[Homozygous C6 deficiency disclosed by Streptococcus A infection].
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The polymorphism of C6 in three groups of Han nationality was investigated by using polyacrylamide gel isoelectric focusing and immunoblotting technique. The gene frequencies obtained are as follows: Zhangzhou City (Fujiang Province) C6*A:0.4634, C6*B:0.5000, C6*R:0.0366 (C6*B2:0.0317); Chendu City (Sichuan Province) C6*A:0.4975, C6*B:0.4480, C6*R:0.0545 (C6*B2:0.0396); Harbin City (Heilongjiang Province) C6*A:0.4708, C6*B:0.5219, C6*R:0.0073 (C6*B2:0.0073). The frequency of C6*A in Mongoloid populations is usually lower than 0.5, while that of black people ranges between 0.5 and 0.6 and that of white people is higher than 0.6. The other difference between Caucasian and Mongoloid is that the former has very few C6*B2 while the frequency of C6*B2 in the latter ranges from 0.03 to 0.07.
The liver is the major source of complement (C) components, but extrahepatic sources of C, such as macrophages and endothelial cells, have been hypothesized to contribute to inflammation. Our experiments demonstrate that extrahepatically produced C6 can contribute to hyperacute rejection. PVG (RT1c) rats with normal C activity (PVG (C+)) reject guinea pig cardiac xenografts in 0.5 +/- 0.2 hr, but fully C6-deficient PVG (RT1c) rats (PVG (C-)) reject guinea pig cardiac xenografts in 45 +/- 9 hr. PVG (C+) rats, which received liver transplants from PVG (C-) rats and retained all extrahepatic sources of C6, rejected guinea pig cardiac xenografts in 0.6 +/- 0.03 hr (n = 3). PVG (C-) rats, which received bone marrow transplants from PVG (C+) rats, had C6 levels restored to 10% of that of the donor and rejected guinea pig cardiac xenografts in 9 +/- 3.2 hr (n = 5). Thus, extrahepatic sources of C6 can contribute to xenograft rejection.
Availability of a line of rabbits deficient in the sixth complement component (C6-D) made it possible to evaluate the role of the terminal complement complex (TCC) in the development of experimental autoimmune thyroiditis (EAT) of the rabbit. Immunization with saline extract of homologous thyroid, known to be composed predominantly of thyroglobulin, led in normocomplementemic (NC) rabbits to severe thyroiditis, with cellular infiltrates occupying 50-95% of the thyroid, and to minimal or moderate thyroiditis, with 1-35% of thyroids infiltrated in C6-D rabbits. Cellular infiltrates consisted predominantly of mononuclear cells with appreciable numbers of granulocytes. Destruction of thyroid follicles was extensive and diffuse in NC rabbits, but it was only minimal and focal in C6-D rabbits. Immunohistology revealed in both groups of rabbits deposits of IgG and C3 along follicular basal laminae. In addition, NC rabbits showed deposition of C6 and MAC in thyroid follicles. These results suggested that TCC is necessary for the development of fully expressed, severe EAT; simultaneously, however, they showed that a significantly reduced EAT can develop without TCC. Administration of NC but not of C6-D rabbit serum to C6-D rabbits resulted in a significant increase in the severity of EAT. It was also shown that C6-D rabbits have "normal" T-cell activity, since they developed experimental autoallergic encephalomyelitis as readily as NC rabbits. Therefore, it is likely that development of EAT is indeed impaired by the C6 deficiency in rabbits. The requirement for TCC observed in this study may be relevant to the understanding of the pathogenesis of Hashimoto's thyroiditis, in which thyroid tissue was recently shown to contain TCC deposits.
The relative contributions of chemo-attractant and terminal components of complement to heterologous phase glomerular injury was studied in anti-GBM glomerulonephritis in rabbits. Normal rabbits (complement intact) were given anti-GBM antibody at a dose which resulted in 140 micrograms specific kidney-fixed antibody per gram of renal cortex, and developed significant proteinuria (1910 +/- 327 mg/24 h; control 18.2 +/- 6.1 mg/24 h; P less than 0.01). Leucocyte depletion significantly reduced but did not abolish proteinuria (574 +/- 186 mg/24 h, P less than 0.05). Complement depletion of neutrophil-depleted rabbits resulted in a further significant reduction in proteinuria 50.1 +/- 12.2 mg/24 h, P less than 0.05; versus neutrophil-depleted, complement-intact rabbits), indicating that both neutrophil accumulation and complement activation independent of neutrophils contribute to injury in this model. Rabbits congenitally deficient in the sixth component of complement (C6D) developed similar levels of proteinuria (2099 +/- 796 mg/24 h) to normal rabbits given an identical dose of antibody. However, after leucocyte depletion, C6D rabbits developed significantly less proteinuria (135 +/- 56 mg/24 h) than did leucocyte-depleted, complement-intact rabbits (P less than 0.05). These studies show that terminal complement components are not necessary for the full expression of acute anti-GBM antibody-initiated injury in leucocyte-intact rabbits. However, in the absence of leucocytes, C6 and the terminal complement components are apparently responsible for the majority of the complement-dependent glomerular injury.
The results of a study of the polymorphism of the sixth component of human complement by means of isoelectric focusing in polyacrylamide gels with subsequent C-dependent lysis in an agarose overlay containing C6 deficient rabbit serum are reported. The allele frequencies obtained (C6A = 0.613, C6B = 0.379, C6R = 0.008) are in good agreement with those previously published. The mode of inheritance in 47 families with 173 offspring as well as 26 mother-child combinations is in agreement with a formal genetical model: "C6A, C6B, C6A1 and C6B1 at an autosomal locus". The inclusion of this system into a blood group expertise in Germany can be recommended.
The doughnut hypothesis of cytolysis by complement [Mayer, M. M. (1972) Proc. Nat. Acad. Sci. USA 69, 2954-2958] describes an annular structure made up of C5b-9 (complement factors C5b, C6, C7, C8, and C9) which becomes inserted in the lipid bilayer of the cell membrane, thus creating a hole. We now present initial explorations of this hypothesis. EAC1-6 and EAC1-7 (sheep erythrocytes carrying rabbit antibody and complement factors C1 through C6 or C1 through C7, respectively), prepared with either 125I-C3 or 125I-C5 were incubated with trypsin and the release of bound 125I was measured. In the case of 125I-C3, all of the radioactivity was released by trypsin from both intermediates. With 125I-C5, trypsin released all of the 125I from EAC1-6, but only 40-55% from EAC1-7. Possible reasons for resistance of the C5b subunit in EAC1-7 to tryptic digestion are discussed; in terms of the doughnut hypothesis it would be due to shielding by lipid molecules as a consequence of insertion into the lipid bilayer. In accord with this interpretation we have also found that C5b in EAC1-7, but not in EAC1-6, resists elution by 0.3 M NaC1. Similarly, we have found that 125I-C7 in EAC1-7 resists stripping by trypsin. Hence, we now propose the hypothesis that hydrophobic polypeptide chains from the C5b and the C7 subunits of C5b,6,7 complex become inserted in the phospholipid bilayer and that subsequent reactions with C8 and C9 open a channel across the membrane.
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Various C6 protein allotypes were examined using polyacrylamide gel isoelectric focusing followed by immunoblotting or hemolytic overlay. For several 'difficult' allotypes, neuraminidase treatment of samples and long-distance isoelectric focusing gels were applied. Nineteen different allotypes were distinguished besides the two common allotypes C6 A and C6 B. They were designated basically according to the previous statement on C6 nomenclature [Mauff et al., 1980].
Complement component C5 is converted to C5a and C5b by the cobra venom factor-dependent C3/C5 convertase CVF,Bb (EC 3.4.21.47). The C5 convertase produces selective proteolytic cleavage of an arginyl-leucine peptide bond at positions 74-75 in the alpha chain of C5. Circular dichroism studies in both the far and near UV regions provide evidence that a conformational change accompanies the C5 activation process. When C5 is activated by CVF,Bb in the presence of complement component C6, the C5b,6 complex is formed. However, when C6 is added after C5 has been converted to C5b, the C5b,6 complex fails to form. Therefore, the activation of C5 results in a transient binding site for C6. Hydrophobic sites are probably exposed upon C5 activation because C5b undergoes aggregation when C5 is converted to C5b in the absence of C6. Transmission electron micrographs of the C5 molecule indicate a multilobal, irregular ultrastructure with estimated dimensions of 104 X 140 X 168 A. Aggregated C5b has the appearance of globular particles with a diameter range of 350-700 A. Although C5 shares a number of features with the third component of complement, including a similar ultrastructure and partial sequence homology, C5 is devoid of the unusual thiol ester linkage found in C3. It is the labile thiol ester that permits covalent attachment between C3 and nucleophilic acceptors. In contrast, interactions between C5 and C6 or C5 and membranes remain noncovalent.
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The locus for hereditary angio-oedema must lie well outside the limits of the HLA complex. Linkage tests with 16 marker loci gave no hint of linkage. In particular, close linkage is excluded for C6, PGM1 MNSs, Gm, Rh, Km, Hp, and ABO.
Six components (C1, C5, C6, C7, C8 and C9) of bovine complement and one inactivator (C3 in) could be separated from bovine serum. Bovine C1 was separated by precipitation at low molarity (0.03 M of relative salt concentration) other components by DEAE-cellulose chromatography using 0.005 M sodium phosphate buffer, pH 7.5, as a base for solvents having the relative salt concentration adjusted by addition of NaCl from 0.03 to 0.3 M. The separated bovine complement components could be tested using intermediates formed from sheep erythrocytes, rabbit hemolysin, guinea pig C1 and remaining human complement components. C2, C3 and C4 of bovine origin remained undetected either because of incompatibility with the intermediates used or interference of inhibitors or inactivators.
The complement components (C6, C7, C8 and C9) implicated in the lysis of target cells and the pore-forming, lytic protein from cytotoxic T-lymphocytes and NK-cells, perforin, contain an amino acid sequence which is highly homologous to a repeat unit identified in the LDL-receptor (Tschopp et al., 1986, Nature, 322, 831-834). The domain of the LDL-receptor, which is thought to interact with a positively charged segment of its ligands apoprotein B and E, is rich in cysteine residues and contains a cluster of negative charges. We show that the negatively charged molecules suramin and glycosaminoglycans, the positively charged peptides protamine and polylysine, all of which are known to abolish binding of LDL to its receptor (Goldstein et al., 1985, A. Rev. cell. Biol., 1, 1-39) inhibit the lytic activities of C6, C7, C8, C9 and perforin. Moreover, these negatively charged molecules are potent inhibitors of cytolytic T-lymphocyte-mediated lysis of target cells, suggesting a functionally crucial role for perforin in cell-mediated cytolysis. We propose that the negatively charged, cysteine-rich domain of these complement proteins and perforin interacts with an as yet unidentified positively charged segment of its ligand in a manner analogous to the LDL-LDL receptor interaction. Homologous cysteine-rich domains in functionally unrelated proteins may therefore be functionally conserved as ideal rigid interaction domains with the conserved cysteine residues as framework. Specificity of the domain for its ligand would be conferred by the non-conserved amino acid residues.