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Concentrations of C1q, factor B, factor D and properdin in healthy children, and the age-related presence of circulating C1r-C1s complexes.

The concentrations of C1q, factor B, factor D and properdin were determined in healthy children belonging to various age groups of one through five years of age. All concentrations were found to be age-dependent, though they varied from one component to another with regard to ontogenetic pattern. Thus, the concentrations of factor B were high, and those of factor D low throughout the age range studied. C1q and properdin levels were lowest in the younger children, who also showed a fairly high incidence of C1r-C1s complexes in excess of C1q. Since the concentrations of C1q are influenced by those of IgG, the presence of C1r-C1s complexes might partly have reflected maturation of immunoglobulin synthesis during ontogeny.

Age Factors

The structures of human C1r and C1s and their relationship to other serine proteases.

The recent sequencing of the C1 subcomponents has allowed comparison with other molecules of homologous primary structure. Where tertiary structures are available for at least one member of the family it is possible to make further progress by modelling the amino acid sequence of the complement protein into the three-dimensional coordinates of the directly determined structure, thereby obtaining an approximation of the structure of the complement protein. Molecular modelling allows structure-function relationships to be explored and suggests further experiments that may be amenable to techniques such as site-directed mutagenesis.

Amino Acid Sequence

Models for the C1 complex determined by physical techniques.

The C1 complex is an association of C1q and C1r2C1s2. Neutron scattering and ultracentrifugation provide a valuable means of understanding the solution structure of the subcomponents and their complex, and these can be supplemented by protein structure prediction techniques. C1q is constructed from six globular heads connected by collagen-like arms. The solution data for C1q show that the arms are of length 14.5 nm and not 11.5 nm as proposed from electron microscopy, the average arm-axis angle is 40 degrees, and that the structure is flexible in solution at the junction of the six arms. The sequences of C1r and C1s show that each is constructed from six protein domains. C1r and C1s are elongated macromolecules of lengths 18-20 nm. Their solution properties are best described as the lengthwise arrangement of a protease domain of diameter 4 nm, two "short consensus repeat" domains, each of length 4 nm, and an N-terminal globular entity of length 6 nm containing the first three protein domains. Solution data on the C1r2 dimer is interpreted as an X-shaped association of the two C1r monomers as proposed from electron microscopy. Six criteria are enumerated for constructing models of C1 from these two structures, and four distinct models for the C1 complex are reviewed. While further evidence is required to make this choice unequivocal, the W-model is favoured. This places each monomer of C1r and C1s on four adjacent arms of C1q, and offers the most reasonable explanation of the known properties of the C1 complex.

Complement C1

C1r, subunit of the first complement component: purification, properties, and assay based on its linking role.

A method to obtain C1r, a subunit of the first complement component, in a highly purified state has been described for the first time. The stepwise method starts with a neutral euglobulin precipitation, after diethylaminoethyl- and carboxymethyl-cellulose chromatography and a final preparative polyacrylamide electrophoresis step. Such C1r preparations are devoid of C1q and C1s activities and show only one protein band on analytic polyacrylamide electrophoresis. Rabbits injected with this preparation produced antisera showing only one precipitation band. The stability of C1r activity was determined under different conditions, and C1r was found to be labile at 37 degrees C, pH 7-8 and low ionic strength. The electrophoretic mobility of purified C1r is that of a beta-globulin on disc acrylamide electrophoresis and on agarose electrophoresis at pH 8.6. Its molecular weight as estimated by sephadex chromatography is 168,100.A sensitive hemolytic assay based on the property of C1r to link C1s to C1q and thereby to generate macromolecular C[unk]1 is described. The number of C[unk]1 molecules generated is stoichiometrically related to the concentration of C1r for a fixed C1q and C1s concentration provided that the titration is carried out below the plateau zone. Macromolecular C1 can be separated from free C1s as the former is cell bound. This method of purification and assay should allow the development of monospecific antisera and further chemical study of C1r.

Beta-Globulins

Genetic studies of low-abundance human plasma proteins. XI. Linkage analysis and population genetics of the C1S subcomponent of the first complement component.

Although subcomponents C1r and C1s of the first complement component, C1, have been established to be in the same linkage group as the proline-rich protein gene cluster on chromosome 12p13.2, no direct analysis of linkage between the C1R and C1S structural gene loci has been available. We have detected through a population screening study 5 families which are heterozygous at the structural loci for both C1R and C1S. Three of the 5 families, 21 individuals, were informative for linkage. A maximum lod score of 1.505 at theta = 0.00 was found in a two-point analysis between C1R and C1S. Ten populations were screened for structural variation at the C1S locus. Only US Whites and a Kodiak Island Eskimo group expressed heterogeneity. The frequencies of the designated alleles, C1S*1 and C1S*2, were 0.992 and 0.007, respectively, in the US White population and 0.998 and 0.002, respectively, in the Kodiak Island Eskimo population. In addition, the product of a putative new allele, designated C1S*4, was observed in a single US White individual but segregation of this variant was not observed in the limited family data available.

Blood Proteins

A 100-kDa protein in the C4-activating component of Ra-reactive factor is a new serine protease having module organization similar to C1r and C1s.

Ra-reactive factor (RaRF), a C-dependent bactericidal factor in mice, is composed of one polysaccharide-binding component and one C4/C2-activating component. The former is an oligomer of 28-kDa protein corresponding to the mannose-binding protein of mice. The 100-kDa protein, P100, has been shown to be present in the C4/C2-activating component. This protein generates 29- and 70-kDa polypeptide chains when reduced. In this study, we determined the nucleotide sequence of cDNA coding for P100. cDNAs were prepared by reverse transcription PCR and cassette-ligation-mediated PCR on mRNA from BALB/c mouse liver, using primers synthesized by reference to the sequence determined in a previous study. The results of cDNA sequencing indicate that the precursor protein of P100 containing a 24-residue signal peptide consists of 704 amino acid residues. Taking the results of the previous electrophoretic study into consideration, it is thought that the cleavage of mature P100 protein generates a 29-kDa chain of 251 residues and a 70-kDa chain of 429 residues. Although homology in the amino acid sequence of P100 with that of human C1r and C1s subcomponents of C was less than 40%, a striking similarity in domain organization was found among these proteins, indicating that P100 is a new C4-activating serine protease structurally similar to C1r and C1s. Northern hybridization showed that the liver was the primary site of the expression of the P100 gene.

Amino Acid Sequence

Functional analysis of the serpin domain of C1 inhibitor.

To analyze the role of the heavily glycosylated amino-terminal domain of C1 inhibitor in protease inhibitory activity, two truncated C1 inhibitor molecules were constructed. The abilities of the recombinant truncated inhibitors to complex with target proteases were compared with that of the wild-type recombinant protein. One recombinant truncated molecule consisted of amino acid residues 76 to 478 (C-serp(76)) and the other of residues 98 to 478 (C-serp(98)). The recombinant proteins were each expressed in similar quantities. The thermal denaturation profiles of the two truncated proteins were similar to that of the wild-type protein. Identical binding of C1s, C1r, kallikrein, and beta factor XIIa was observed with the three molecules. Furthermore, the truncated molecules also effectively inhibited C1 activity in hemolytic assays. These studies therefore clearly demonstrate that the amino-terminal domain of C1 inhibitor does not influence complex formation with target proteases.

Complement C1 Inactivator Proteins

A monoclonal antibody to C1q which appears to interact with C1r2C1s2-binding site.

A monoclonal antibody (SB-4) to human C1q was prepared. The equilibrium constant of the antibody for C1q was found to be greater than 10(10) M-1. It has been shown that the antibody binds to the A-B chain dimer, probably via the B chain of C1q. Pepsin digestion of C1q at pH 4.5, which fragments the globular regions but leaves the collagenous region intact, allowed the demonstration that the antigenic site is located in the collagenous region of the molecule. The effect of the antibody on haemolytic activity has shown that it is capable of inhibiting the formation of EAC1 cells from EAC1q cells plus C1r and C1s but is incapable of inhibiting the C1 activity of performed EAC1 cells. This indicates that the binding of the antibody to the collagenous portion of the B chain of C1q probably prevents interaction between C1q and the C1r2-C1s2 complex.

Antibodies, Monoclonal

Protein engineering studies on C1r and C1s.

1. C1r and C1s cDNAs were placed downstream the strong polyhedrin promoter in the Autographa californica nuclear polyhedrosis virus and the recombinant proteins were expressed in insect cells, in biologically active form. The yield of expression is high enough to get recombinant components for chemical and functional studies (5 micrograms/ml cell culture supernatant). 2. The biological activity and the post-translational modifications of the recombinant subcomponents were checked. The rC1r and rC1s proved to be biologically active in the hemolytic assay, although their glycosylations were different compared to that of the serum proteins. The insect cells are able to beta-hydroxylate the Asn residue of the EGF domain in the C1r but with a low efficiency. It is clear now, that this post-translational modification does not play a role in the Ca2+ dependent C1r-C1s interaction. 3. Two deletion mutants of C1r cDNA were constructed in order to clarify the role of domain I and II. The results show that both, domain I, and II are absolutely necessary for the tetramer formation and both have a regulatory role in the autoactivation. The autoactivation of the mutants is accelerated significantly. 4. Hybrid cDNA constructions were also made, and one of them was expressed. In the C1s alpha R hybrid the C1s alpha part cannot dimerize in presence of Ca2+, but it can form a tetramer with C1r2, that can bind to C1q. This observation indicates that the function of the C1s alpha part in the hybrid is modulated by the C1r part (gamma B) of the molecule. 5. In order to control the autoactivation process point mutant cDNAs were constructed through altering the Arg-Ile bond in the catalytic domain of the C1r. The Gln-Ile construction is a stable zymogen while the Arg-Phe mutant has a lower rate of autoactivation. These results do justify our approach of using domain-domain interchange, domain deletion and point mutations in combination, to reveal the structural background of C1 function at intramolecular level.

Animals

Antibody-independent activation of C1. I. Differences in the mechanism of C1 activation by nonimmune activators and by immune complexes: C1r-independent activation of C1s by cardiolipin vesicles.

C1 activation is controlled by the regulatory protein C1-inhibitor (C1-INH). In contrast to immune-complex-induced activation, which is insensitive to C1-INH, antibody-independent activation of C1 is modulated by C1-INH. The mechanisms regulating nonimmune activation were studied with two phospholipids varying in their capacity to activate C1 in the presence of C1-INH: cardiolipin (CL) and phosphatidylglycerol (PG). Whereas C1-INH consistently suppressed activation by PG vesicles, a dose-dependent increase in C1 activation was measured with CL vesicles above 40 mole %. A similar dose-response binding of C1s requiring C1q, but not C1r, was detected only on CL vesicles, but neither on PG vesicles nor on immune complexes. This binding was Ca2+-dependent, suggesting that dimeric C1s is involved and was inhibited by spermine. The C1q-bound C1s was specifically cleaved at 37 degrees C into its active 58 kDa and 28 kDa chains, in the absence of C1r. On the addition of anti-CL antibodies, the C1q-mediated cleavage of C1s by CL vesicles was specifically inhibited. The cleavage of C1r on CL vesicles was also determined. When macromolecular C1 was offered in the presence of C1-INH, C1r cleavage was detected; however, the presence of C1s was a critical factor for C1r activation, because it was required on CL vesicles, but not on immune complexes. These results show that nonimmune activation of C1 presents specific features which distinguish it from immune complex-induced activation. These characteristics varied with the capacity of antibody-independent activators to activate C1 in the presence of C1-INH.

Antigen-Antibody Complex

Biosynthesis of C1r and C1s subcomponents.

Biosynthesis of C1r and C1s subcomponents has been studied using monocytes and macrophages, hepatocytes and hepatoma cell lines or fibroblasts. Both proteins have been detected in supernatants and cell lysates as proenzymic monocatenar molecules. C1r and C1s were secreted by stimulated monocytes and by Hep G2 cells, according to a 1:1 stoichiometry. Monocyte C1s secretion was enhanced by lymphokines, such as alpha- or gamma-interferon or by placental soluble factors. Expression of both proteins was coordinately modulated by a newly purified 14 kDa lymphokine at a pretranslational level. Data from in vitro RNA translation are discussed.

Animals

Binding of purified C1 subcomponents, C1 inactivator and their complexes to immobilized heparin.

Under specified conditions purified C1q, activated C1r and C1s and C1r-C1s complexes were bound independently of Ca2+, to heparin-Sepharose, and could be eluted by an increasing salt gradient. Zymogen C1r and C1s, C1r-C1s complexes, C1 inactivator, and C1r-C1s-C1 activator complexes were not bound. However, at lower conductance Ca2+ independent binding of C14 occurred, which was utilized in the purification of C14 and C1s. In the presence of C1t (serum amyloid P component), C1s was firmly retained on heparin-Sepharose, which was probably due to formation of a C1s-C1t complex.

Amyloid

Models for C1. Tools or toys? The real biological challenge.

C1 modelling, based on structural and functional data, does not yet bring the different laboratories to a consensus on C1 activation, activity and associated controls. The heart of C1 beats in its subcomponent C1r2, which, from its domain structure and its twinning with subcomponent C1s, represents the challenge for the knowledge of C1. The 8-shaped model proposed for the C1r2-C1s2 association, with a head-to-tail interaction between the C1r catalytic domains, appears as the hub of an active world in the bosom of C1q. More detail is now required on protein-protein interactions inside C1 to refine the available models or to propose alternatives. Precise data on the interactions of C1 proteins with activators, substrates or control proteins are also likely to bring pertinent help in proposing future models for C1.

Binding Sites

Quantitation of (C1INH)2 C1r-C1s complexes in glomerulonephritis as an indicator of C1 activation.

C1 activation was assessed in several forms of glomerulonephritis by radioimmunoassay quantitation of circulating (C1INH)2 C1r-C1s complexes (INC). Eight patients with active systemic lupus erythematosus (SLE) and nephritis had elevated serum INC (mean = 15.3 vs control = 5.8, P less than 0.01). Their INC levels were normal during remission. Serum INC had a weak inverse correlation with serum C1q greater than 3 mg/dl (r = 0.42, P = 0.02). In longitudinal studies, serum INC also had a weak inverse correlation with serum C3 and C4. Only 1 of 10 patients with type I and 1 of 15 with type III membrano-proliferative glomerulonephritis (MPGN) had elevated serum INC. No patient with type II MPGN had elevated levels. Two of 10 patients with poststreptococcal glomerulonephritis (P-SGN) had elevated serum INC, but all normalized with convalescence. Patients with IgA nephropathy had normal serum INC. The data demonstrate the importance of C1 activation in SLE and P-SGN. The mechanism of complement activation in types I and III MPGN remains unclear; the data suggest, but do not prove, that C1-independent complement activation may occur in these patients.

Antigen-Antibody Complex

Isolation and analysis of immune complexes from sera of patients with polymyalgia rheumatica and giant cell arteritis.

Serum samples were obtained from patients with polymyalgia rheumatica (PMR: n = 10) or giant cell arteritis (GCA; n = 7), or both. Samples were taken either before treatment or within one week of starting prednisolone. Immune complexes (IC) were concentrated by polyethylene glycol (PEG) precipitation then purified with either IgG anti-C1q-Sepharose or IgG anti-C3c-Sepharose. Complex components were separated by sodium dodecyl sulphate (SDS) gradient polyacrylamide gel electrophoresis then transferred to nitrocellulose by Western blotting. Identification of proteins was carried out using specific antisera. All the IC contained IgM (mu chain), some contained IgA (alpha chain), and IgG (gamma chain). C1r, C1s, C1q, C3, C4, and C reactive protein (CRP), where tested, were found in most but not all IC. The occurrence of properdin, factor B, alpha 2 macroglobulin (alpha 2M), factor H (beta 1H), C1 esterase inhibitor, and C4 binding protein was also investigated. Immune complexes in PMR and GCA differed from those previously characterized in rheumatoid arthritis (RA)1 purified by anti-C1q-Sepharose which contained immunoglobulins and C1q only. No properdin or factor B were detected in RA IC purified with either anti-C1q-Sepharose or anti-C3c-Sepharose.

Aged

New synthetic inhibitors of C1r, C1 esterase, thrombin, plasmin, kallikrein and trypsin.

p-Guanidinobenzoate derivates were prepared and their inhibitory effects on trypsin, plasmin, pancreatic kallikrein, plasma kallikrein, thrombin, C1r and C1 esterase were examined. Among the various inhibitors tested, 6'-amidino-2-naphthyl-4-guanidinobenzoate dihydrochloride, 4-(beta-amidinoethenyl)phenyl-4-guanidinobenzoate dimethanesulfonate and 4-amidino-2-benzoylphenyl-4-guanidinobenzoate dimethanesulfonate were the most effective inhibitors of trypsin, plasmin, pancreatic kallikrein. plasma kallikrein and thrombin and they strongly inhibited the esterolytic activities of C1r and C1 esterase, and then strongly inhibited complement-mediated hemolysis.

Benzamidines

Trimer and tetramer complexes containing C1 esterase inhibitor, C1r and C1s, in serum and synovial fluid of patients with rheumatic disease.

During activation, the first component of complement C1q (C1r-C1s)2 is dissociated in conjunction with the formation of complexes containing C1 esterase inhibitor (C1-INH). Trimer complexes, with zymogen C1s associated with a firm C1-INH-C1r complex (C1-INH-C1r-C1s) can be distinguished from tetramer complexes C1-INH-C1r-C1s-C1-INH) in which C1-INH is firmly bound to both proteases. In the present study a two-stage electroimmunoassay was developed for the specific measurement of C1-INH-C1r-C1s. In the first step, C1-INH and its complexes were immunoprecipitated with anti-C1-INH during electrophoresis in the presence of Ca2+. In the second step, C1s contained in C1-INH-C1r-C1s was dissociated in the presence of EDTA and was measured by immunoprecipitation with anti-C1s. C1-INH-C1r-C1s were consistently found in normal sera. Normal sera did not contain C1-INH-C1r-C1s-C1-INH as assessed with a previously described ELISA procedure. Sera and synovial fluids from two groups of patients with inflammatory arthritis were investigated. In rheumatoid arthritis patients (n = 15) C1-INH-C1r-C1s complexes were usually found at high concentration both in serum and synovial fluid. C1-INH-C1r-C1s-C1-INH complexes were also present with values that were higher in synovial fluid than in serum, in accord with previous findings of classical pathway activation in the inflamed joints of the patients. Patients with spondylarthritic syndromes (n = 7) had serum and synovial fluid C1-INH-C1r-C1s concentrations that were comparable to those of the rheumatoid arthritis patients. If at all present, C1-INH-C1r-C1s-C1-INH were detected in trace amounts. Thus, C1 activation in patients with spondylarthritic syndromes appeared to be efficiently controlled at the C1r level. Distinguishing between C1-INH-C1r-C1s and C1-INH-C1r-C1s-C1-INH may prove of value in further studies of the activation and control of C1 in disease.

Animals

C1R subcomponent polymorphism in Japanese: description of a new allele.

The polymorphism of C1R was investigated in 570 unrelated Japanese individuals using isoelectric focusing and immunoblotting. A total of 11 different C1R phenotypes including a new pattern designated C1R 11-1 were observed. The allele frequencies were C1R*1 = 0.4561, C1R*2 = 0.3377, C1R*5 = 0.1956, C1R*8 = 0.0088 and C1R*R (C1R*9 and C1R*11) = 0.0018. The population data fitted the Hardy-Weinberg equilibrium. The C1R polymorphism in Japanese was shown to be controlled by 3 common alleles, C1R*1, C1R*2 and C1R*5, as compared to Caucasians where only the former 2 are present commonly. This complement system can be a useful genetic marker for anthropological studies.

Alleles