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C4b-binding protein, a regulatory component of the classical pathway of complement, is an acute-phase protein and is elevated in systemic lupus erythematosus.

A radioimmunoassay using monoclonal and polyclonal antihuman C4b-binding protein (C4BP) antibody was developed to quantitate C4BP in serum. Using the assay, the levels of C4BP in healthy individuals, in patients with systemic lupus erythematosus (SLE), and in acute-phase individuals were determined. The levels of C4BP are significantly elevated in individuals with SLE (186%; p = 0.0001) and are even higher in individuals during the acute phase (286%; p = 0.0001). To confirm whether or not individuals were in the acute-phase response, serum C-reactive protein (CRP) levels were assessed. In the acute-phase response, CRP levels were 100-fold elevated over normals, but did not correlate with increases in C4BP (r = -0.031; p = 0.899). In SLE patients, the CRP levels were significantly, but moderately, elevated (5-fold; p = 0.028). The data indicate that C4BP is an acute-phase reactant and is differentially regulated from CRP during the acute-phase response.

Acute-Phase Proteins↗

Regulation of complement activation by C-reactive protein: targeting of the inhibitory activity of C4b-binding protein.

C-reactive protein (CRP) is the major acute phase protein in humans. It has been shown that CRP interacts with factor H, an inhibitor of the alternative pathway of complement, and now we demonstrate binding of CRP to the fluid-phase inhibitor of the classical pathway, C4b-binding protein (C4BP). C4BP bound to directly immobilized recombinant CRP as well as CRP attached to phosphorylcholine. The binding was sensitive to ionic strength and was enhanced in the presence of calcium. C4BP lacking beta-chain and protein S, which is a form of C4BP increasing upon inflammation, bound CRP with higher affinity than the C4BP-protein S complex. The binding could not be blocked with mAbs directed against peripheral parts of the alpha-chains of C4BP while the isolated central core of C4BP obtained by partial proteolytic digestion bound CRP, indicating that the binding site for CRP is localized in the central core of the C4BP molecule. Furthermore, we found complexes in serum from a patient with an elevated CRP level and trace amounts of CRP were also identified in a plasma-derived C4BP preparation. We were also able to detect C4BP-CRP complexes in solution and established that C4BP retains full complement regulatory activity in the presence of CRP. In addition, we found that C4BP can compete with C1q for binding to immobilized CRP and that it inhibits complement activation locally. We hypothesize that CRP limits excessive complement activation on targets via its interactions with both factor H and C4BP.

Binding, Competitive↗

C1 and human platelets. III. Role of C1 subcomponents in platelet aggregation induced by aggregated IgG.

Studies have been performed with platelets using C1 haemolytic assays and platelet aggregation induced by anti-C1q, anti-C1s and aggregated IgG in the presence of C1 subcomponents C1q, C1r and C1s. C1q was removed by EDTA or modified by collagenase from human platelets while after the same treatment C1s remained bound to the platelets. EDTA treated platelets were no longer aggregated by aggregated IgG. The addition of C1q restored the reactivity of the platelets to aggregated IgG while the addition of C1r or C1s was without effect. Furthermore, the addition of C1r or C1s to C1q inhibited the action of C1q in platelet aggregation induced by IgG.The possible association between the different C1 subcomponents and human platelets is discussed.

Complement C1↗

[Concentrations and levels of activity of important serum protein components in preserved serum].

The content of transport proteins, immune globulins, components of the complement system and protease inhibitors were estimated in two different plasma preparations, using bioassays by chromogenic substrates and laser nephelometry. The content of proteins under consideration was found about 50% less than in untreated human plasma. Some proteins such as antithrombin III and factor XIII are missing. The results are discussed in respect to clinical used of plasma preparations.

Antithrombin III↗

Interaction of vaccinia virus complement control protein with human complement proteins: factor I-mediated degradation of C3b to iC3b1 inactivates the alternative complement pathway.

Vaccinia virus complement control protein (VCP) is a virulence determinant of vaccinia virus that helps protect the virus from the complement attack of the host. To characterize the interaction of VCP with C3 and C4 and understand the mechanism by which VCP inactivates complement, we have expressed VCP in a yeast expression system and compared the biologic activity of the purified protein to that of human factor H and complement receptor 1 (CR1). Recombinant VCP bound to C3 and the proteolytically cleaved form of C3 (C3b), but not to the 135,300-m.w. fragment of C3 generated using elastase (C3c) and the 35,000-m.w. fragment of C3 generated using elastase (C3d) and inhibited both the classical and alternative pathways of complement activation. Although rVCP was less effective at inhibiting the alternative pathway than factor H or CR1, it was more effective than factor H at inhibiting the classical pathway. Unlike factor H, rVCP was unable discriminate between alternative pathway-mediated lysis of rabbit and sheep E. A comparison of the cofactor activity in factor I-mediated cleavage of C3b suggested that in contrast to factor H and CR1, which displayed cofactor activity for the three sites, rVCP displayed cofactor activity primarily for the first site, leading to generation of C3b cleaved by factor I between Arg1281-Ser1282 (iC3b1). Its cofactor activity for C4b cleavages was similar to that of soluble complement receptor type 1. Purification and functional analysis of iC3b1 showed that it was unable to interact with factor B to form the alternative pathway C3 convertase, C3b,Bb. These results suggest that the interaction of VCP with C3 is different from that of factor H and CR1 and that VCP-supported first cleavage of C3b by factor I is sufficient to render C3b nonfunctional.

Arginine↗

The fourth component of human complement treated with amines or chaotropes or frozen-thawed (C4b-like C4): interaction with C4 binding protein and cleavage by C3b/C4b inactivator.

We have shown previously that C4 treated with amines or chaotropes, although uncleaved, exhibits properties that are similar to C4b. Studies by other groups suggest that this C4b-like form of C4 is characterized by the lack of an internal thiolester bond that is present in native C4. We report here that C4 treated with N2H4 or KSCN or frozen-thawed, unlike native C4, forms a complex with C4-binding protein (C4-bp) and is cleaved by C3b/C4b inactivator (I). Fragmentation of C4b-like C4 by I occurs without previous cleavage to C4b and requires the presence of C4-bp. Cleavage of C4b-like C4 proceeds in two steps: a small fragment (16,000 m.w.) is released first, followed by cleavage of the remaining alpha-chain fragment (83,000 m.w.) into polypeptides of 46,000 (C4d) and 32,000 m.w. All fragments, except the 46,000 m.w. fragment, are disulfide-linked to the beta- and/or gamma-chains of C4. Cleavage of C4b-like C4 probably occurs at the same points in the alp a-chain as in C4b; however, C4b-like c4 also contains C4a. Based on the m.w. determinations, the C4a portion of the alpha-chain is present in the 83,000 m.w. fragment, and after the second cleavage, in the 32,000 m.w. fragment of C4b-like C4. These findings suggest the following alignment of alpha-chain fragments: the N-terminal C4a portion is attached to a polypeptide of about 25,000 m.w. (alpha 3), which is followed in the sequence by C4d (alpha 2) (46,000 m.w.) and a small 16,000 m.w. fragment (alpha 4) that forms the C-terminus.

Amines↗

Ixodes dammini: salivary anti-complement activity.

Saliva of the tick Ixodes dammini prevents hemolysis of rabbit erythrocytes by the human alternative pathway of complement. Deposition of C3b to activating surfaces and concomitant C3a release are inhibited. C3b deposition to activating surfaces is inhibited regardless the origin (humans, rat, mouse, guinea pig, and hamster) of the serum. The inhibitor elutes as a single peak upon gel filtration, with an apparent molecular weight of 49,000. Salivary anti-complement may contribute to successful feeding of I. dammini in their natural hosts.

Animals↗

Systematic discovery and evaluation of complement inhibitors.

Methods are presented for an orderly search of a chemical file for complement inhibitors. Compounds are initially examined for intrinsic activity against dilute human components in vitro, using hemolytic assays to detect inhibitors of fluid phase C1, of late components lysis of EAC142, and of CVF-induced passive lysis of AET-treated human erythrocytes. Active compounds are then examined for activity against undiluted serum in vitro. Compounds passing this test are examined for activity in vivo against serum complement and complement-dependent lesions, viz. Forssman vasculitis, the reverse passive Arthus phenomenon, and Forssman shock. Methods are given for quantitation of these lesions.

Animals↗

C1 inactivator.

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Amino Acids↗

Lipopolysaccharides as complement inhibitors by complex formation with the purified third complement component (C3).

Lipopolysaccharides (LPS) from different bacteria in smooth or rough form (Y. enterocolitica, Y. pseudotuberculosis, E. coli, S. typhimurium, S. marcescens) strongly inhibited hemolytic C3 in incubation mixtures with purified C3. LPS from a core deficient mutant was still reactive, whereas lipid A no longer affected C3 activity. The physical state of LPS was critical for its effect on C3. Strand-like LPS structures formed by Ca++-induced aggregation of solubilized LPS, as shown by electron microscopy, demonstrated the highest reactivity with C3. Inhibition of hemolytic C3 was found to be due to complex formation between LPS and C3 by a hydrophobic reaction. The binding capacity of 1 microgram LPS-R and LPS-S was as high as 125 ng C3 and 56 ng C3, respectively. The C3b fragment required different reaction conditions for maximal binding. The strong binding capacity of LPS for the complement component C3 raises the possibility that LPS act as inhibitors of complement by interruption of the reaction cascade at local infectious sites with gram-negative bacteria.

Centrifugation, Density Gradient↗

Irreversible enzyme inhibitors. Inhibitors of guinea pig complement derived by quaternization of substituted pyridines with benzyl halides.

A series of 83 compounds derived from hydrocarbon-substituted pyridines by quaternization with PhCH2Br usually containing a 2-SO2F or 6-Cl-2-SO2F group was synthesized and evaluated as inhibitors of guinea pig complement and in most cases its C1 component. The most active compounds were 3-(4-phenylphenylbutyl)-N-(6-choro-2-fluorosulfonylbenzyl) pyridinium bromide (43) and 3-(4-phenylphenylbutyl)-N-(2-fluorosulfonylbenzyl) pyridinium bromide (44), each showing 50% inhibition at 7.8 muM. The most effective irreversible inhibitor of the C1 component was N-(6-chloro-2-fluorosulfonylbenzyl)-5,6-benzoquinolinium bromide (87), which showed 50% inhibition at 4 muM.

Animals↗

Inhibition of the reconstitution of the haemolytic activity of the first component of human complement by a pepsin-derived fragment of subcomponent C1q.

1. A fragment of subcomponent C1q, which contained all the collagen-like features present in the intact molecule, was isolated by pepsin digestion as described by Reid [Biochem. J. (1976) 155, 5-17]. 2. The pepsin-derived fragment of subcomponent C1q did not bind to antibody-coated erythrocytes under conditions where complete binding of sub-component C1q took place. 3. The peptic fragment blocked the reconstitution of C1 haemolytic activity by competing with intact subcomponent C1q in the utilization of a mixture of the other two subcomponents, C1r and C1s. 4. Reduction and alkylation of the interchain disulphide bonds in the pepsin fragment did not markedly affect its inhibitory effect, whereas heating at 56 degrees C for 30min completely abolished the effect. 5. Lathyritic rat skin collagen and CNBr-derived peptides of pig type II collagen showed no ability to mimic the inhibitory effect of the pepsin fragment when tested over the same concentration range as used for the peptic fragment. 6. The peptic fragment was unable to block efficiently the reconstitution of C1 haemolytic activity unless it was added to the mixture of subcomponents C1r and C1s before the attempt to reconstitute C1 haemolytic activity, in solution, or on the surface of antibody-coated erythrocytes. 7. Evidence was obtained that suggested that subcomponent C1q bound the subcomponent C1r-C1s complex more efficiently when the subcomponent C1q was bound to antibody than when it was free in solution.

Binding Sites, Antibody↗

Inactivation of various proteinase inhibitors and the complement system in human plasma by the 56-kilodalton proteinase from Serratia marcescens.

The interaction of the 56-kilodalton (kDa) proteinase from Serratia marcescens with human plasma activated C1 (C1) inhibitor, alpha 2-antiplasmin, and antithrombin III was investigated. The 56-kDa proteinase was not affected by these inhibitors; on the contrary, all the inhibitors were inactivated by the 56-kDa proteinase within 2 to 6 h. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis indicated that all three inhibitors showed decreases in molecular weight of approximately 8,000 to 10,000 as a result of proteolytic cleavage by the 56-kDa proteinase. The 56-kDa proteinase also inactivated serum complement within 2 to 6 h. The loss of inhibitory activity caused by the 56-kDa proteinase, together with the effects of endogenous serine proteinases, may facilitate tissue destruction and inflammation.

Complement C1 Inactivator Proteins↗