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IL-13 results in differential regulation of the complement proteins C3 and factor B in tumour necrosis factor (TNF)-stimulated fibroblasts.

IL-13, like IL-4, a product of activated T cells, has multiple biological actions, primarily on B cells and monocytes. The purpose of the present study was to compare the effects of IL-13 with those of IL-4 on the synthesis of complement proteins in fibroblasts. Dermal fibroblasts were developed from skin biopsies. Confluent monolayers were stimulated with the relevant cytokine or combinations of cytokines and biosynthetically labelled with 35S-methionine. The specific proteins were analysed using immunoprecipitation and SDS-PAGE. Addition of IL-13 to fibroblast cultures treated with TNF-alpha resulted in a dose-dependent increase in C3 protein biosynthesis and a concomitant down-regulation of factor B protein biosynthesis. In TNF-stimulated fibroblasts, the addition of IL-13, 100 ng/ml, induced a 2.45-fold increase in the synthesis of C3, while in the same cells under identical conditions the synthesis of factor B was only 42% of the level without IL-13. Similar effects of IL-13 were noted on IL-1-treated fibroblasts. These effects were specific for C3 and factor B, and no alteration of the constitutive or TNF-induced synthesis of C1s or C1 inhibitor proteins was observed. IL-13 altered the synthesis of C3 and factor B proteins also in fibroblasts stimulated with interferon-gamma (IFN-gamma) in addition to TNF, in the same direction as it did in cells stimulated with TNF alone. IL-13 has similar effects to those of IL-4 on the synthesis of C and factor B in TNF- and IL-1-stimulated fibroblasts. The observed effects of IL-13 are IL-4-independent, as anti-IL-4 antibody abrogates IL-4-induced effects, but has no effect on IL-13-induced responses. This interaction between different cytokines on the synthesis of proinflammatory and immunoregulatory proteins may have significance, particularly at local sites of inflammation, and may affect the synthesis of complement proteins in inflamed joint as in rheumatoid arthritis.

Adolescent↗

The first component of complement. I. Purification and properties of native C1.

The first component of complement has been purified by using affinity chromatography on Sepharose-bound IgG. Unlike earlier procedures that yield the activated form of C1, in this method C1 is maintained in the native form by the protease inhibitor p-nitrophenyl, p'-guanidinobenzoate (NPGB). The procedure requires only two steps and yields pure C1 as judged both by SDS-PAGE analysis and by effective molecule calculations. The yields have varied from 30 to 50% in over 50 preparations. The functional properties of the purified native C1 correspond to those of C1 in serum. The dose-response activity profile is nonlinear, but becomes linear when C1 IS ALLOWED TO SELF-ACTIVATE. From SDS-PAGE analysis of the self-activated C1, all the C1r and C1s subcomponents are converted to the activated split products, indicating that all C1 molecules are biologically active. The recovery of C1 activity is dependent on the use of a heterologous source for the IgG on the affinity absorbant. The conditions of binding and elution from the Sepharose-IgG column are critical, indicating that immunoglobulin-bound C1 is rapidly inactivated under physiologic conditions by serum inactivators. The activation of the purified C1 in fluid phase has been explored both in the presence and absence of C1-inhibitor.

Benzoates↗

The complement system of Calomys callosus, Rengger, 1830 (Rodentia, Cricetidae).

The complement system (C) of Calomys callosus, Rengger, 1830 (Rodentia, Cricetidae), a wild reservoir for several infectious agents in Latin America, was characterized. Sera from normal adult animals lysed sheep erythrocytes (Es) previously sensitized with rabbit serum anti-Es (Ar) in the presence of veronal-buffered saline containing 0.15 mM CaCl2 and 0.5 mM MgCl2, pH 7.4, or unsensitized rabbit erythrocytes (Er) in the presence of one-half isotonic strength veronal-buffered-saline containing 2.5% glucose, 2 mM MgCl2 and 10 mM EGTA, pH 7.4. Both hemolytic curves were sigmoidal in shape, with CH50 values of 30-40 for females and 20-30 for males. C5, determined hemolytically using the intermediate cells EsArClm4m2m3m, was approximately 4.5 x 10(8)/ml and 4.0 x 10(8)/ml for females and males, respectively. Immunochemical serum analyses by double immunodiffusion or by immunoblotting using polyclonal antisera against human C1s, C1q, C2, C3, C4, C5, C8 and factors B, I and H indicated that C. callosus C components factor B, C4 and C3 cross-reacted with the corresponding human C components. Thus, C. callosus was found to contain effective classical and alternative pathways (CP, AP) and common pathways, reasonable amounts of C5 and common epitopes in the key C components, factor B, C4 and C3, which were preserved during evolution.

Animals↗

Synthesis of C1 inhibitor in fibroblasts from patients with type I and type II hereditary angioneurotic edema.

Patients with hereditary angioneurotic edema (HANE) have serum levels of functionally active inhibitor of the first component of complement (C1 INH) between 5 and 30% of normal, instead of the 50% expected from the single normal allele. Increases in rates of catabolism have been documented in patients with HANE and certainly account for some of decrease in C1 INH level. A possible role for a decrease in synthesis of C1 INH in producing serum levels of C1 INH below the expected 50% of normal has not been well studied. We studied the synthesis of C1 INH in skin fibroblast lines, which produce easily detectable amounts of C1 INH. In type I HANE cells, C1 INH synthesis was 19.6 +/- 4.0% (mean +/- SD) of normal, much less than the 50% predicted. In type II HANE cells, the total amount of C1 INH synthesis (functional and dysfunctional) was 98.9 +/- 17% of normal; the functional protein comprised 43% of the total. Thus, type II HANE cells synthesized functional C1 INH at a much greater rate than for the type I cells. In both type I and II HANE cells, amounts of steady-state C1 INH mRNA levels paralleled rates of C1 INH synthesis, indicating that control of C1 INH synthesis occurred at pretranslational levels. Both type I and type II fibroblasts synthesized normal amounts of C1r and C1s. These data suggest that the lower than expected amounts of functionally active C1 INH in type I HANE may be due, in part, to a decrease in rate of synthesis of the protein, and that the expressions of the normal C1 INH allele in HANE is influenced by the type of abnormal allele present.

Adult↗

Biosynthesis of the first component of complement by human fibroblasts.

1. Haemolytic activity corresponding to that of the first component of complement (C1) was synthesized and secreted by all nine human fibroblast cell lines examined. No activity was found in the culture media of a variety of other human cell lines. 2. The component-C1 haemolytic activity secreted by the fibroblast lines behaved in an identical manner, in most respects, with that of the component-C1 haemolytic activity of human serum. The component-C1 haemolytic activity secreted by fibroblasts, however, was less susceptible to inhibition by rabbit fragment F(ab')(2) anti-(human subcomponent C1q) than was the component-C1 haemolytic activity of human serum. 3. Biosynthesis of fibroblast component-C1 haemolytic activity was inhibited by the presence of cycloheximide and regained on its removal. 4. Incorporation of radioactivity into proteins secreted by the fibroblasts and release of component-C1 haemolytic activity by the fibroblasts both increased in a linear manner until several days after the cultures had reached a state of confluent growth. 5. Radioactivity was incorporated into subcomponents C1q, C1r and C1s, as judged by the formation of specific immunoprecipitates and by absorption with immune aggregates. 6. The immunoprecipitates formed by using antisera against subcomponents C1r and C1s were run on polyacrylamide gels in sodium dodecyl sulphate, and this provided convincing physiochemical evidence for the biosynthesis of these subcomponents de novo. 7. The results obtained with immunoprecipitates formed by using anti-(subcomponent C1q) suggest that subcomponent C1q may be synthesized and secreted by fibroblast cell lines in vitro, in a form with a higher molecular weight than that of subcomponent C1q which is isolated by conventional techniques of protein fractionation from fresh serum.

Cell Line↗

Leukocyte-derived complement inhibitor. IV. The functional properties of C1 bound to erythrocytes pretreated with leukocyte culture supernatant.

E, pretreated with leukocyte cultures supernatant (ES), binds C1 through C1q; ES and EIgM that bind the same amount of C1 as measured in a hemolytic assay have the same uptake of 125I-C1q; ESC1q and EIgMC1q, carrying the same number of molecules of CUq per cell, have the same uptake of CUr and CUs; soluble immune compleses prevent the binding of C1 and C1q to ES. The activity of C1 bound to ES is impaired; ESC1 can react with C4 but not with C2. The C4 turnover and the C1 ING turnover by ESC1 are reduced so that ES-bound C1 is protected from destruction by C1 ING. These modifications are fully reversed when C1 is transferred from ES to EA:C1 recovers its ability to react with C2, and C1 INH. Thus the C1s activity can be modulated inside the C1 molecular complex upon binding of C1q to a lymphocyte product. In addition, the 125I-C1q uptake is proportional to the amount of IgM hemolysin used to sensitize E; it has, however, an exponential relationship to the amount of IgG or S used to sensitize E. The ratio of 125I-C1q uptake towhole C1 uptake measured in a hemolytic assay is lowerthan 2. This indicates that one molecule of IgM is sufficient to bind one molecule of C1q on E, that several molecules of IgG or S are required to bind one molecule of C1q, and that one molecule of C1q is sufficient to create a lytic site on E.

Animals↗

Elimination of inhibition in euglobulin fibrinolysis by use of flufenamate: involvement of C1-inactivator.

The fibrinolytic activity of euglobulin fractions prepared from human morning plasma and assayed on fibrin plates is strongly inhibited by the C1-inactivator present in the fractions. Flufenamate, a potent representative of the group of synthetic thrombolytic agents, eliminates this inhibition in euglobulin fractions. This elimination is an apparently irreversible reaction dependent on concentration, time and temperature. The fibrinolytic enhancing effect of flufenamate in euglobulin fractions correlated well with a similar effect of added C1s, which neutralized the C1-inactivator. The effect of flufenamate was slightly greater than that of added C1s, suggesting an additional effect of the flufenamate. The activity enhancing effect of the flufenamate at the lower molarities could be separated from an activity decreasing effect at the higher molarities. A simple technique by which inhibitory effects in euglobulin fibrinolysis are selectively eliminated is described.

Complement C1 Inactivator Proteins↗

Interaction of C1-inhibitor with the C1r and C1s subcomponents in human C1.

1. Insoluble IgG-ovalbumin aggregates were used to bind and activate C1 from human serum. The bound C1 provided a useful reagent for studying the interaction of C1 subcomponents with C1-inhibitor. 2. C1-inhibitor bound to both subcomponents (C1r and C1s in C1 and formed stable complexes of respective apparent molecular weights 197,000 and 185,000, as determined by sodium dodecyl sulphate-polyacrylamide gel electrophoresis. The binding reaction proceeded more readily with C1s than with C1r and was correlated with the inhibition of C1s esterase activity. 3. At physiological ionic strength, binding of C1-inhibitor to subcomponents C1r and C1s caused release of these subcomponents from the C1-immune aggregates complex, indicating that C1-inhibitor binding decreased the inter-subcomponent binding forces in C1. At low ionic strength, however, this release did not occur.

Complement C1↗

A secondary C1s interaction site on C1-inhibitor is essential for formation of a stable enzyme-inhibitor complex.

This paper examines the location of a secondary binding site for C1s on C1-inhibitor (C1-inh) which is required for the formation of SDS-stable Cls-C1-inh complexes. We used a synthetic peptide (residues 448-459) corresponding to the distal hinge region of C1-inh. This peptide binds to C1s and C1s preincubated with the peptide cleaves C1-inh but does not form a stable C1s-C1-inh complex. Computer modelling of C1-inh shows that residues Q452, Q453 and F455 are surface-exposed and that the secondary binding site may also include residues H291 and F292 which are conserved in serpins.

Animals↗

C1 dissociation in serum: estimation of free C1q by electroimmunoassay.

A two-stage electroimmunoassay was developed for measuring macromolecular C1 (C1qrs) and free C1q. The method was based on Ca2+ dependent fixation of C1qrs to agarose, followed by immune precipitation of dissociated C1s in the presence of EDTA. Free C1q was estimated from the increase in C1qrs resulting from saturation of C1q in the samples with purified C1r-C1s. The assay system was studied under various experimental conditions. Combined analysis by electroimmunoassay and crossed immunoelectrophoresis indicated that part of the free C1q in undiluted normal serum could be attributed to physiological C1 activation. Owing to concentration dependent C1qrs dissociation the proportion of free C1q increased with the dilution of serum. Results obtained with serum and with purified C1qrs were consistent with the formation of an equimolar C1q:C1r-C1s complex. However, the capacity for C1r-C1s binding appeared to be higher in the purified system than in serum. Serum concentrations of free C1q were high in some of the patients with disease conditions characterized by increased C1 activation, such as systemic lupus erythematosus or primary biliary cirrhosis.

Complement Activating Enzymes↗

Activation of complement by serum-resistant Neisseria gonorrhoeae. Assembly of the membrane attack complex without subsequent cell death.

Interaction of the human complement system in normal human serum (NHS) with serum-resistant and -sensitive Neisseria gonorrhoeae was evaluated to better understand the mechanism of serum-resistance. Complement activity (CH50) was depleted from NHS in a dose-dependent fashion by both serum-resistant and -sensitive N. gonorrhoeae. No detectable CH50 remained in NHS incubated with 10(9) colony-forming units (CFU)/ml serum of either resistant or sensitive strains. When smaller numbers of bacteria were incubated with NHS, lesser, yet comparable, amounts of CH50 were depleted by both resistant and sensitive strains. Hemolytic C2 activity was diminished by 33% in the case of resistant N. gonorrhoeae (10(8) CFU/ml serum) and by 48% in the case of a sensitive strain. No detectable decreases in hemolytic C4 or C7 activities were found with either sensitive or resistant strains at this concentration. Both resistant and sensitive strains activated C1s in NHS. Resistant strains specifically activated 19-21% of radiolabeled C1s in NHS, whereas sensitive strains activated 18-32%. Both resistant and sensitive strains also activated C5 in NHS. In binding assays using radiolabeled C5 and C9 in NHS, resistant and sensitive strains bound comparable amounts of C5 and C9. The number of bound C5 and C9 molecules varied according to the number of bacteria or amount of serum used in the assay. The ratio of C9/C5 bound to a sensitive strain was 6.8, and to a resistant strain was 8.2, suggesting that C5 and C9 were incorporated into membrane attack complexes (MAC). Electron microscopic examination of resistant and sensitive strains incubated with NHS revealed that MAC is bound to the surfaces of the resistant strain as well as the sensitive strain.

Blood Bactericidal Activity↗

N-linked glycosylation is required for c1 inhibitor-mediated protection from endotoxin shock in mice.

C1 inhibitor (C1INH) prevents endotoxin shock in mice via a direct interaction with lipopolysaccharide (LPS). This interaction requires the heavily glycosylated amino-terminal domain of C1INH. C1INH in which N-linked carbohydrate was removed by using N-glycosidase F was markedly less effective in protecting mice from LPS-induced lethal septic shock. N-deglycosylated C1INH also failed to suppress fluorescein isothiocyanate (FITC)-LPS binding to and LPS-induced tumor necrosis factor alpha mRNA expression by the murine macrophage-like cell line, RAW 264.7, and cells in human whole blood. In an enzyme linked immunosorbent assay, the N-deglycosylated C1INH bound to LPS very poorly. In addition, C1INH was shown to bind to diphosphoryl lipid A (dLPA) but only weakly to monophosphoryl lipid A (mLPA). As with intact LPS, binding of N-deglycosylated C1INH to dLPA and mLPA was diminished in comparison with the native protein. Removal of O-linked carbohydrate had no effect on any of these activities. Neither detoxified LPS, dLPA, nor mLPA had any effect on the rate or extent of C1INH complex formation with C1s or on cleavage of the reactive center loop by trypsin. These data demonstrate that N-linked glycosylation of C1INH is essential to mediate its interaction with the LPA moiety of LPS and to protect mice from endotoxin shock.

Animals↗

The molecular basis for the difference in immune hemolysis activity of the Chido and Rodgers isotypes of human complement component C4.

Human C4 displays a structural polymorphism which is consistent with there being two closely linked genetic loci coding for this protein. These give rise to two C4 isotypes, designated C4A and C4B, which can be distinguished by charge and apparent m.w. differences in their respective alpha-chains and by the presence or absence of the Chido/Rodgers blood group antigens. Previous qualitative studies of C4 immune hemolysis activity in whole plasma had suggested that the C4B isotype was functionally more active. By using purified C4A and C4B isolated from individual donors known serologically to possess only one of the C4 isotypes, we examined the molecular basis for the differences in their respective hemolytic activities. It was found that the C4B:C4A hemolytic activity ratio was approximately 4:1. This fourfold difference could not be accounted for by a commensurate difference in the cleavage rate of the two isotypes by C1s by differences in the kinetics of assembly or intrinsic decay of the respective C3 convertase enzymes, or by differences in the rate of isotypic C4b cleavage by factor I in the presence of C4bp . However, the fourfold greater deposition efficiency of nascent C4b of the C4B isotype onto the surface of C1-bearing sheep erythrocytes quantitatively accounted for the observed difference in immune hemolysis function. It was further found that the thioester bond of nascent C4b of the C4A isotype preferentially transacylates onto amino group nucleophiles, whereas in the C4B isotype, acylation of hydroxyl groups is strongly preferred. Thus, the difference in immune hemolysis activity between the two C4 isotypes does not necessarily indicate an impairment of function in C4A; it may merely be a reflection of the relative abundance at the surface of a C1-bearing target of hydroxyl and amino groups capable of being acyl acceptors for nascent C4b. Finally, we also present evidence showing that the apparent m.w. difference between the alpha-chains of the C4A and C4B isotypes is not due to differences in protein glycosylation.

Acylation↗

C1R levels in normal human sera determined by electroimmunoassay.

C1r levels in normal adults were determined by electroimmunoassay. The 95 per cent range was 71-133 per cent of a normal reference pool. C1r values were well correlated to the levels of C1q (r = 0.708) and of C1s (r = 0.768). The interplate variation of the method on double determinations was 3.4 (SD). C1r values in normal sera not appreciably affected by storage at room temperature or by repeated freezing and thawing. The C1r antigen in EDTA plasma was found to be labile.

Complement C1↗

The presence of a C1-inhibitor-like molecule (C1-INH-L) on human sperm: its involvement in sperm motility.

PROBLEM: An 88-92-kDa C1-inhibitor-like molecule (C1-INH-L) was previously identified to elicit cytotoxic sperm antibody response in infertile men and women. Here, we document that it is present on the human sperm surface and could be detected by an enzyme-labeled immunoglobulin G (IgG) fraction of anti-human C1-INH antibody. METHOD OF STUDY: Western blot analysis, enzyme-lined immunoadsorbent assay (ELISA) and computerized sperm motion analysis. RESULTS: The existence of C1-INH-L on the sperm surface is calcium independent. Phosphatidylinositol-specific phospholipase C (PIPLC), EDTA, and acid (pH 3.0) could not remove the C1-INH-L from sperm, but trypsin did. Activated C1s was able to bind to the sperm surface. Immunofluorescence studies localized the protein to the head and midpiece of the sperm membrane. The C1-INH-L exists on both uncapacitated and capacitated sperm surfaces, which suggests that this protein is a sperm-surface protein. The heat-treated (56 degrees C, 30 min) IgG fraction of anti-C1-INH greatly reduced the percentage of motile spermatozoa and the progressive and path velocities in the absence of complement. CONCLUSION: Our data suggest that C1-INH is a sperm membrane-anchored protein that may have complement and sperm motility regulatory function.

Complement C1 Inactivator Proteins↗

Fluid phase destruction of C2hu by C1hu. II. Unmasking by C4ihu of C1hu specificity for C2hu.

It has been demonstrated that C1 isolated in the unactivated form fails to inactivate C4 or C2 in the fluid phase, while the activated molecule, C1 rapidly converts C4 to hemolytically inactive C4i, but does not efficiently inactivate C2. The production and presence of C4i now confers on C1 the ability to rapidly inactivate C2. After heating at 56 degrees C, so as to destroy the hemolytic activity, heat inactivated C1 is still capable of inactivating C4 but the presence of C4i no longer confers an ability to inactivate C2. Studies with the subunits of C1-C1q, C1r, C1s, indicate that the action of C1s on C2 can be inhibited by C1r and that this inhibition is reversed by the presence of homologous C4. These studies indicate that the interaction of C4i with a heat labile receptor conformation in C1 uncovers a masked specificity for C2.

Animals↗

Circulating immune complexes in Behçet's syndrome: purification, characterization and cross-reactivity studies.

The C1q-binding assay was performed on 30 sera from patients with Behçet's syndrome and circulating immune complexes were found in 46%. Circulating immune complexes were isolated and purified from the sera of two patients by immunoadsorption on a column of polymethylmetacrylate beads coated with C1q and then labelled with 125I. In double immunodiffusion these purified immune complexes were found to contain IgG, C1q, C1s and C3. Anti-IgG activity was not detectable in the purified immune complexes while specific cross-reactivity was found in a solid-phase radioimmunoassay with the majority of the sera of behçet's syndrome.

Antigen-Antibody Complex↗

Interaction between complement subcomponent C1q and bacterial lipopolysaccharides.

The heptose-less mutant of Escherichia coli, D31m4, bound complement subcomponent C1q and its collagen-like fragments (C1qCLF) with Ka values of 1.4 x 10(8) and 2.0 x 10(8) M-1 respectively. This binding was suppressed by chemical modification of C1q and C1qCLF using diethyl pyrocarbonate (DEPC). To investigate the role of lipopolysaccharides (LPS) in this binding, biosynthetically labelled [14C]LPS were purified from E. coli D31m4 and incorporated into liposomes prepared from phosphatidylcholine (PC) and phosphatidylethanolamine (PE) [PC/PE/LPS, 2:2:1, by wt.]. Binding of C1q or its collagen-like fragments to the liposomes was estimated via a flotation test. These liposomes bound C1q and C1qCLF with Ka values of 8.0 x 10(7) and 2.0 x 10(7) M-1; this binding was totally inhibited after chemical modification of C1q and C1qCLF by DEPC. Liposomes containing LPS purified from the wild-strain E. coli K-12 S also bound C1q and C1qCLF, whereas direct binding of C1q or C1qCLF to the bacteria was negligible. Diamines at concentrations which dissociate C1 into C1q and (C1r, C1s)2, strongly inhibited the interaction of C1q or C1qCLF with LPS. Removal of 3-deoxy-D-manno-octulosonic acid (2-keto-3-deoxyoctonic acid; KDO) from E. coli D31m4 LPS decreases the binding of C1qCLF to the bacteria by 65%. When this purified and modified LPS was incorporated into liposomes, the C1qCLF binding was completely abolished. These results show: (i) the essential role of the collagen-like moiety and probably its histidine residues in the interaction between C1q and the mutant D31m4; (ii) the contribution of LPS, particularly the anionic charges of KDO, to this interaction.

Acetates↗