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The canine major histocompatibility complex. Population study of DLA-D alleles using a panel of homozygous typing cells.

The frequencies of 12 DLA-D alleles in a random canine population were determined in one-way mixed lymphocyte cultures using a panel of homozygous typing cells established in this laboratory. The homozygous typing cells served as stimulators for responder lymphocytes obtained from 160 random dogs. The results of these studies were compared to those with lymphocytes from 75 dogs in our research laboratory. DLA-D allelic frequencies were estimated by maximum likelihood techniques. The use of a relative response (RR) less than or equal to 5% as a definition of a typing response resulted in the recognition of a total allele frequency of 59% in dogs from the research laboratory. Three of the 12 DLA-D alleles were not detected. Typing responses of cells from random dogs to the 12 DLA-D alleles were determined using RRs less than or equal to 5%, less than or equal to 10%, less than or equal to 15%, and less than or equal to 20%. With RRs of less than or equal to 5%, less than or equal to 10%, and less than or equal to 15%, the total allele frequencies recognized were 39%, 47%, and 55%, respectively. Within each of these % RR ranges all but one of the DLA-D alleles were detected. With an RR less than or equal to 20% the total allele frequency recognized was 58% and all 12 alleles were detected. Our results indicate that an RR of less than or equal to 10% could be used to define a phenotypic DLA-D typing response in the dog. The level of allelic frequencies detected in both the research and random canine populations indicates the need to identify additional DLA-D alleles through expanded family studies using mixed lymphocyte culture and homozygous cell typing.

Animals↗

HLA and trophoblastic disease.

The susceptibility of trophoblastic diseases is not associated with HLA antigens. Compatibility studies between the patient and her husband, and the patient and the tumour suggest that it may not play an important role in the susceptibility or the progression of the tumour. This as well as other direct evidence indicate that the tumour cells probably do not express much HLA antigens on their cell surface. The expression of HLA antigens on normal and abnormal trophoblasts are discussed.

Antibody Formation↗

A radiolabeled antiglobulin test for crossmatching platelet transfusions.

Despite the use of HLA-matched platelets for alloimmunized recipients, transfusion failures occur. In order to reduce these failures, we investigated the use of a radiolabeled antiglobulin technique for platelet crossmatching. The principle of the test is that of an indirect Coombs test using 125I labeled goat anti-human IgG. Incompatibility is determined by calculating a radioactivity antiglobulin test (RAGT) index. Using this technique, we performed 89 crossmatches on 19 leukemic or aplastic patients who were refractory to random donor platelets and receiving varying degrees of HLA-matched platelets. Effectiveness of the transfusion was assessed from the posttransfusion corrected platelet count increment (CCI) determined at 1 and 20 hr. When the RAGT index was 1.9 or less, the mean CCI at 1 lhr was 17,570 +/- 7003/cu mm, n = 55. When the RAGT index was 2.0 or greater, the mean CCI was 4237 +/- 4100/cu mm, n = 34. At 20 hr when the RAGT index was 1.9 or less, the mean CCI was 8722 +/- 3143/cu mm, n = 33, and when the index was 2.0 or greater, the mean CCI was 571 +/- 1286/cu mm, n = 23. Using this technique, one false negative resulted. Nine positive crossmatches with good increments at 1 hr were found; at 20 hr, however, the survival of these units was zero. These data suggest that this method is a useful adjunct in the selection of platelets in the refractory patient.

Adolescent↗

HLA--C antigens on platelets.

The direct demonstration of HLA-C antigens Cw2, Cw-3, and Cw4 on human platelets is described. The antigens were detected by means of a platelet radioimmune anti-IgG test using acid eluates from platelets and lymphocytotoxic antisera. It is concluded that HLA-C determinants are only weakly expressed on platelets. Individual differences observed reflect antigenic variations.

Antibodies, Anti-Idiotypic↗

Immunogenetic analysis of 5 families with multicase occurrence of scleroderma and/or related variants.

OBJECTIVE: To investigate the relative contribution of the major histocompatibility (MHC) gene complex in the etiopathogenesis of familial scleroderma and/or its variants, in 5 Australian families, each with 2 affected members. METHODS: Affected individuals and consenting first degree relatives were examined and had blood collected for histocompatibility leukocyte (HLA) class I, class II antigen, and complement C4 typing. An antinuclear (ANA) profile screen on each family member was performed. RESULTS: Family 1, had 2 affected siblings (scleroderma, CREST), each anticentromere positive (> 1/640 titer), with identical HLA haplotypes. A brother, who was HLA identical to his affected sisters was clinically normal and ANA negative. In Family 2, there were no HLA haplotype similarities between the 2 sisters affected with diffuse scleroderma. Both were ANA positive (> 1/640). A 3rd sister was HLA identical to the proband but was clinically normal and ANA negative. In Family 3, affected siblings (CREST, morphea) had identical HLA haplotypes. In Family 4, both mother (CREST) and one of her 2 daughters (scleroderma) had anticentromere antibodies (1/2560). The unaffected daughter, not sharing either of her sister's haplotypes, was normal and ANA negative. In Family 5, 2 sisters (CREST, CREST) were HLA identical. CONCLUSION: A female predominance in familial scleroderma was observed. There was no common HLA haplotype between different families affected with scleroderma or its disease variants. Within families (except in one case, where the possibility of crossover exists or a question of paternity) affected siblings shared both HLA haplotypes. The development of disease was not totally accounted for by HLA genes, since family members with the same HLA haplotypes as the proband, were not affected. It appears that genes within the MHC complex are required but are not sufficient for the development of systemic sclerosis.

Adolescent↗

A human minor histocompatibility antigen which appears to segregate with the major histocompatibility complex.

We obtained a cell line (So1) from a patient who rejected a T-depleted allogeneic BMT. Cytotoxic activity by cell-mediated lympholysis was found using So1 as effector and EBV-transformed donor B cells as targets, but no lysis of the patient's pretransplantation cells and of an unrelated HLA-nonidentical subject was observed, suggesting it was related to recognition of a minor transplantation antigen which could have contributed to rejection of the graft. To define the HLA-restricting element(s), cell-mediated lympholysis experiments were performed with several B cell lines as targets. So1 lysed only targets sharing an HLA-B44 antigen with the patient, thus demonstrating that the minor transplantation antigen recognized was restricted by HLA-B44. The absence of lysis against the patient's pretransplantation cells may be related to the absence of the minor antigen, suggesting that the patient's cytotoxic lymphocytes able to recognize a minor transplantation antigen on the donor cells contributed to the rejection of the HLA-identical graft. Mendelian segregation of this minor antigen was found in familial studies. Lysis was observed with cells from members of 2 families who had an association of HLA-B44 antigen in the haplotype and the minor antigen, whereas in 2 other HLA-B44-positive families, no lysis was found, probably because this minor antigen was absent. Furthermore, these family studies: (1) demonstrated that this minor antigen segregates with the MHC, suggesting its localization on chromosome 6; and (2) showed a close relationship between the minor antigen and HLA-B44, strongly suggesting a linkage disequilibrium between the minor antigen and its restriction antigen B44.

Adult↗

MHC class III polymorphisms in selection of donors for BMT.

Current practice for the selection of unrelated donors involves serological typing of HLA-A, -B and -DR antigens, DNA analysis of the class II region and the MLR. However, even after matching for the class II loci at the DNA level, a significant proportion of matched unrelated pairs remain MLR reactive. Ideal matching for BMT would be a match for the whole MHC haplotype rather than individual HLA loci. In the present study, we have evaluated the complementary role of class III typing in determining MHC identity. A group of 86 donor/recipient pairs, of which 14 were unrelated, was investigated using C4, Bf, HSP70 and TNF DNA probes. Phenotypically HLA-matched siblings were always identical at the C4 locus which is the most polymorphic of all the loci examined. Nine of the 14 HLA serologically matched MLR non-reactive (RRI < 20%) unrelated pairs had class III mismatching. Four of these pairs with class III mismatching were matched at the DRB and DQB loci by RFLP analysis. These results demonstrate that serological identity, DRB/DQB RFLP-matching and a negative MLR do not always match the whole haplotype in unrelated pairs. It can be concluded that the linkage of the class III loci to both HLA regions makes this region a reliable marker of the whole MHC haplotype.

Bone Marrow Transplantation↗

Minor histocompatibility antigens HA-1-, -2-, and -4-, and HY-specific cytotoxic T-cell clones inhibit human hematopoietic progenitor cell growth by a mechanism that is dependent on direct cell-cell contact.

HLA-identical bone marrow transplantation (BMT) may be complicated by graft-versus-host disease or graft rejection. Both complications are thought to be initiated by recognition of minor histocompatibility (mH) antigens by HLA-restricted mH-antigen-specific T lymphocytes. Using HLA-A2-restricted mH antigens HA-1-, -2-, and -4-, and HY-specific cytotoxic T lymphocyte (CTL) clones, we studied the recognition by these CTL clones of interleukin-2 (IL-2)-stimulated T cells (IL-2 blasts), BM mononuclear cells (BMMNCs), and hematopoietic progenitor cells (HPCs). We showed that, when IL-2 blasts from the BM donors who were investigated were recognized by the HA-1-, -2-, and -4-, and HY-specific CTL clones, their BMMNCs and HPCs were recognized as well by these CTL clones, resulting in antigen-specific growth inhibition of erythrocyte burst-forming units (BFU-E), colony-forming units-granulocyte (CFU-G), and CFU-macrophage (CFU-M). the HA-2-specific CTL clone, however, inhibited BFU-E and CFU-G growth from four donors to a lesser extent than from two other donors. We further investigated whether inhibitory cytokines released into the culture medium by the antigen-specific stimulated CTLs or by stimulated BMMNCs were responsible for suppression of HPC growth or whether this effect was caused by direct cell-cell contact between CTLs and HPCs. HPC growth inhibition was only observed after preincubation of BMMNCs and CTLs together for 4 hours before plating the cells in semisolid HPC culture medium. When no cell-cell contact was permitted before plating, neither antigen-stimulated CTL nor antigen-nonstimulated CTLs provoked HPC growth inhibition. Culturing BMMNCs in the presence of supernatants harvested after incubation of BMMNCs and CTL clones together for 4 or 72 hours did also not result in HPC growth inhibition. Both suppression of HPC growth and lysis of IL-2 blasts and BMMNCs in the 51Cr-release assay appeared to be dependent on direct cell-cell contact between target cells and CTLs and were not caused by the release of inhibitory cytokines into the culture medium by antigen-specific stimulated CTLs or by stimulated BMMNCs. Our results show that mH-antigen-specific CTLs can inhibit HPC growth by a direct cytolytic effect and may therefore be responsible for BM graft rejection after HLA-identical BMT.

Bone Marrow Cells↗