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Differences between C4A and C4B in the handling of immune complexes: the enhancement of CR1 binding is more important than the inhibition of immunoprecipitation.

There are two isotypes of C4--C4A and C4B--, encoded within the major histocompatibility complex with quite different properties. In this study we have compared purified C4A and C4B with regard to their ability to prevent immune complex precipitation and to enhance the binding of both preformed and nascent immune complexes to the receptor CR1 on red cells. C4A was modestly more effective than C4B at inhibiting immunoprecipitation, particularly in antibody excess. In the CR1 binding assay C4A was markedly more effective than C4B in enhancing binding to CR1. This difference was seen with both preformed and nascent immune complexes at equivalence and antibody excess. Thus the major differences between C4A and C4B in regard to immune complex handling is at the level of CR1 binding. Given the strong association of C4A* QO alleles with immune complex-mediated diseases like systemic lupus erythematosus, these findings have important pathogenetic implications.

Antigen-Antibody Complex

C4 phenotypic variation suggests an unusual class III gene organization.

The class III gene markers, C4A, C4B, C2 and BF were determined in 26 HLA genotyped families. In 6 of these families the inheritance of the C4A electrophoretic phenotype, C4A 3, A 2 could not be explained assuming the genetic model that the C4A component is controlled by only one locus (C4A) and suggests that both C4A 3 and C4A 2 are encoded by the same chromosome. This apparently duplicated C4A locus haplotype is common in Northern Europeans occurring at a frequency of at least 6%. In 4 families the C4A 3, A 2 'variant' occurred together with HLA-Bw35 and in 2 together with HLA-Bw55. Furthermore, it was striking that in each family the C4A 3, A 2 'variant' was found exclusively with the complotype FC3/20 which encodes no phenotypically expressed C4B locus product.

Alleles

Gene organization of haplotypes expressing two different C4A allotypes.

The gene organization of C4 haplotypes expressing two different C4A allotypes with a C4B null allele (C4A3A2BQ0 and C4A3A6BQO) was studied using Southern blot analysis with cDNA probes and restriction enzymes which give C4A and C4B locus-specific restriction fragments. These haplotypes were shown to have both a C4A and a C4B locus present, suggesting that the C4B locus expresses a C4A protein. The finding of a 21-OH A and a 21-OH B gene on the C4A3A6BQO haplotype further suggests that this haplotype has the common gene organization C4A, 21-OH A, C4B, 21-OH B. A model explaining C4 null alleles on haplotypes found to have two C4 loci is presented.

Alleles

Characterization of two hybrid C4 allotypes (C4A*12 and C4B*3) by electrophoretic, serological and restriction fragment length polymorphism analyses.

Informative pedigree analysis of two rare C4 allotypes is reported. One proband was C4A deficient as a consequence of having one haplotype with a deleted C4A gene, and the second haplotype with two C4B genes--one encoding the common C4B*1 and one encoding a unique hybrid gene product C4B*3. C4B*3 had approximately normal C4B hemolytic activity, a single alpha-chain of MR 94,000 by SDS-PAGE but was positive for Rg:1,2 by hemagglutination inhibition (HAI) and for Rg:1 by Western blotting. The hybrid nature was confirmed by RFLP analysis with a Rg:1-associated fragment by Eco0109 digestion but no C4A-associated fragments by N1aIV digestion were identified. A gene conversion at Locus I which included just the C4 isotype region could explain the structure of C4B*3. The second pedigree had a Rodgers negative C4A*12 allotype. This C4A gene, which segregated with a single 7.0 kb TaqI fragment, encoded a C4A alpha-chain, which was negative for Rg:1 epitope. The affected haplotype lacked the Rg:1-associated fragment by Eco0109 digestion yet had the C4A specific N1aIV digestion fragment. These studies successfully employed RFLP analyses to confirm serologic and electrophoretic observations.

Adolescent

Hypocomplementemia with low C1s-C1 inhibitor complex in systemic lupus erythematosus.

Ninety-three serum and plasma samples from 45 patients with systemic lupus erythematosus were analyzed for the complex formed by C1s and its inhibitor, as well as for C3, C4, C4a desarginine, and staphylococcal protein A-bound immune complexes. There were statistically significant correlations between C1s-C1 inhibitor complex and CH50, between C1s-C1 inhibitor complex and C4, and between C1s-C1 inhibitor complex and C4a desarginine. Serial studies were performed on 24 patients over a period of 6 months. Seven of 21 patients with hypocomplementemia had persistently normal levels of C1s-C1 inhibitor complex, 7 had transiently abnormal levels of C1s-C1 inhibitor complex, and 7 had sustained abnormal levels of C1s-C1 inhibitor complex. Two of 3 pregnant patients with normal levels of complement had abnormal levels of C1s-C1 inhibitor complex. Staphylococcal protein A-bound immune complexes demonstrated no correlation with any of the complement assays. Complement activation, as measured by C1s-C1 inhibitor complex, is often a transient phenomenon in systemic lupus erythematosus patients with persistent hypocomplementemia.

Antigen-Antibody Complex

Monoclonal antipeptide antibodies against amino acid residues 1101-1106 of human C4 distinguish C4A from C4B.

Comparison of amino acid sequences of the alpha-chain fragment of human C4, C4d, has shown C4A- and C4B-specific sequences at residues 1101-1106 in which the aspartic acid-histidine substitution at position 1106 may be related to the amide and ester bond forming properties of these molecules. Peptides containing twelve amino acid residues of the C4A- or C4B-specific sequences were synthesized and injected into female Balb/c mice. Serum from 2 mice, one immunized with the C4A-specific peptide and the other with the C4B-specific peptide, gave strong isotype-specific responses in an enzyme-linked immunosorbent assay against affinity-purified C4A3 and C4B2B1. Spleen cells from these mice were fused with the mouse myeloma SP2/0-Ag 14, and two cloned cell lines, AII-1 and BII-1, were established from hybrids. Enzyme-linked immunosorbent assay and western blotting of monoclonal antibodies AII-1 and BII-1 show that the former reacts with the C4A but not with the C4B alpha-chain and the latter with C4B but not with the C4A alpha-chain. Furthermore, immunoblotting of C4 allelic variants showed that AII-1 reacted with all C4A allotypes tested, including A6, A4, A3 and A2, whereas BII-1 reacted with all C4B allotypes tested, including B5, B3, B2, and B1.

Amino Acid Sequence

Demonstration of anaphylatoxins C3a, C4a and C5a in the scales of psoriasis and inflammatory pustular dermatoses.

Complement components C3a, C4a and C5a were assayed in corneal scale extracts from psoriasis and other dermatoses characterized by sterile subcorneal pustules, using radioimmunoassay. Larger amounts were detected in psoriasis and related pustular dermatoses than in extracts of non-inflammatory stratum corneum. It is concluded that complement is activated via the classical pathway and releases the neutrophil chemotactic fragment C5a.

Anaphylatoxins

Human C4 haplotypes with duplicated C4A or C4B.

In the course of study of families for the sixth chromosome markers HLA-A, C, B, D/DR, BF, and C2, the two loci for C4, C4A, and C4B, and glyoxalase I, we encountered five examples of probable duplication of one or the other of the two loci for C4. In one of these, both parents and one sib expressed two different structural genes for C4B, one sib expressed one, and one sib expressed none, suggesting that two C4B alleles were carried on a single haplotype: HLA-A2, B7, DR3, BFS1, C2C, C4A2, C4B1, C4B2, GLO1. In a second case, two siblings inherited C4B*1 and C4B*2 from one parent and C4B*Q0 from the other. This duplication appeared on the chromosome as HLA-AW33, B14, DR1, BFS, C2C, C4A2, C4B1, C4B2, GLO2. In a third, very large family with 3 generations, a duplication of the C4B locus occurred which was followed in 2 generations. In one individual, there were three C4B alleles and two C4A alleles. One of the C4B alleles had a hemolytically active product with electrophoretic mobility near C4B2 and was designated C4B*22. It segregated with C4B1 in the family studied. The complete haplotype was HLA-A11, CW1, BW56, DR5, BFS, C2C, C4A3, C4B22, C4B1, GLO2. In another family with 12 siblings, one parent and eight children expressed two C4A alleles on the haplotype HLA-AW30, BW38, DR1, BFF, C2C, C4A3, C4A2, C4BQ0, GLO1.(ABSTRACT TRUNCATED AT 250 WORDS)

Chromosome Mapping

Quantitation of the human component C4: definition of C4 Q0 alleles and C4A duplications.

We determined the C4 plasma concentrations of 48 genotypically CA4- and C4B-defined unrelated individuals from 34 families with a total of 196 members by an enzyme-linked immunosorbent assay using Rg:1,2 (C4A) and Ch:1 (C4B) specific monoclonal antibodies. The results obtained allowed the establishment of rules for the detection of C4 Q0 alleles in the heterozygous form and of C4A gene duplications. In the present study seven homoduplications of the C4A 3 allotype were defined which had not been detected by allotyping. This procedure allows the simple, reliable, and quick determination of Rg:1,2 and Ch:1 plasma levels which are not influenced by daily rhythms of C4 production.

Alleles

Heterogeneity of human C4 gene size. A large intron (6.5 kb) is present in all C4A genes and some C4B genes.

In this article we present a study showing that the human C4 genes differ in length because of the presence or absence of a 6.5 kb intron near the 5' end of the gene. DNA from individuals of known HLA, factor B, and C4 haplotypes was analyzed for restriction fragment length polymorphism (RFLP) by Southern blot analysis with C4-specific cDNA probes. The RFLP patterns obtained showed that the C4 genes are either 22.5 kb or 16 kb in length. They are referred to as long and short C4 genes, respectively. A population study was carried out to examine the distribution of the gene size according to C4 allotypes and haplotypes. Long C4 genes included all C4A genes studied and also some C4B allotypes, e.g., B1 on most C4 A3B1 haplotypes. Similarly, C4B null genes were found to be of the long form. Other C4B allotypes tested were found to be coded for by short C4 genes, including B2, B1 in C4 A6B1 and C4 AQOB1 (with a single C4B gene haplotype).

Complement C4

Cardiolipin antibodies and null alleles of C4 in black Americans with systemic lupus erythematosus.

Twelve of 44 black American patients with systemic lupus erythematosus (SLE) (27%) studied during periods of disease activity had increased levels of IgG antibodies against cardiolipin (IgG aCL). IgG aCL occurred almost exclusively in patients who had a partial genetic deficiency of C4A or C4B. Eleven of 29 patients (38%) with a C4A or C4B deficiency allele had IgG aCL, compared with 1/15 patients (7%) who did not have C4A or C4B deficiency allele (p = 0.04). During periods when SLE was less active clinically, IgG aCL levels returned to normal in 10/12 patients. Active SLE, rather than null alleles, appeared to be associated with low C4 levels in patients with IgG aCL.

Adult

Human C4 polymorphism: pedigree analysis of qualitative, quantitative, and functional parameters as a basis for phenotype interpretations.

Ten families with 82 members were investigated for C4A- and B polymorphism in a blind trial. Phenotyping was done on neuraminidase treated sera by immunofixation and simultaneously by hemolytic overlay electrophoresis. In addition Rg, Ch, BF, C2, HLA-A, B, C, DR, and GLO were determined. After decoding the samples the reliability of blind typing was found to be 84.4% according to segregation patterns. Inconsistencies occurred mostly when A4, A2, or A92 were present. The detection of silent A*Q0 and B*Q0 alleles was more critical than that of "difficult" allotypes. The quantitation of the C4A/B ratio by densitometry of stained gels or by conventional immunochemical measurements of serum C4 level could not substantially improve the identification of A*Q0 or B*Q0. C4 dependent activity in radial diffusion hemolysis showed satisfactory correspondence with the number of expressed C4B alleles. At least three haplotypes with two C4A genes (duplicated A genes) were observed as ascertained from offspring analysis in accordance with the MHC segregation pattern. Individuals with the duplicated C4A gene (C4A*3, A*2, in the absence of any other expressed A allele or together with C4A*92) showed only partial inhibition of Rodgers antisera. Partial inhibition of Chido antisera was seen in individuals with C4B 2 (in the absence of other B allotypes). The findings support the hypothesis of at least two structural C4 loci. They also demonstrate the inconsistency of quantitative data in the recognition of silent alleles.

Alleles

C4 polymorphism: use of a monoclonal antibody to distinguish C4A and C4B locus products.

A monoclonal antibody reactive against C4B locus products was used in a passive immunoblotting technique to distinguish C4B from C4A electrophoretic variants. The technique is simple and has the advantage of being able to distinguish clearly those C4B variants which may be either difficult to define by conventional hemolytic assay alone or which would normally be designated as C4B products on account of their lack of hemolytic function. Patterns detected by immunoblotting can be compared directly with patterns obtained by immunofixation with anti-C4 from the same gel.

Alleles

The genomic structure of two ancestral haplotypes carrying C4A duplications.

Two major histocompatibility complex (MHC) ancestral haplotypes (AH) HLA A24, Bw52, C2C, BfS, C4A3+2, C4BQO, DRw15, DQw6 (52.1) and HLA A24, Cw7, B7, C2C, BfS, C4A3+3, C4B1, DR1, DQw5 (7.2), which occur with the haplotype frequencies of approximately 10% and 4% respectively in the Japanese population, carry duplicated C4A alleles by C4 allotyping. Southern blot analysis with Taq I indicated that the 52.1 AH has two C4 genes defined by 7.0 kilobase (kb) and 6.0 kb C4 hybridizing fragments but both encode C4A allotypes, being C4A3 and C4A2 respectively. The 7.2 AH carries two C4A3 and one C4B1 alleles and restriction length polymorphism (RFLP) analysis with Taq I showed that 6.0 kb and 7.0 kb fragments are in the proportion of 2:1. By pulsed field gel electrophoresis (PFGE) analysis, the lengths of the Pvul fragments carrying C4 and Cyp21 genes were approximately 390 kb for 52.1 and 440 kb to 7.2. The results indicate that the RFLP markers do not correlate with C4 isotype (A or B) or allotype and that the C4 gene copy number is a function of the number of genomic blocks containing C4 and Cyp21.

Alleles

Polymorphisms of HLA class III genes in allergic contact dermatitis.

HLA class III polymorphisms (BF, C4A, C4B) were studied in 55 patients of different age and sex suffering from allergic contact dermatitis, with sensitization to different substances. In the overall group of patients no significant correlation between the disease and HLA markers was found. BF F allele was present in 34% and BS S in 64% of patients suffering from allergic contact dermatitis to nickel only versus 16.45% (relative risk, RR = 2.61) and 80.76% (RR = 0.42), respectively, of the control population. The BF FB subtype frequency was 23.91% versus 7.57% in the control samples (RR = 3.88). We thus hypothesize that this polymorphic serum protein might be involved in the pathogenesis of allergic contact dermatitis to nickel.

Adolescent

[Fundamental and clinical studies of homologous immunoglobulin-free priming in cardiopulmonary bypass, with special reference to anaphylatoxin production].

In in-vitro study, human immunoglobulin (Ig) denatured by O2 bubbling markedly produced C4a, C3a, and C5a, whereas human albumin treated identically did not. White blood cells (WBC) treated by O2 bubbling significantly increased C3a levels alone, but at a much lesser grade than the Ig. A new priming method, i.e., homologous concentrated red cell (CRC) and human albumin was discerned from the experimental facts in-vitro, and we investigated the clinical effects of that priming method. C4a, C3a and C5a in BOG primed with homologous whole blood (HWB) were slightly higher than those in MOG during CPB. Those in the Ig-free priming group were more mildly increased than those in the HWB priming group, not only during CPB, but also after protamine administration; this tendency was clearer in BOG. It is concluded that (1) human immunoglobulin (Ig) denatured by O2 bubbling produces anaphylatoxins via the classical pathway; (2) WBC treated identically produces C3a at a far milder grade; (3) priming with CRC and human albumin reduces plasma anaphylatoxin levels; and (4) pulmonary function at an early postoperative period was improved in the homologous Ig-free priming group, especially with BOG.

Albumins

Relevance of complotyping and subtyping of MHC class I gene products in haplotype definition for allogeneic bone marrow transplantation.

In preparation for a bone marrow transplantation 217 patients and their families were complotyped for Bf, C4A and C4B in addition to the routinely performed HLA-A,B,C,DR and HLA-D typing. In 147 families uncertainties in haplotype definition occurred which could be solved in 37 cases (25%) by complotyping. Additionally, patients and their relatives were subtyped for class I gene products by one-dimensional isoelectric focusing, a method by which serologically identical HLA-A, B, or C antigens could be split in five out of 22 cases tested. The results obtained clearly show the relevance of both methodologies for finding the best match of donor/recipient pairs to help to prevent MHC-induced graft-versus-host disease after bone marrow transplantation.

Bone Marrow Transplantation

Antigenic determinants expressed by human C4 allotypes; a study of 325 families provides evidence for the structural antigenic model.

The antigenic determinants of human C4 have been defined by human IgG antisera, Rodgers (Rg) and Chido (Ch), in hemagglutination-inhibition assays (HAI). Eight (2 Rg and 6 Ch) are of high frequency, greater than 90%, and 1, WH, is of low frequency, 15%. The phenotypic combinations are complex; generally, C4A expresses Rg, and C4B has Ch, but reverse antigenicities have been established both by HAI and by sequence data of selected C4 allotypes. A study of 325 families provides data on the antigenic expression of each C4 allotype and demonstrates strong associations. A structural model for the antigenic determinants of C4 proteins has been proposed and is completely supported by the family material. Of the 16 possible antigenic combinations for C4 proteins, only 3 are undetected. A new Ch combination has been recorded in two French families. The reported sequence variation within the C4d region can account for the antigenic determinants but leaves the location of electrophoretic variation in C4 still unclear.

Blood Group Antigens