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Complement polymorphism in Greece.

The polymorphisms of the complement components C2, C3, C4 and BF have been studied in a sample of 166 unrelated individuals from Northern Greece. The C3*F and BF*F allele frequencies of Greeks are within the range of frequencies reported from Europe. A single individual with a rare heterozygote variant C2C/C2A was found in Greeks. This C2*A allele was found for the first time in European Caucasoids. For the C4 system six different alleles were found at both C4A and C4B loci. There were a low frequency of the null alleles at the C4A locus and a relatively high incidence of gene duplications in this system.

Complement C2

Covalent association of C3b with C4b within C5 convertase of the classical complement pathway.

The C5 convertase of the classical complement pathway is a complex enzyme consisting of three complement fragments, C4b, C2a, and C3b. Previous studies have elucidated functional roles of each subunit (4, 6, 7), but little is known about how the subunits associate with each other. In this investigation, we studied the nature of the classical C5 convertase that was assembled on sheep erythrocytes. We found that one of the nascent C3b molecules that had been generated by the C3 convertase directly bound covalently to C4b. C3b bound to the alpha' chain of C4b through an ester bond, which could be cleaved by treatment with hydroxylamine. The ester bond was rather unstable, with a half-life of 7.9 h at pH 7.4 and 37 degrees C. Formation of the C4b-C3b dimer is quite efficient; e.g., 54% of the cell-bound C3b was associated with C4b when 25,000 molecules of C4b and 12,000 molecules of C3b were present per cell. Kinetic analysis also showed the efficient formation of the C4b-C3b dimer; the rate of dimer formation was similar to or even faster than that of cell-bound monomeric C3b molecules. These results indicate that C4b is a highly reactive acceptor molecule for nascent C3b. High-affinity C5-binding sites with an association constant of 2.1 X 10(8) L/M were demonstrated on C4b-C3b dimer-bearing sheep erythrocytes, EAC43 cells. The number of high-affinity C5-binding sites coincided with the number of C4b-C3b dimers, but not with the total number of cell-bound C3b molecules. Anti-C4 antibodies caused 80% inhibition of the binding of C5 to EAC43 cells. These results suggest that only C4b-associated C3b serves as a high-affinity C5 binding site. EAC14 cells had a small amount of high-affinity C5 binding sites with an association constant of 8.1 X 10(7) L/M, 100 molecules of bound C4b being necessary for 1 binding site. In accordance with the hypothesis that C4b-associated C4b might also serve as a high-affinity C5-binding site, a small amount of C4b-C4b dimer was detected on EAC14 cells by SDS-PAGE analysis. Taken together, these observations indicate that the high-affinity binding of C5 is probably divalent, in that C5 recognizes both protomers in the dimers. The high-affinity binding may allow selective binding of C5 to the convertase in spite of surrounding monomeric C3b molecules.

Animals

Differences between the binding sites of the complement regulatory proteins DAF, CR1, and factor H on C3 convertases.

Binding studies using purified decay-accelerating factor (DAF), CR1, and Factor H indicate that the primary interaction of DAF with C3 convertases is with the Bb or C2a subunits, whereas CR1 and Factor H interact primarily with the C3b or C4b subunits. The ability of soluble DAF, CR1, or Factor H to decay C3b,Bb bound to zymosan was inhibited by various concentrations of fluid-phase competitors (C3b, Bb, C3b,Bb, C3b,B, C4b, or C4b,C2a) in 0.1% NP-40 at 22 degrees C. The apparent association constants (appKa) for DAF were 0.045, 0.067, 0.91, 0.71, 0.00045, and 0.53 microM-1, respectively. The appKa for CR1 were 0.50, 0.0040, 1, 1, 1, and 1.1 microM-1, respectively. The appKa for Factor H were 4.3, 0.0005, 2.9, 6.3, 0.27, and 0.29 microM-1, respectively. Thus, C3b binds to DAF with a 10-fold lower affinity than to CR1 and a 100-fold lower affinity than to Factor H. The appKa of C3b,Bb for the three proteins were more similar: DAF (0.91 microM-1), CR1 (1 microM-1), and Factor H (2.9 microM-1). DAF binds to Bb with a 50% higher affinity than to C3b, and to C4b,C2a with a 1000-fold higher affinity than to C4b alone. In contrast, CR1 and Factor H bind almost equally well to the C3 convertases and to their noncatalytic subunits. The affinity of DAF for CVF,Bb was similar to its affinity for Bb alone, suggesting that DAF does not recognize conformational determinants unique to Bb in C3 convertases.

Binding Sites

The mechanism of action of decay-accelerating factor (DAF). DAF inhibits the assembly of C3 convertases by dissociating C2a and Bb.

DAF is a 70,000-Mr membrane protein that inhibits the amplification of the complement cascade on the cell surface, and protects cells from damage by complement. The precise mechanism of action of DAF is not entirely clear. Purified DAF was incorporated into the membrane of EAC4b cells. EAC4b2 and EDAF AC4b2 cells were prepared with radiolabeled C2. The same amount of labeled C2 bound to both cells, showing that DAF does not prevent the binding of C2 zymogen to C4b. After adding Cl, the radioactivity of bound C2 dissociated more rapidly from EDAF AC4b cells than from EAC4b cells. In EAC4b cells, bound C2 was converted to C2a, which gradually dissociated into the supernatants. In the DAF-treated cells, on the other hand, a large amount of C2a rapidly appeared in the supernatants and only a small amount of C2a remained on the cells. In a similar experiment using EhuAC4b, DAF on human erythrocyte membrane also dissociated the C2a from the cells. These results were confirmed by hemolytic assay and the accelerated decay of C2a caused the rapid depletion of C2 from the fluid phase. In addition, we found that DAF functions on the alternative pathway C3 convertase, C3bBb in the same manner. Thus, DAF, which associates with C4b and C3b in the membrane, acts on C2a and Bb, but not on intact C2 and B, and dissociates them rapidly from the binding sites, thereby preventing the assembly of the classical and alternative pathways C3 convertases.

Animals

Determination of the complement component C2 by ELISA in human serum and bronchoalveolar lavage fluids.

In order to measure the concentration of the human complement component C2 in various biological fluids, an enzyme linked immunosorbent assay (ELISA) was developed. This assay was highly sensitive and allowed to detect as few as 400 pg of C2 in a sample volume of 150 microliters (i.e. 2.6 ng/ml). This is a 10- to 15-fold increase in sensitivity with regard to the conventional hemolytic test. As assessed by an immunoblot analysis, our anti-C2 antiserum was able to detect native C2 as well as the cleavage fragments C2a and C2b generated upon complement activation through the classical pathway. Thus, complement activation involving the classical pathway can easily be evidenced by comparing functional (hemolytic) and immunochemical (ELISA) C2 assays which respectively do not and do reveal activated C2. When C2 was assayed in either normal human serum or bronchoalveolar fluids, in both ELISA and hemolytic tests, a highly significant correlation was observed between the two assays (P less than or equal to 0.01). The specific C2 activity (i.e. functional hemolytic activity/ng C2 assayed in ELISA) was higher in serum than in bronchoalveolar lavage fluids from both normal volunteers and patients with pulmonary diseases.

Adult

Detection of the genetic polymorphism of human C2 (native protein and C2a fragment) by immunoblotting after polyacrylamide gel isoelectric focusing.

The polymorphism of the second component of human complement (C2) was studied by means of isoelectric focusing in polyacrylamide gels followed by immunoblotting with a specific antihuman C2 antibody. The polymorphism was studied in native C2 and in the C2a fragment obtained by activation of the classical pathway with heat-aggregated human IgG. Serum samples previously typed with the hemolytic overlay technique were analyzed. They comprised samples of homozygous C2*C, C2*B, C2*Q0, heterozygous C2*BC and C2*CQ0 individuals. The patterns obtained by immunoblotting corresponded to those obtained by the hemolytic overlay technique. As expected, the homozygous C2*Q0 sample (complement C2 deficiency) did not show any band pattern. The C2a fragment presented also a polymorphic variation which correlated exactly with the native C2 polymorphism. It appears thus that the polymorphic site of the C2 protein is carried by the C2a fragment for the C2*C and C2*B variants. In addition, this method is easier to perform than the common hemolytic overlay technique and the rare C2-deficient serum is not needed.

Complement C2

Human complement proteins D, C2, and B. Active site mapping with peptide thioester substrates.

The specificity and reactivity of complement serine proteases D, B, Bb, C2, and C2a were determined using a series of peptide thioester substrates. The rates of thioester hydrolysis were measured using assay mixtures containing the thiol reagent 4,4'-dithiodipyridine at pH 7.5. Each substrate contained a P1 arginine residue, and the effect of various groups and amino acids in the P2, P3, P4, and P5 positions was determined using kcat/Km values to compare reactivities. Among peptide thioesters corresponding to the activation site sequence in B, dipeptide thioesters containing a P2 lysine residue were the best substrates for D. Extending the chain to include a P3 or P4 amino acid resulted in loss of activity, and neither the tripeptide nor the tetrapeptide containing the cleavage sequence of B was hydrolyzed. Overall, D cleaved fewer substrates and was 2-3 orders of magnitude less reactive than C1s against some thioester substrates. C2 and fragment C2a had comparable reactivities and hydrolyzed peptides containing Leu-Ala-Arg and Leu-Gly-Arg, which have the same sequence as the cleavage sites of C3 and C5, respectively. The best substrates for C2 and C2a were Z-Gly-Leu-Ala-Arg-SBzl and Z-Leu-Gly-Leu-Ala-Arg-SBzl, respectively, where Bzl is benzyl. B was the least reactive among these complement enzymes. The best substrate for B was Z-Lys-Arg-SBzl with a kcat/Km value of 1370 M-1 s-1. The catalytic fragment of B, Bb, had higher activity toward these peptide thioester substrates. The best substrate for Bb was Z-Gly-Leu-Ala-Arg-SBzl with a kcat/Km similar to C2a and 10 times higher than the value for B. Both C2a and Bb were considerably more reactive against C3-like than C5-like substrates. Bovine trypsin hydrolyzed thioester substrates with kcat/Km approximately 10(3) higher than the complement enzymes. These thioester substrates for D, B, and C2 should be quite useful in kinetic and active site studies of the purified enzymes.

Animals

Cleavage of C2 by C1s into the antigenically distinct fragments C2a and C2b: demonstration of binding of C2b to C4b.

The activation of complement component C2 by C1s is a major reaction step leading to the assembly of two related macromolecular enzymes in the classical complement pathway C3 convertase and C5 convertase. The present studies clearly document the smaller fragment, C2b, that results when human C2 reacts with C1s. We have identified and characterized C2b (34,000 daltons) as a single protein on disc electrophoresis and immunoelectrophoresis. C2a (73,000 daltons), the larger fragment from this reaction, has a more acidic nature and C2b is more basic. These fragments can also be detected by their different antigenic determinants. When the C2-C4b complex is activated in the fluid phase by C1s and allowed to decay, it dissociates into C2a and the C2b-C4b complex. Furthermore, when C2 is bound to C4b-Sepharose and then reacted with C1s, only the C2a fragment is released from the solid phase C2-C4b-Sepharose into the fluid phase, and the C2b fragment remains noncovalently bound to C4b-Sepharose. These results suggest that the C2b portion of C2 contains a stable binding site for C4b and, after the decay release of C2a from this C3 convertase, the C2b fragment remains bound. Thus, the decay release of C2a may represent a temperature-dependent dissociation from C2b.

Binding Sites

Covalent binding of C3b to C4b within the classical complement pathway C5 convertase. Determination of amino acid residues involved in ester linkage formation.

C5 convertase of the classical complement pathway is a protein complex consisting of C4b, C2a, and C3b. Within this complex C3b binds to C4b via an ester linkage. We now present evidence that the covalent C3b-binding site on human C4b is Ser at position 1217 of C4. We also show that formation of the covalently linked C4b.C3b complex occurs in the mouse complement system and that the C3b-binding site on mouse C4b is Ser at position 1213 which is homologous to Ser-1217 of human C4. Therefore, covalent binding of C3b to a single specific site on C4b within the classical pathway C5 convertase is likely a common phenomenon in the mammalian complement system. Specific noncovalent association of metastable C3b with C4b would occur first, leading to reaction of the thioester with a specific hydroxy group. This is supported by two lines of experimental evidence, one which shows that a mutant C4 that does not make a covalent linkage with C3b is still capable of forming C5 convertase and a second in which the C4b.C3b complex has been demonstrated by cross-linking erythrocytes bearing this C5 convertase.

Amino Acid Sequence

Localization of the covalent C3b-binding site on C4b within the complement classical pathway C5 convertase, C4b2a3b.

C5 convertase of the classical complement pathway is a trimolecular protein complex consisting of C4b, C2a, and C3b. In the complex there is an ester bond between C3b and C4b. We analyzed the C5 convertase formed on erythrocytes and localized the covalent binding site of C3b to a small region on C4b. The covalently linked C4b.C3b complex was purified from a detergent extract of the erythrocytes and digested with lysyl endopeptidase. An Mr 17,000 fragment containing the ester linkage between C4b and C3b was purified and its amino-terminal sequence was examined. Two amino acids were obtained at each cycle and identified with those in the sequences of C3 and C4. The sequence derived from C3 corresponded to the thioester region. The sequence derived from C4 started at Ala-1186. Alkali treatment of the fragment yielded an Mr 7,000 peptide derived from C4, which thus appeared to span the region of C4 from Ala-1186 to Lys-1259. Therefore, the covalent C3b-binding site on C4b is located within a 74-residue region of the primary structure. This finding supports the notion that after cleavage of C3 by the C4b2a complex, the covalent binding of metastable C3b to C4b is a specific reaction to form a trimolecular complex with a defined quaternary structure.

Amino Acid Sequence

Cleavage of the second component of complement by plasma proteases: implications in hereditary C1-inhibitor deficiency.

EDTA plasma from patients with hereditary angioedema (HAE), the genetic deficiency of C1-inhibitor, when incubated at 37 degrees produces a kinin-like activity which can induce contraction of oestrus rat uterus. The second component of complement (C2) has previously been suggested to be the source of this kinin-like activity, with the implication that C2-kinin is a normal product of complement activation. Our results show that purified human C2 is cleaved rapidly to C2a and C2b when added to HAE plasma, but not normal plasma or plasma from a danazol-treated HAE patient. However, the addition to HAE plasma of C2 at 20 X normal plasma concentration had no effect on the kinin activity generated on incubation at 37 degrees. In the presence of soya bean trypsin inhibitor, the rate of C2 cleavage and products were unaltered but no kinin activity was generated. C2 was cleaved by purified C1s to C2a and C2b. Incubation of C2 with trypsin resulted in cleavage to C2a and C2b followed by more extensive cleavage of both C2a and C2b. Kallikrein cleaved C2 to C2a and C2b but plasmin had no effect on C2. In no case was kinin activity generated. When C2 was cleaved by C1s to C2a and C2b then incubated with trypsin, kallikrein, or plasmin, no kinin activity was generated: only trypsin cleaved the C2 fragments further. The results suggest that C2 is not the source of the kinin-like activity generated in hereditary angioedema plasma.

Angioedema

Substituted isocoumarins as inhibitors of complement serine proteases.

Inhibition of complement proteins D, B, C2, C1s, C1r, I, and the catalytic fragments Bb and C2a by substituted isocoumarins was investigated. 3,4-Dichloroisocoumarin, a general serine protease inhibitor, inhibited factor D, C1r, and C1s moderately with second-order inhibition constants (kobs/[I]) of 40 to 190 M-1 s-1, but it did not inhibit C2, factor B, C2a, or Bb. The best inhibitor for factors D and B was 4-chloro-7-guanidino-3-methoxyisocoumarin with kobs/[I] values of 250 and 290 M-1 s-1, respectively. Most isocoumarins did not inhibit C2 or C2a; only 4-chloro-3-isothiureidoalkoxyisocoumarins were slightly inhibitory. 3-Alkoxy-4-chloro-7-guanidinoisocoumarins inhibited C1r and C1s moderately. The best inhibitor for C1r and C1s was 4-chloro-3-(3-isothiureidopropoxy)isocoumarin with kobs/[I] values of 6,600 and 130,000 M-1 s-1, respectively. Fifty amino acid or peptide thioesters containing Arg or other amino acids at the P1 site were tested as substrates of factor I, however none was hydrolyzed. Isocoumarins substituted with chloro and basic groups such as guanidino and isothiureidoalkoxy inhibited factor I activity with its natural substrate C3b, but kobs/[I] values were low. 4-Chloro-3-ethoxy-7-guanidinoisocoumarin inhibited activation of the alternative pathway and, to a lesser extent, of the classical pathway in serum. Several other substituted isocoumarins also inhibited cobra venom factor-initiated activation of the alternative pathway in serum.

Amino Acid Sequence

Evidence that C4b-binding protein (proline-rich protein) is synthesized by hepatocytes.

C4b-binding protein (C4bp), a glycoprotein involved in regulating the classical pathway of the complement system, binds the activated form of C4b and accelerates the decay rate of the C4b, C2a complex. Recently, sequence analysis of the cDNA for proline-rich protein (PRP) demonstrated that PRP is identical with C4bp. We measured the concentration of C4bp in serum by single radial immunodiffusion in patients with various liver diseases. Concentration of C4bp was significantly lower in hepatic cirrhosis (P = 0.001) and higher in fatty liver (P = 0.0002) than the control values, after adjusting for age, sex, and concentration of total cholesterol, triglyceride, and C-reactive protein. Significant positive correlations were observed between the concentration of C4bp in serum and total protein, albumin, cholinesterase level, and lecithin-cholesterol acyltransferase activity. Immunohistochemical analysis of human liver with specific antiserum to human C4bp demonstrated reaction endproducts in the hepatocytes around the central veins. These observations provide evidence that C4bp is synthesized by hepatocytes.

Animals

Primary structure of human complement component C2. Homology to two unrelated protein families.

The primary structure of the second component of human complement (C2) was determined by cDNA cloning and sequence analysis. C2 has 39% identity with the functionally analogous protein Factor B. The C-terminal half of C2a is homologous to the catalytic domains of other serine proteinases. C2b contains three direct repeats of approx. 60 amino acid residues. They are homologous to repeats in Factor B, C4b-binding protein and Factor H, suggesting a functional significance of the repeat in C4b and C3b binding. The repeats are also found in the non-complement proteins beta 2-glycoprotein I and interleukin-2 receptor, and this repeat family may be widespread.

Amino Acid Sequence

[Complement-inhibiting acidic factors from the venom of Central Asian cobra Naja naja oxiana].

Two anticomplementic factors isolated from the venom of the Central Asian cobra Naja naja oxiana by chromatography on DEAE-Sepharose CL-6B and subsequent gel filtration on Sephacryl S-200 were studied. Of these, five factors (CFA-Ia, CFA-Ib, CFA-Ic, CFA-IIa and CFA-IIb), CFA-Ib had been characterized earlier, while CFA-Ia was assigned to a previously identified H-CoF factor. It was shown that CFA-Ic has a molecular mass of 3900 Da; its content in the venom amounts to 2.6 mg/g of dry venom. This factor inhibits the classical pathway of C3 convertase formation abrogating the C2 component activation by subcomponent C1s [Ki = (2.5 +/- 0.8).10(-7) M]. CFA-IIa and CFA-IIb are present in the venom in very low amounts (2 mg/g) and have Mr of 5700 and 3200 Da, respectively. The complement-inhibiting action was studied for a more active CFA-IIa. Factor CFA-IIa was shown to inactivate the native component of C2 with a rate constant, k, of (2.7 +/- 0.2).10(3) s-1M-1 (37 degrees C, pH 7.4). CFA-IIa had no effect on C2 and C2a within their complexes with C4b.

Chromatography, DEAE-Cellulose

[Genetic polymorphism of the second component of human complement (C2) in the Han Nationality in Wuhan district of China].

A total number of 231 unrelated Chinese (Han Nationality) were investigated for C2 polymorphism by hemolytic overlay technique after polyacrylamide gel isoelectric focusing on plasmas. The following phenotype distributions were observed: C2C, 216; C2BC, 9; C2AC, 5; and C2A, 1. The gene frequencies calculated from these phenotypes were as follows: C2*A, 0.015; C2*B, 0.019; C2*C, 0.965. The C2 phenotypic frequency distributions were in agreement with those expected from Hardy-Weinberg equilibrium.

China

C2 and factor B: structure and genetics.

Complement components C2 and factor B are novel types of serine protease that are encoded by single loci in the major histocompatibility complex on human chromosome 6. The two proteins share 39% homology, or 50% taking into account conservative amino acid replacements. The catalytic chains, C2a (509 residues) and Bb (505 residues) show homology in their C-terminal domains to the catalytic polypeptides of other serine proteases. The non-catalytic chains, C2b (223 residues) and Ba (234 residues) both contain three tandem repeats of approx. 60 amino acids each, which are homologous to the repeats in C4b-binding protein and factor H, and also the repeats in the non-complement protein beta 2-glycoprotein I. Molecular mapping and DNA sequence analysis has shown that the factor B gene is 6 kb in length and contains 18 exons, while the C2 gene is 18 kb in length; 425 bp separates the 3' end of the C2 gene from the 5' end of the factor B gene. C2 and factor B are polymorphic and structural variants have been detected at the protein level by differences in charge. The degree of polymorphism at the factor B locus has been defined by DNA sequence analysis of the two common alleles F and S. In addition restriction fragment length polymorphisms have been detected in the C2 gene. These DNA polymorphisms subdivide the common allelic variant of C2 (C2C) and reveal that there is much greater variability at the C2 locus than that detected by protein typing.

Alleles