cell surface for recognition by CTLs. This highly regulated process permits the host to rapidly counter invading pathogens with strong and sustained CTL responses and, at the same time, avoid misguided attacks. Here, how the class I antigen processing machinery accomplishes this daunting task is reviewed.

Animals↗

Influence of combinations of human major histocompatibility complex genes on the course of HIV-1 infection.

Major histocompatibility complex (MHC) genes (HLA in humans) regulate the immune response to foreign antigens. Molecular and serologic techniques were used to identify products of HLA class I, class II and transporter (TAP) genes (also part of the MHC) in homosexual seroconverters to human immunodeficiency virus type 1 (HIV-1). Comprehensive statistical analysis produced an HLA profile that predicted time from HIV-1 infection to the onset of AIDS. The profile was developed in a cohort of 139 men and evaluated in a second unrelated cohort of 102 men. In the evaluation cohort, the profile discriminated a sixfold difference between groups with the shortest and longest times to AIDS (P = 0.001). These findings support current theory about control of antigen processing by HLA genes and have implications for immunopathogenesis of HIV-1 and other infections.

Acquired Immunodeficiency Syndrome↗

Isolation and characterization of major histocompatibility complex class IIB genes from the nurse shark.

The major histocompatibility complex (MHC) contains a set of linked genes which encode cell surface proteins involved in the binding of small peptide antigens for their subsequent recognition by T lymphocytes. MHC proteins share structural features and the presence and location of polymorphic residues which play a role in the binding of antigens. In order to compare the structure of these molecules and gain insights into their evolution, we have isolated two MHC class IIB genes from the nurse shark, Ginglymostoma cirratum. Two clones, most probably alleles, encode proteins which differ by 13 amino acids located in the putative antigen-binding cleft. The protein structure and the location of polymorphic residues are similar to their mammalian counterparts. Although these genes appear to encode a typical MHC protein, no T-cell-mediated responses have been demonstrated in cartilaginous fish. The nurse shark represents the most phylogenetically primitive organism in which both class IIA [Kasahara, M., Vazquez, M., Sato, K., McKinney, E.C. & Flajnik, M.F. (1992) Proc. Natl. Acad. Sci USA 89, 6688-6692] and class IIB genes, presumably encoding the alpha/beta heterodimer, have been isolated.

Amino Acid Sequence↗

The evolution and maintenance of polymorphism in the major histocompatibility complex.

Lambs with the G2 allele at the ovine major histocompatibility complex (mhc) class II locus DRB1 has previously been shown to have lower faecal nematode egg counts than lambs with the I allele at this locus. This association has been confirmed in separate cohorts from the same farm. Other alleles within the mhc have also shown associations with nematode resistance in other breeds of sheep. Therefore, variation in the mhc is responsible for part of the observed genetic variation in resistance to nematode infection. In addition to the specific effect of particular alleles, heterozygotes are also more resistant than homozygotes. This heterozygote advantage is capable of maintaining the high levels of polymorphism observed within the mhc.

Alleles↗

Upregulation of major histocompatibility complex class II antigens in hepatocytes in Doberman hepatitis.

Major histocompatibility complex (MHC) class II antigen expression in hepatocytes and its correlation with mononuclear cell infiltration into the liver were studied using immunohistochemical techniques in 38 Dobermans with Doberman hepatitis (DH). Liver biopsy samples were obtained from 18 dogs at the subclinical stage. Autopsy samples were taken from 6 DH dogs euthanized for a reason other than DH, from 14 dogs euthanized because of advanced liver failure and from 6 control Dobermans. Upon examination of the control liver samples, no expression of MHC class II antigens was detected in hepatocytes. By contrast, in 15 of the 18 DH biopsies (83%) and in all 20 DH autopsy liver samples, hepatocytes expressed MHC class II molecules. MHC class II expression was either cytoplasmic or membranous and occurred in conjunction with lymphocyte infiltration. A correlation between the inflammatory reaction and the expression of MHC class II in hepatocytes suggests that the aberrant expression of MHC class II in hepatocytes is induced by cytokines. Hepatocytes presenting a putative MHC class II molecule-associated autoantigen could thus become the target of an immune attack mediated by CD4+ T cells. In addition, corticosteroid treatment was observed to significantly decrease MHC class II expression in DH hepatocytes. Inappropriate MHC class II expression in hepatocytes and mononuclear cell infiltration are suggesting an autoimmune nature for chronic hepatitis in Dobermans.

Animals↗

Gene organization of DC and DX subregions of the human major histocompatibility complex.

The DC and DX subregions of the human major histocompatibility complex (MHC) have been cloned from a cosmid library made from a human B-cell line, Priess. The DC subregion, 48 kilobases, includes the DC alpha and DC beta genes. A second DC-like region, the DX subregion, 35 kilobases, contains the DX alpha gene and a newly found beta gene termed DX beta. Since the DC and DX genes are highly homologous in nucleotide sequence, gene size, exon-intron organization, and direction of transcription, the DC and DX subregions were presumably generated by duplication of an ancestral alpha-beta gene pair. Nucleotide sequencing indicates that all four genes have intact coding sequences and promoter regions. Homology between the upstream promoter sequences of these four genes and seven other class II genes at nucleotides -69 to -78 and -98 to -110 highlights these previously described conserved elements. Moreover, a striking conservation of flanking alpha-gene-specific and beta-gene-specific sequences has been observed. Comparison of Southern blots of Priess DNA with DC alpha and DC beta cDNA probes with isolated cosmid clones showed that (i) the human chromosome encodes only two DC alpha-related and two DC beta-related genes, namely, DC alpha, DX alpha, DC beta, and DX beta, and (ii) the DC and DX subregions are homozygous in Priess cells.

Chromosome Mapping↗

Recognition of major histocompatibility complex antigens on murine glial cells.

Recognition of autologous major histocompatibility complex (MHC) antigens by T cells is an essential step in the induction of an immunologic reaction to either endogenous or exogenous antigens. We investigated the ability of murine glial cells of different ages to stimulate clones of allospecific T lymphocytes. We also investigated the effects of supernatants from cultures of activated T cells on the immunologic recognition of MHC antigens on murine glial cells. Lymphocyte clones specific for Class I, Class II and non-MHC, background antigens were obtained from C57B1/6J-anti-DBA/2 mixed lymphocyte cultures. Glial cell cultures were prepared from newborn syngeneic (C57B1/6J) and allogeneic (DBA/2) mouse brains. Glial cultures 1-4 weeks of age were able to stimulate alpha-Class I-specific clones. No stimulation of alpha-Class II or alpha-background clones was noted. Incubation of glial cells with supernatants from cultures of alloantigen-activated spleen cells (C57B1/6J-anti-DBA/2) resulted in a decreased ability of glial cells to stimulate alpha-Class I responses. In contrast supernatant-treated cultures acquired the capacity to stimulate alpha-Class II-specific clones. No responses were noted in clones responsive to non-MHC antigens. The ability to stimulate alpha-Class II-specific clones was most prominent with one-week-old glial cultures and was lost by four weeks of culture. The increased susceptibility of younger glial cultures to the modulatory effects of lymphokines from activated T cells may be a factor in the increased susceptibility of the immature central nervous system to persistent viral infections and the development of autoimmune phenomena.

Animals↗

Proteolysis of the heavy chain of major histocompatibility complex class I antigens by complement component C1s.

The major histocompatibility complex (MHC) class I antigens contain a light chain, beta 2-microglobulin, non-covalently associated to the transmembrane heavy alpha-chain carrying the allotypic determinants. Since the C1q complement component is known to associate with beta 2-microglobulin, and we recently found that activated C1s complement was capable of cleaving beta 2-microglobulin, we decided to investigate the proteolytic activity of C1 complement towards the heavy chain of class I antigens. Our results demonstrate that human C1s complement cleaves the heavy chain of human class I antigens into at least two fragments, with apparent molecular weights of 22,000 and 24,000 g/mol on sodium dodecyl sulphate-polyacrylamide gel electrophoresis (SDS-PAGE), under both reducing and non-reducing conditions. The cleavage of the heavy chain is inhibited by the presence of C1 esterase inhibitor. The molecular weights of the fragments are in agreement with the cleavage located in the area between the disulphide loops of the alpha 2-and alpha 3-domains of the heavy chain. In addition human C1s complement is able to cleave H-2 antigens from mouse in a similar fashion but not rat MHC class I antigen or mouse MHC class II antigen (I-Ad). Mouse MHC class I antigen-specific determinants could also be detected in supernatant from mouse spleen cells incubated with C1r and C1s. These results indicate the presence in the body fluids of a non-membrane-bound soluble form of the alpha 1-and alpha 2-domains which represent the binding site for antigenic peptides.

Animals↗

Complement genes of the major histocompatibility complex (complotypes), extended haplotypes and disease markers.

The human major histocompatibility complex (MHC)-linked genes C2,BF,C4A,C4B occur in populations and segregate in families as single genetic units or complotypes. Analysis for significant three-point linkage disequilibrium between HLA-B, DR and complotype on normal caucasian chromosomes 6p yields about a dozen haplotypes that account for most of the known HLA-B/HLA-DR linkage disequilibrium pairs previously noted in normal caucasian populations. We refer to the HLA-B/DR/complotype sets with significant linkage disequilibrium as extended haplotypes since they often show limited variation at other MHC-linked loci. From the study of MHC haplotypes in 21-hydroxylase deficiency, C2 deficiency and type 1 diabetes, it is becoming apparent that it is extended haplotypes rather than their individual alleles that are markers for these MHC-associated diseases.

Adrenal Hyperplasia, Congenital↗

Olfactory cues associated with the major histocompatibility complex.

Besides its immunological function of self/non-self discrimination the major histocompatibility complex (MHC) has been recognized as a possible source of individual specific body odors. Dating back to speculations on the role of the extraordinary polymorphism of the MHC as background of an individual chemosensory identity and to early observations of MHC-dependent mate choice in inbred strains of mice, systematic experimental studies revealed a first evidence for H-2 related body odors in this species. Meanwhile a large number of animal studies with rodents and a series of field studies and experiments with humans have extended our knowledge of MHC-related odor signals and substantiated the hypothesis of immunogenetic associated odor types. These results suggest that the most prominent feature of the MHC, its extraordinary genetic diversity, seems in part to be selectively maintained by behavioral mechanisms which operate in contemporary natural populations. The high degree of heterozygosity found in natural populations of most species seems to be promoted by non-disease-based selection such as mating preferences and selective block of pregnancy.

Animals↗

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↗

Major histocompatibility complex status in breast carcinogenesis and relationship to apoptosis.

Major histocompatibility complex (MHC) molecules are of central importance in regulating the immune response against tumors. In this study we used immunohistochemistry to study human leukocyte antigen (HLA) class I and II antigen expression in normal breast tissues and benign, preneoplastic, primary, and metastatic breast lesions using antibodies against beta-2-microglobulin (beta2-m), heavy-chain, and HLA-DR antigens. Whereas all normal tissues and benign lesions were positive for beta2-m and HLA-A, -B, and -C antigens, total loss of HLA class I antigens was found in 37% (11 of 30) of in situ carcinomas, in 43% (56 of 131) of the primary tumors, and in 70% (31 of 45) of the lymph node metastases. HLA-DR was also underexpressed in breast cancer cells; thus 20% (6 of 30) of in situ carcinomas, 15% of invasive carcinomas (20 of 131), and only 1 metastatic case were positive for this antigen. Both HLA class I and II antigen expression were more frequently down-regulated in metastatic lesions than in primary breast lesions (P <0.05), and a tendency toward a simultaneous defective expression of HLA class I and II antigens was observed in primary carcinomas (P = 0.07). However, no correlation was found between the expression of any of the aforementioned molecules and pathological parameters or survival. Interestingly, HLA class I expression was expressed more frequently in tissues with high apoptotic activity and was significantly associated with the expression of the proapoptotic bax gene (P = 0.02), and was inversely associated with expression of the antiapoptotic bcl-2 gene (P = 0.03). We conclude that alterations in HLA class I and II antigen expression are early events in breast carcinogenesis and play significant roles in metastatic progression. In addition, their expression is correlated with apoptosis-regulating proteins, which may influence the cytotoxicity of T cells against HLA class I-specific tumor antigens.

Adult↗

Sequence of gene and cDNA encoding murine major histocompatibility complex class II gene A beta 2.

The murine major histocompatibility complex is known to express two class II molecules, A and E. They are composed of one alpha- and one beta-polypeptide chain. Recently, we reported the finding of an additional beta-chain second domain exon tentatively designated A beta 2. We describe here the nucleotide sequence of the A beta 2 gene and an A beta 2 cDNA clone. A beta 2 displays the same exon organization as the known expressed beta-chain genes, and the predicted A beta 2 polypeptide shows all the characteristic features of the expressed beta-chains. The predicted A beta 2 polypeptide shows 49-56% amino acid sequence identity to A beta and E beta chains and to the human DP, DQ, and DR beta-chains. These are 63-79% homologous to each other, indicating that A beta 2 is the most divergent member of the beta-chain family. The A beta 2 gene seems to be transcribed in the same types of cells as other class II genes. Detection of incompletely spliced A beta 2 mRNA and the finding of a cDNA clone containing an intron segment suggest that A beta 2 transcripts are processed slowly. Hybridizations with A beta 2 probes to restriction enzyme-digested genomic DNA indicate that the A beta 2 gene displays lower allelic polymorphism than the A beta gene.

Amino Acid Sequence↗