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Recovery of lymphocytes from clotted blood for HLA typing.

A method to recover lymphoid cells from clotted blood for the microcytotoxicity test used in HLA typing is described. The procedure consists of disruption of the clotted blood followed by Ficoll-Hypaque gradient purification of the mononuclear cells. The results of HLA typing of lymphocytes from unclotted and clotted blood were identical.

Blood Coagulation↗

Techniques used to define human MHC antigens: serology.

The classical, routine test employed for definition of HLA antigens expressed in humans (tissue typing) is the complement-mediated cytotoxicity assay developed by Terasaki and McClelland in the early 1960s. In both healthy persons and patients, the assay target cells are usually lymphocytes obtained from peripheral blood, but when typing cadaver donors, splenic or lymph node lymphocytes can be used. HLA-A, B, Cw (class I) antigens are expressed on all nucleated cells while HLA-DR, DQ (class II) are restricted to B lymphocytes and immune activated cells. Tissue typing has been achieved using culture cells from amniocentesis and typing of cell lines is possible with small modifications to the standardised cytotoxicity assay. Usually, target cells are incubated under oil with typing antisera at 22 degrees C in a 60- or 72-well Terasaki tray. After 30 min rabbit serum is added as a source of complement. After a further 60 min incubation the test is stained. A positive reaction results in target cell death. There are local variations to this test. Automation of the assay is now commonplace, from reagent dispensing to automated reading of finished assay. The use of antibody-coated magnetisable microspheres has enabled separation of pure B lymphocyte samples for class II typing and has reduced incubation times through antigen modulation. It is possible to define antibodies to HLA antigens in the same assay using target cells with known HLA phenotypes.

Complement System Proteins↗

HLA genotypes and variant alleles in Sudanese families of Arab-Negroid tribal origin.

The indigenous population of the Blue Nile Province, Sudan, is an Arab-Negroid admixture, although some isolates of west African origin (Fallata) have begun to intermix with the indigenous population. Consanguineous marriages are common in these Muslim families. Members of 22 nuclear families were typed for HLA class I and II antigens using complement-dependent microcytotoxicity with Ninth International Workshop (9th WS) and local reagents. Considerable polymorphism was observed at each locus with a majority of the World Health Organization (WHO)-recognized alleles represented in the parental sample, albeit at low frequency. Seven parental haplotypes carried A locus alleles which were not identical to WHO-recognized specificities. All appeared to be Aw19-related specificities. Five B locus serologic variants were observed; all appeared distinct from WHO-recognized specificities. In one family we observed a new DR-DQ association; DR4 segregated with DQw2, rather than with DQw3. As has been observed for several other genetic systems in these tribes, considerable polymorphism was found for all class I and class II gene products in spite of a high level of consanguinity. Tribal admixture and/or a selective advantage in protecting the population against disease may account for this unexpectedly high level of heterozygosity.

Black People↗

Updated results of the United Kingdom linkage-based genome screen in multiple sclerosis.

In 1996, we reported the results of a linkage genome screen based on 129 UK multiple sclerosis multiplex families, together with follow-up typing of interesting regions in a second set of families. We have now completed screening the remainder of the genome in this second set of United Kingdom families by typing 242 microsatellite markers. These data have been analysed together with those previously published, resulting in the largest currently available whole genome linkage dataset from a single population in multiple sclerosis. Four new regions of potential linkage (chromosomes 10p, 11p, 19p, 20p) not previously described were identified. In the combined analysis of all 226 families, a total of five regions of suggestive linkage are seen (chromosomes 1p, 6p, 14q, 17q, Xq), where only one would have been expected to occur by chance alone.

Alleles↗

Refining the analysis of a whole genome linkage disequilibrium association map: the United Kingdom results.

Individual genotyping of the 10 most promising markers identified in our previously reported screen for linkage disequilibrium (LD) in multiple sclerosis identified a number of effects which confound the analysis and are of general importance in the interpretation of results obtained using microsatellite markers typed in pooled DNA. In order to identify and characterise these effects, we individually genotyped 529 promising markers in 16 trio families. We then devised adapting factors, which were designed to correct for these confounders. This more extensive analysis of the previously published UK data set and the repeat analyses incorporating these adaptations led to the identification of two novel markers that may be associated with multiple sclerosis in this population, providing a close correlation between the results of pooled analysis and individual typing.

Dinucleotide Repeats↗

Two genome-wide linkage disequilibrium screens in Scandinavian multiple sclerosis patients.

We report the first two genome-wide screens for linkage disequilibrium between putative multiple sclerosis (MS) susceptibility genes and genetic markers performed in the genetically homogenous Scandinavian population, using 6000 microsatellite markers and DNA pools of approximately 200 MS cases and 200 controls in each screen. Usable data were achieved from the same 3331 markers in both screens. Nine markers from eight genomic regions (1p33, 3q13, 6p21, 6q14, 7p22, 9p21, 9q21 and Xq22) were identified as potentially associated with MS in both screens.

Alleles↗

Immunogenomics of hematopoietic stem cell transplantation.

Recipients of allogeneic hematopoietic stem cell transplantation (HSCT) incur the risk of graft-versus-host disease even when the donor is a sibling who shares the Major Histocompatibility Antigens. Therefore, even the perfect HLA match does not represent the optimal genetic match between donors and recipients in HSCT. In addition to the HLA complex other genetic systems operate and affect the outcome of HSCT. These include minor histocompatibility systems (Martin P. Applicability of matching for minor histocompatibility antigens in human bone marrow transplantation. In: Roopenian DC, Simpson E, editors. Minor histocompatibility antigens: From the laboratory to the clinic. Georgetown: Landis Bioscience; 2000. p. 97-103) (inducing bona fide allogeneic responses) as well as a series of functional polymorphisms in cytokines and chemokines and receptors genes (Transplantation 1997;64:553). Among the items affecting the outcome of HSCT the incidence and severity of infections have an important impact. Polymorphisms of genes controlling both arms of the immune responses to pathogens (innate versus cognate) are strong candidates for susceptibility factors to infection in allogeneic transplantation. These include the MHC alleles (HLA class I, class II, MIC) CD1, Toll and TLR genes MBP, MPO genes, ...). In addition to the NK alloreactivity induced by HLA class I epitopes mismatching (a common situation in HSCT) variations in the genotype of the KIR genes (Tissue Antigens 2001;57:358) may also be encountered between the donor and the recipient leading to potentially harmful or beneficial combinations. An integrated knowledge of the role and hierarchy of the most important genetic factors (MHC and non-MHC) will provide the rationale for a comprehensive matching in HSCT (Curr Opin Hematol 3 (1996) 416). This short review provides a panorama of this strategic issue for further development of HSCT.

Graft vs Host Disease↗

A novel immunomodulator KRP-203 combined with cyclosporine prolonged graft survival and abrogated transplant vasculopathy in rat heart allografts.

To find more effective and less toxic immunosuppressive strategies in long-term treatment for organ transplantation patients, we examined the effects on rat heart allograft survival of a novel sphigosine-1-phosphate receptor agonist, KRP-203, combined with a subtherapeutic dose of cyclosporine (CsA). Rat heart transplantation was performed across a major histocompatibility complex-incompatible (DA to LEW) rat combination. KRP-203 alone showed little or no effect on heart allograft survival. In contrast, KRP-203 combined with a subtherapeutic dose of CsA led to prolonged allograft survival. Histologic analyses showed that the combination completely suppressed acute rejection, as characterized by allograft vasculopathy, mononuclear cell infiltration, and myocardial necrosis in the heart allografts. RT-PCR analysis showed that the allografts treated with CsA or KRP-203 alone showed no suppression of IL-10, IFN-gamma, and TNF-alpha mRNA expression, but when combined with a subtherapeutic dose of CsA it completely suppressed their mRNA expressions. Furthermore, the combination treatment reduced donor-specific antibody production. KRP-203 combined with a subtherapeutic dose of CsA synergistically prolonged rat heart allograft survival. The combination of CsA with KRP-203 may provide an option to prevent allograft rejection and reduce adverse effects.

Animals↗

Different routes of donor-derived hematopoietic stem cell transplantation for donor-specific chimerism induction across MHC barrier.

Transplantation of donor-derived stem cells can improve organ allograft survival in animal models. This study was designed to investigate the effect of different routes of bone marrow cell (BMC) transplantation on donor-specific tolerance induction across MHC barrier under short-term CsA monotherapy and alphabetaTCR/CsA treatment protocols. Forty-eight BMC transplantations were performed between BN(RT1(n)) donors and LEW(RT1(1)) recipients. Intraosseous and intravenous BMC transplantation was studied in six groups of eight animals each receiving 35 x 10(6) (n = 4) and 70 x 10(6) (n = 4) bone marrow cells. Groups I and II (controls) received BMC transplantation but no treatment, groups III and IV CsA monotherapy, and groups V, VI alphabetaTCR/CsA protocol for 7 days. Flow cytometry monitored immunodepletion and donor-specific chimerism for MHC class I RT1(n)/CD4, RT1(n)/CD8 and RT1(n)/CD45RA antigens. All animals survived without graft-versus-host disease. At day 63 under CsA monotherapy a low level of chimerism for RT1(n)/CD4 was induced after intraosseous (1.9%) and intravenous (0.8%) transplantation of (70 x 10(6)) BMC. Under alphabetaTCR/CsA protocol chimerism for RT1(n)/CD4 revealed 6.5% and 0.9% in intraosseous and intravenous (70 x 10(6)) BMC transplantation, respectively. The total number of chimerism in intraosseous and intravenous (70 x 10(6)) BMC transplantation groups was 9.9% and 3.4%, respectively. Following intraosseous BMC transplantation under alphabetaTCR/CsA protocol chimerism was 50% higher in a group receiving 70 x 10(6) (9.9%) vs 35 x 10(6) (4.9%) BMC. Intraosseous transplantation of donor BMC under alphabetaTCR/CsA protocol was 75% more efficient in induction of donor-specific chimerism compared to intravenous transplantation.

Animals↗

Association between alleles of the ovine major histocompatibility complex and resistance to footrot.

Variation in natural resistance to footrot may be genetically derived, implying that genetic markers for resistance may exist and allow selection of superior animals. In this study association between variation within the ovine MHC class II region and resistance to footrot was investigated in two trials. Half-sib progeny were subjected to a field challenge with footrot and their condition subsequently recorded. The animals were then typed at their MHC class II loci to investigate associations between inherited paternal haplotype and footrot status. In the first trial an association between MHC haplotype and footrot status was observed across all animals (P = 0.005), when the self-curing and resistant animals were combined (P = 0.002) and when the self-curing animals were excluded from the analysis (P = 0.001). No association was observed in the second trial, a result attributed to the dry weather conditions which led to poor disease transmission and unreliable disease classification.

Alleles↗

Lymphocyte-dependent antibody cross-matching for transplant patients.

Cadaver donor transplant patients who had a negative complement-dependent cytotoxicity cross-match test were tested in parallel with the specific donor at the time of transplantation by the lymphocyte-dependent antibody (L.D.A.) test. Transplants were performed on the basis of negative standard and long (2-5-hour) ment-dependent cross-match tests and the results of the L.D.A. test were withheld from the transplant centres. Of the 57 transplants tested, 49 had a negative L.D.A. result with 74 percent one-month function whereas 8 had a positive L.D.A. Result with 25 percent one-month function (P smaller than 0-02). When the results were further divided into methods of preservation of donor kidneys, among L.D.A.-Negative transplants, of the 20 kidneys preserved by Collins Sacks solution, 95 percent were functional at one month, whereas of the 28 kidneys preserved on the Belzer machine, 64 percent were functional at one month (P smaller than 0-05). The risk of the most hazardous period of transplantation (i. e., the first month) may be reduced drastically by simple preservation methods and the se of L.D.A. cross-matching.

Antibodies↗

Kidney transplantatability across a positive cross-match. Cross-match assays and distribution of B lymphocytes in donor tissues.

Lymphocyte subpopulations were determined in peripheral blood, abdominal lymph-nodes, and spleens from renal allograft donors. Percentages of B lymphocytes were low in peripheral blood (mean +/- S.E., 10-0 +/- 1-0%), variable in lymph-nodes (28-8 +/- 3-8), and high in spleens (41-4 +/- 2-1). Microlym-phocytotoxicity cross-match assays in which sera with B-cell-specific antibody were used were invariably negative with peripheral-blood lymphocytes but positive with lymph-node or spleen preparations. Four renal allografts were transplanted when the standard cross-match was positive with spleen or lymph-node but negative with blood. No hyperacute or accelerated rejection was observed. Potential recipients are often denied allografts because of a positive cross-match with either lymph-node or splenic preparations, and this could be avoided in some cases if cross-matches were performed on peripheral blood or B-lymphocyte-depleted splenic or lymph-node preparations. These results accord with those of other workers who found that B-cell pre-sensitisation is not a contraindication to transplantation.

Antibodies↗

HLA alloantibodies and the mechanism of the antiglobulin-augmented lymphocytotoxicity procedure.

HLA Class I alloantigens express multiple epitopes which can be defined serologically using human HLA alloantibodies (aAb). We have shown that the vast majority of HLA antisera exhibit the CYNAP phenomenon (complement-dependent cytotoxicity (CDC) negative, adsorption positive) which can be identified by conversion to direct CDC positive reactivity with the addition of an antihuman immunoglobulin (Ig) light chain (AHG) reagent. In this study, the immunochemical mechanisms responsible for the CYNAP phenomena and how AHG overrides CYNAP have been further characterized using affinity-purified HLA aAb, class-specific anti-IgH reagents and human C1q binding assays quantified by flow cytometry. We have found that CYNAP reactions are not the result of low affinity aAb or generally caused by non-complement fixing HLA aAb. Our experiments illustrate that only anti-human IgL AHG reagents can consistently augment CDC and override CYNAP; anti-IgH have not effective. Two noncompeting HLA aAb of different epitopic specificity or one aAb in conjunction with the AHG-augmenting reagent results in striking synergy with a 200 to 400% increase in binding of C1q. We conclude from these and other experiments detailed in this article that an IgM aAb or either two adjacent, noncompeting IgG HLA aAb bound to spatially distinct epitopes on a single HLA molecule or a monospecific IgG HLA aAb in concert with the AHG binding to this HLA aAb, is required for efficient (bivalent) C1q binding and initiation of C-mediated lympholysis. In contrast, the CYNAP phenomenon usually occurs because monospecific HLA aAb directed against a single epitope cannot effect high affinity, bivalent interaction with Clq and activate complement that would ultimately lead to cytolysis.

Antibodies, Anti-Idiotypic↗