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Genetic polymorphism of the sixth component of complement (C6) in the rhesus monkey.

With isoelectric focusing, the complement protein C6 has been shown to be genetically polymorphic in the rhesus monkey. Three codominant alleles of a single autosomal locus, Rh C6, have been recognized: C6A, C6B, and C6R, with gene frequencies of 0.592, 0.354, and 0.053 in a random rhesus monkey population. Hardy-Weinberg analysis of the phenotypic frequencies in this population yielded observed values very close to those expected. Both natural mating between individuals carrying the various alleles and artificial combinations of sera of the different C6 types demonstrate patterns consistent with this model. Analysis of several families of monkeys confirmed the Mendelian autosomal codominant inheritance with numbers of offspring very close to expected values and no offspring types inconsistent with the mating pair types.

Animals

Effects of endotoxin in cortisone-treated rabbits with a hereditary deficiency of the sixth component of complement (C6 deficiency).

Endotoxin was infused into normal rabbits and C6 deficient rabbits prepared with cortisone for the generalized Shwartzman reaction. Endotoxin produced profound granulocytopenia and moderate thrombocytopenia in both normal and C6 deficient rabbits. In normal rabbits endotoxin consistently produced extensive intravascular clotting. In C6 deficient animals endotoxin resulted in intravascular clotting of variable extent. In one group of eight C6 deficient rabbits mean fibrinogen levels fell 0.67 g per 1 over 6 hrs after endotoxin and four of eight animals developed a generalized Shwartzman reaction. In a second group of seven C6 deficient rabbits mean fibrinogen level fell only 0.17 g per 1 over 6 hrs and one animal developed a generalized Shwartzman reaction. Values for mean fibrinogen consumption, calculated from plasma fibrinogen levels and rate of disappearance of 25I-fibrinogen, were as follows: normal animals infused with saline, 10 mg per kg; C6 deficient animals infused with endotoxin, 58 mg per kg. Fibrinogen consumption after endotoxin was found to be related to granulocyte levels prior to endotoxin, which determined the number of granulocytes disappearing from the blood after endotoxin. The data indicate that C6 deficiency in the rabbit does not prevent intravascular clotting and the generalized Shwartzman reaction.

Agranulocytosis

Further evidence for independent segregation of the HLA system and a structural gene for the sixth component of complement (C6).

Previous studies have shown conflicting results with respect to the relationship between C6 deficiency and the HLA system. The present investigation of two kinships, in which C6 deficiency was associated with the expression of an amorphic (or silent) C6 allele, has provided further evidence for the genetic independence of a structural C6 locus and the HLA system.

Adult

Genetic linkage relations of the sixth component of complement (C6).

Linkage relations between the C6 and 33 other genetic marker loci have been analyzed in Norwegian pedigrees, including 114 matings with 388 informative children, by use of the MOSM computer program. No suggestion of linkage was found. Very close or close linkage (theta less than 0.06) has been ruled out for males between C6 and the following 19 marker loci: GPT, HLA + Bf, Rh, C3, Hp, PGM3, Km, Gm, Fy, Gc, ABO Jk, GLO1, K, MNSs, PTC, ACP1, PGM1, and Pi. For several of the relations even loose-linkage is unlikely.

Adult

DNA polymorphisms and linkage relationship of the human complement component C6, C7, and C9 genes.

In this report we describe the linkage between genes encoding human complement components C6, C7, and C9. Polymorphisms have been described at the DNA level for the C7 and C9 genes. We have studied 20 individuals by Southern blot analysis with four C6 cDNA subclones to detect restriction fragment length polymorphisms (RFLPs). We have found a Taq I polymorphism defined by two alleles of 8.0 (C6 H) and 6.0 (C6 L) kilobases (kb). RFLP segregation for the C6, C7, and C9 loci in informative families allowed us to estimate the maximum Lod scores at a recombination fraction of theta = 0.0 (C6-C7), theta = 0.0 (C7-C9), and theta = 0.0 (C6-C9). Significant linkage disequilibrium was found between C6 and C7 and between C7 and C9 loci in directly determined haplotypes of unrelated parents. Data from this study show that the genes encoding the human terminal complement components C6, C7, and C9 define a cluster in the short arm of chromosome 5. We propose that the clusters involving the C8A and C8B and the C6, C7, and C9 genes be referred to as MACI and MACII, respectively.

Chromosome Mapping

Properties of a low molecular weight complement component C6 found in human subjects with subtotal C6 deficiency.

A sensitive ELISA assay was used to quantitate serum complement component C6 concentrations. Levels in the range 0.3-3 micrograms/ml were measured in samples from eight individuals (four separate pedigrees) and two subjects with subtotal combined C6/C7 deficiency who have been reported previously. We defined C6 levels in this range as subtotal C6 deficiency (C6SD). In contrast, C6 deficiency with levels below 0.03 micrograms/ml was defined as C6Q0. C6Q0 has been found in 29 unrelated cases which have already been reported. Investigations of the properties of the C6 found in the C6SD subjects showed it to be haemolytically active and able to incorporate into the terminal complement complex. The protein had a relative molecular weight (Mr) of approximately 86% of normal C6 and this Mr was identical to that of the C6 of one combined deficient subject. The Mr of the C6 of the other combined deficient subject was previously estimated as 79% of the Mr of normal C6. Isoelectric focusing (IEF) analysis with band development by haemolytic overlay revealed that all C6SD samples produced an identical weak C6 band pattern anodal to normal C6A bands. The C7 IEF patterns of the two combined deficient subjects were identical, and the C6 IEF patterns of both were identical to those of the C6SD subjects. Thus the C6 of the combined deficient subjects is probably the same abnormal protein found in the C6SD individuals. None of the C6SD or combined deficient subjects have had meningococcal disease and it may be that low C6 levels afford some protection.

Adult

Genetic polymorphism of complement component C6, C7 and C8(1) in Chinese Han population in northeast China.

Distributions of complement phenotypes, C6, C7, and C8(1) were studied using thin agarose gel isoelectric focusing (AGIEF) or ultra-thin polyacrylamide gel isoelectric focusing (PAGIEF) and subsequent immunoblotting techniques in 203 Chinese Han population in Liaoning Province of northeast China. The gene frequencies were as follows: C6*A 0.4704, C6*B 0.5049, C6*B2 0.0148, C6*B3 0.0049, and C6*M 0.0049; C7*1 0.8251, C7*2 0.1108, C7*3 0.0320, and C7*4 0.0320; C8(1)*A 0.5567 and C8(1)B 0.4433, respectively. All the observed numbers of the phenotypes were in agreement with the expected numbers under the Hardy-Weinberg equilibrium. The gene frequencies among Chinese subpopulations and other various populations were compared.

Asian People

The assignment of the genes coding for human complement components C6 and C7 to chromosome 5.

A panel of 19 somatic cell hybrids was tested for the presence of human sequences coding for complement components C6 and C7 by restriction enzyme digestion and Southern blots probed with human C6 and C7 cDNA probes. C7 was also detected by amplifying part of the human gene in hybrid DNA using the polymerase chain reaction. Detection of human C6 and C7 was completely correlated with the presence of chromosome 5.

Animals

Isolation of late complement components by affinity chromatography. II. Purification of the human complement component C6.

We developed a new procedure for the rapid and gentle isolation of the human complement component C6 comparable to that described previously for C9. The procedure is based on affinity chromatography. As a first step, C6 is immunoabsorbed on insolubilized anti-C6 antibodies. These antibodies were derived from C6-defective rabbits (Freiburg strain). C6 was eluted with 3 M thiocyanate, pH 7.2, with a recovery of 15--23% of its hemolytic activity and a more than 270--fold purification. Impurities were removed in a second step by an "anti-impurity" column. The final product yielded a 12% recovery of the hemolytic activity and the purification factor was higher than 1300. The final product was homogeneous in SDS polyacrylamide and immunoelectrophoresis.

Animals

C7 M/N protein polymorphism typing applied to inherited deficiencies of human complement proteins C6 and C7.

C7 M/N typing, the determination of the complement component C7 M/N phenotypes, was successfully used in family studies to trace haplotypes bearing C7 deficiency genes. Furthermore, it was shown to be preferable to C7 allotyping based on isoelectric focusing (IEF) since it distinguishes two common alleles (C7*M and C7*N), whereas one common C7 IEF allele (C7*1) predominates in most populations. It is also the more sensitive method, as it enabled detection of very low amounts of abnormal C7 molecules in the third generation of a combined subtotal C6/C7-deficient subject and thus confirmed that this partial deficiency gene is not silent in heterozygotes. In this respect C7 M/N typing is even more informative than DNA restriction fragment length polymorphism typing which will assess the presence but not necessarily the functional status of a gene. C6 and C7 genes are tightly linked and therefore C7 M/N typing was also applied to tracing C6 deficiency genes in families. C6/C7 haplotype analysis of South African C6-deficient (C6Q0) subjects revealed a strong allelic association of C6*Q0 and C7*M.

Alleles

Functionally active complement proteins C6 and C7 detected in C6- and C7-deficient individuals.

Two sensitive sandwich ELISAs based on monoclonal antibodies directed to native C6 and C7 allowed the detection and quantitation of these complement proteins in 20 out of 37 serum samples from individuals who had previously been classified as deficient in these proteins as assessed by immunochemical and/or functional assays. Furthermore, serum from four C6-deficient and one combined C6-/C7-deficient individual showed an increase in the terminal complement complex (TCC) and a decrease in native C6 and C7 after complement activation as assayed by specific ELISAs. Despite their (incomplete) deficiencies, these individuals therefore possess functionally active terminal complement proteins with respect to their ability to generate the TCC. As these individuals have no history of a susceptibility to neisserial infections, even low concentrations of functionally active C6 and C7 may provide sufficient protection against those micro-organisms whose destruction requires TCC formation.

Antibodies, Monoclonal

Complement genetic markers in schizophrenia: C3, BF and C6 polymorphisms.

Polymorphic variants of C3, BF and C6 complement factors have been investigated in schizophrenic patients subdivided according to the existence or not of a family history of both schizophrenia and other psychiatric disorders. To analyze the contingency tables, besides the usual methods, log-linear models have been fitted. Significant associations have been found in the C3 system, with a decrease of C3*F in patients (contradicting previous findings), and in the BF system, with a decrease of FS phenotype among patients (confirming some previous results). No association has been found for the C6 polymorphism (in accordance to previous results). Therefore, the present findings only partially confirm previous results and do not clarify the relationship between complement genetic markers and schizophrenia, stressing some statistical difficulties.

Alleles

Simultaneous occurrence of hereditary C6 and C2 deficiency in a French-Canadian family.

The sera of four sisters were found to lack the sixth component of complement (C6) and the serum of one was also partially deficient in the second component (C2). Two other blood relatives were found to be heterozygous for both deficiencies, while only one sibling had normal values. The father of these eight siblings was heterozygous for C2D and C6D and in the third generation, six children were heterozygous for C6 deficiency was treated for chronic active brucel-transmitted; the C6 deficiency was not linked to the HLA system, while the C2-deficiency segregated with the haplotype A10,B18. The proband, homozygous for C6 deficiency was treated for chronic active Brucellosis and in another sibling with C6 deficiency, toxoplasmosis was diagnosed. Neither bleeding disorders nor a tendency to collagen diseases have been observed and the opsonic activity was normal in the sera of all family members.

Adult

Recurrent meningococcal meningitis with absence of the sixth component of complement: an evaluation of underlying immunologic mechanisms.

A 51/2-year-old black girl with recurrent meningococcal meningitis and absence of the sixth component of complement (C6) is reported. To explore the pathogenesis of recurrent neisserial infections in C6 deficiency, a detailed analysis of her immune competence was conducted. Her serum had normal chemotactic, opsonic, alternative complement pathway, and specific antibody activity, but lacked complement-mediated bacteriolytic activity. In addition, her C6-deficient serum was indistinguishable from normal serum in a complement-dependent assay of phagocyte bactericidal activity. Absent bacteriolysis remains the only consistent defect associated with recurrent neisserial infections and absence of one of the late-acting complement components.

Blood Bactericidal Activity

Prophylaxis against Neisseria meningitidis infections and antibody responses in patients with deficiency of the sixth component of complement.

Forty South African patients with homozygous deficiency of the sixth component of complement (C6) have been identified in an area where group B meningococcal meningitis is endemic; 22 of the 24 proband cases presented with recurrent meningococcal meningitis. In a 2- to 4-year prospective study, patients with recurrent infections who received monthly prophylactic long-acting penicillin were significantly protected from subsequent neisserial infection compared with those who did not receive penicillin (P = .02, Fisher's exact test). Heterogeneous susceptibility to neisserial infection was confirmed by following C6-deficient patients who presented with one or no Neisseria meningitidis infections. These patients, on no prophylaxis, had significantly fewer infections (P = .004) than did patients who presented with recurrent disease. Functional C6 activity was restored by transfusion of fresh frozen plasma in a C6-deficient patient resistant to conventional antibiotic treatment. Antibody levels to the serotype 2 outer membrane proteins were significantly elevated in C6-deficient patients compared with control groups (P = .001).

Antibodies, Bacterial

[Genetic polymorphism of complement component six (C6) in five Han subpopulations].

By using polyacrylamide gel isoelectric focusing followed by immunoassay, the polymorphism of Complement Component Six (C6) was investigated in five Han subpopulations in China. The following gene frequencies were obtained Zhengzhou Han: C6*A 0.4521, C6*B 0.5228, C 6*B2 0.0183, C6*R 0.0068; Lanzhou Han: C6*A 0.4612, C6*B 0.5218, C6*B2 0.0170; Huhhot Han: C6*A 0.4452, C6*B 0.5286, C6*B2 0.0214, C6*R 0.0048; Xi'an Han: C6*A 0.4899, C6*B 0.4874, C6*B2 0.0126, C6*R 0.0101; Hakka of Meizhou, Guangdong Province: C6*A 0.4569, C6*B 0.5152, C6*B 0.0279 (C6*R is the frequency of rare alleles).

China