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[Inhibition of formation of complement C5-convertase].

Control of the formation of complement C5-convertase is an important factor in maintaining human homeostasis. Some physiologically active endogenous and exogenous substances were shown to be capable of exerting such control. A method was developed for studying the influence of the effectors on the formation of classical-complement-pathway C5-convertase from C3-convertase stabilized by nickel ions. Immunoglobulins G and M, recombinant alpha and gamma interferons, serotonin, epinephrine, histamine, and ethanol were studied as effectors. The binding constants of the effectors with C3b, the active C3 component, and the values of the maximal effect were determined to evaluate the physiological importance of the effectors. The inhibition of C5-convertase generation was observed in all cases except for IgG and IgM (rheumatoid factor), which showed no effect and activating effect, respectively.

Adjuvants, Immunologic↗

Human complement component C1q inhibits the infectivity of cell-free HTLV-I.

Human T cell leukemia virus type I (HTLV-I) is a retrovirus that is not lysed by human serum or complement. It has not been determined, however, whether HTLV-I directly binds to complement components or whether it retains infectivity after incubation with human serum. We investigated the effects of human serum on the infectivity of cell-free HTLV-I produced by human and animal cells. Plating of vesicular stomatitis virus (HTLV-I) pseudotypes prepared in cat or human cells and formation of HTLV-I DNA after infection of cell-free HTLV-I produced by cat or human cells were markedly inhibited by treatment with fresh human serum, but not by heat-inactivated serum. HTLV-I infection was also inhibited by treatment with C2-, C3-, C6-, or C9-deficient serum, but not by C1q-deficient serum. Inhibitory activities of normal human serum against HTLV-I were neutralized by anti-C1q serum. Furthermore, purified C1q inhibited HTLV-I infection. The direct binding of C1q to HTLV-I was confirmed by comigration of C1q with HTLV-I virion upon sucrose density gradient ultracentrifugation of HTLV-I virion treated with C1q. Binding assay using synthetic envelope peptides indicated that C1q bound to an extramembrane region of the gp21 transmembrane protein. These findings indicate that the human complement component C1q inactivates HTLV-I infectivity.

Animals↗

The effects of iodine and thiol-blocking reagents on complement component C2 and on the assembly of the classical-pathway C3 convertase.

I2 can react with complement component C2 in a two-stage process. In the first stage, a form of C2 with enhanced haemolytic activity is produced. This form of C2 is cleaved to C2a and C2b by C1s at the same rate as native C2. The enhanced C2 haemolytic activity correlates with the ability to form a stable fluid-phase C3 convertase on addition of the C2 to C4b and C1s. It reflects an increased affinity for C4b of C2a formed from I2-treated C2, although the affinity for C4b of I2-treated C2 itself is not markedly increased. The specific activity of C3 convertase formed from I2-treated C2 is the same as that formed from native C2. The second stage of the reaction with I2, which is favoured at high pH or in the presence of excess I2, inactivates C2 on production of a species that cannot be cleaved by C1s. The presence of a single free thiol group in C2, which is the site of modification by I2, was confirmed by titration with p-chloromercuribenzoate, iodoacetamide and 5,5'-dithiobis-(2-nitrobenzoic acid). A single thiol group is also present in Factor B, and the cysteine residue, like that in C2, requires denaturation of the protein before reaction with iodoacetamide and 5,5'-dithiobis-(2-nitrobenzoic acid) but not p-chloro- mercuribenzoate .

Chloromercuribenzoates↗

Complement regulatory activity of normal human intraocular fluid is mediated by MCP, DAF, and CD59.

PURPOSE: To identify the molecules in normal human intraocular fluid (aqueous humor and vitreous) that inhibit the functional activity of the complement system. METHODS: Aqueous humor and vitreous were obtained from patients with noninflammatory ocular disease at the time of surgery. Samples were incubated with normal human serum (NHS), and the mixture assayed for inhibition of the classical and alternative complement pathways using standard CH(50) and AH(50) hemolytic assays, respectively. Both aqueous humor and vitreous were fractionated by microconcentrators and size exclusion column chromatography. The inhibitory molecules were identified by immunoblotting as well as by studying the effect of depletion of membrane cofactor protein (MCP), decay-accelerating factor (DAF), and CD59 on inhibitory activity. RESULTS: Both aqueous humor and vitreous inhibited the activity of the classical pathway (CH(50)). Microcentrifugation revealed the major inhibitory activity resided in the fraction with an M(r) >/= 3 kDa. Chromatography on an S-100-HR column demonstrated that the most potent inhibition was associated with the high-molecular-weight fractions (>/=19.5 kDa). In contrast to unfractionated aqueous and vitreous, fractions with an M(r) >/= 3 kDa also had an inhibitory effect on the alternative pathway activity (AH(50)). The complement regulatory activity in normal human intraocular fluid was partially blocked by monoclonal antibodies against MCP, DAF, and CD59. Immunoblot analysis confirmed the presence of these three molecules in normal intraocular fluid. CONCLUSIONS: Our results demonstrate that normal human intraocular fluid (aqueous humor and vitreous) contains complement inhibitory factors. Furthermore, the high-molecular-weight factors appear to be the soluble forms of MCP, DAF, and CD59.

Antigens, CD↗

Binding of properdin to solid-phase immune complexes: critical role of the classical activation pathway of complement.

The capacity of serum to support deposition of C3, properdin and factor B was studied by enzyme-linked immunosorbent assay using solid-phase immune complexes (IC) for activation of complement. Deposition of C3 and properdin occurred in fairly dilute normal human serum (NHS), but factor B uptake was hardly detectable. Alternative pathway-mediated deposition of C3 with slow kinetics was demonstrated in C2-deficient serum and in NHS depleted of C1q, factor D and properdin (C1qDP-depleted serum) after reconstitution with factor D and properdin. Efficient uptake of properdin required a functional classical pathway, in the presence of which C3 and properdin were rapidly deposited onto the IC. Judging from findings in C3-deficient serum, factor I-deficient serum, and C1qDPB-depleted serum, the uptake of properdin was strictly C3-dependent, and did not require the presence of factors B and D. Thus, C3b fixed to IC was the principal ligand for properdin in the assay. The findings could have biological implications relating to complement-mediated modification of immune complexes in disease.

Antigen-Antibody Complex↗

Effect of cholesterol content in activation of the classical versus the alternative pathway of rat complement system induced by hydrogenated egg phosphatidylcholine-based liposomes.

Liposomes composed of hydrogenated egg phosphatidylcholine (HEPC) and cholesterol (CHOL) were found to activate the rat complement (C) system in a CHOL content-dependent manner. Liposomes containing 22 or 33 mol% CHOL activated the C system in a Ca(2+)-dependent manner, suggesting that C activation occurred via the classical pathway. Liposomes containing 44 mol% CHOL activated the C system in a Ca(2+) independent manner, suggesting that C activation occurred via the alternative pathway. The CHOL content appeared to dictate the pathway by which the C system was activated. This C activation was inhibited by removal of serum component(s), which adsorb to the liposomes. Activation of the alternative pathway, induced by the liposomes, was reduced by the depletion of IgG and IgM, whereas the classical pathway activation was reduced by the depletion of IgG, but not IgM. In addition, the removal of adsorbed serum component(s) by treatment with 44 mol% CHOL-containing liposomes decreased serum IgG and IgM levels that adsorb to the same liposomes, whereas the removal of adsorbed serum component(s) by treatment with 22 mol% CHOL-containing liposomes only slightly decreased serum IgG levels, which adsorbs to the same liposomes. Collectively, both IgG and IgM, which are specifically adsorbed to the liposomes in a CHOL-content dependent manner, were responsible for C activation via the alternative pathway induced by the 44 mol% CHOL containing liposomes. IgG alone would be partially responsible for C activation via the classical pathway induced by 22 or 33 mol% CHOL-containing liposomes. The discovery of this unique C-activating property of liposomes will be of value in attempts to decipher the underlying mechanism of C activation by providing a useful model membrane system.

Animals↗

HIV and complement: role of the complement system in HIV infection.

HIV, in contrast to animal retroviruses, is not lysed by human serum but nevertheless the virus as well as virus-infected cells activate the complement system efficiently. HIV activates the classical pathway by binding C1q to the transmembrane protein gp41. On the surface of HIV-infected cells, both the alternative and the classical pathway are activated. Complement-treated HIV has an enhanced ability to infect cells carrying receptors for C3 fragments. By this mechanism complement can target the virus to certain cells, e.g. follicular dendritic cells. HIV-infected complement-coated cells can interact with complement receptor carrying cells and thereby spread the infection or cause the destruction of the infected cells. Due to direct or indirect effects of HIV the complement system is in an activated state and the cellular expression of complement receptors as well as regulatory molecules is modified in the blood of HIV-infected patients.

Animals↗

A potent anti-complementary acylated sterol glucoside from Orostachys japonicus.

In order to isolate substances that inhibit the hemolytic activity of human serum against erythrocytes, we have evaluated whole plants of the Orostachys japonicus species with regard to its anti-complement activity, and have identified its active principles following activity-guided isolation. A methanol extract of the O. japonicus, as well as its n-hexane soluble fraction, exhibited significant anti-complement activity on the complement system, which was expressed as total hemolytic activity. A bioassay-guided chromatographic separation of the constituents resulted in the isolation of three known compounds 1-3 from the active n-hexane fraction. The structure of these compounds were analyzed, and they were identified as hydroxyhopanone (1), beta-sitosteryl-3-O-beta-D-glucopyranosyl-6'-O-palmitate (2), and beta-sitosteryl-3-O-beta-D-glucopyranoside (3), respectively. Of these compounds, compound 2 exhibited potent anti-complement activity (IC50= 1.0 +/- 0.1 microM) on the classical pathway of the complement, as compared to tiliroside (IC50= 76.5 +/- 1.1 microM), which was used as a positive control. However, compounds 1 and 3 exhibited no activity in this system.

Benzopyrans↗

Complement-derived chemotactic activity is generated in human serum containing uroporphyrin after irradiation with 405 nm light.

Patients with porphyrias have varying degrees of photosensitivity, associated with elevated levels of porphyrins in plasma, erythrocyte, urine and/or feces. To investigate the role of complement in the pathogenesis of cutaneous lesions, varying amounts of uroporphyrin were added to normal human serum (0.1-10 microgram/ml), and the mixtures were then exposed to 405 nm irradiation. Such treatments result in the diminution of total hemolytic complement activity and hemolytic titers of C1, C4, C2, C3, and C5; furthermore, cleavage products of C3 and C5 were detected. Chemotactic activity for human polymorphonuclear leukocytes was generated that was inhibitable by incubation with anti-C5, but not with anti-C3 antisera. No chemotactic activity was generated in Mg++-EGTA treated serum nor in C4-deficient guinea pig serum. These data indicate that irradiation with 405 nm light of normal human serum containing uroporphyrin results in activation of the complement system via the classical pathway, and the generation of complement (C5)-derived chemotactic activity for human polymorphonuclear leukocytes.

Adult↗

Four conserved promoter motifs regulate transcription of the gene encoding human complement component C2.

The early complement components of the classical activation pathway of the complement cascade include the components C1, C4, C2, and C3. These components act in concert to opsonize bacteria, clear immune complexes, and produce inflammatory mediators. They are not structurally homologous nor are they coordinately regulated. The expression of the early complement components is divergent in terms of cytokine responsiveness and tissue specificity. The only pattern of expression shared by the early complement components is inducibility by gamma-IFN and expression in cells of hepatic or monocytic lineage. Nevertheless, four novel conserved promoter motifs were identified in the 5' flanking region of multiple early complement component promoters. Mutation of these four motifs in the C2 promoter decreased transcription in hepatoma cells in transient transfection analyses, and a synthetic promoter consisting of just the four motifs supported transcription in hepatoma cells. Electrophoretic mobility shift assays demonstrate that three of the four conserved elements bind DNA-binding proteins in a tissue-specific manner. One DNA-binding protein is expressed ubiquitously, but the other three are restricted to cells of monocytic or hepatic lineage. Two of the DNA-binding proteins appear to be members of the zinc-finger family of transcription factors. Therefore, these four motifs appear to bind DNA-binding proteins that may function in the tissue-specific expression of C2. Conservation of these four motifs in multiple early complement component genes suggests that these may represent a conserved transcriptional strategy.

Carcinoma, Hepatocellular↗

Binding of the human complement subcomponent C1q to hybrid mouse monoclonal antibodies.

Activation of the classical pathway of the complement system is initiated by the binding of C1q to antibody complexes. Here we evaluated the C1q binding capacity of series of monospecific and bispecific hybrid mouse monoclonal antibodies (mAb) and compared them with parental (conventional) mAb. The hierarchy in C1q binding capacity of the bispecific anti-HuIgA1/HRP mAb with homologous H-H chain combinations (IgG2a-2a, IgG2b-2b and IgG1-1) and the parental anti-HuIgA1 or anti-HRP mAb was identical; IgG2a greater than IgG2b much greater than IgG1. Hybrid IgG1-2a mAb bind intermediate amounts of C1q when compared with the IgG1 and IgG2a parental antibodies. IgG1-2b and IgG1-1 hybrid mAb did not bind any C1q, like the IgG1 mAb. We could not observe any difference in C1q binding efficiency between monovalently bound IgG1-2a, IgG2a-2a and IgG2b-2b anti-HuIgA1 HRP mAb and the bivalently bound IgG1-2a, IgG2a-2a and IgG2b-2b anti-HuIgA1 mAb, respectively. Furthermore, these hybrid ms anti-HuIgA1 and bs anti-HRP/HuIgA1 mAb were able to lyse HuIgA1-coated erythrocytes, in the presence of 50% human serum, as efficiently as their parental counterparts. These data indicate that a simultaneous binding of both F(ab') fragment to antigen is not a necessary prerequisite for binding and activation of C1q.

Antibodies, Monoclonal↗

Cardioprotective effects of selective inhibition of the two complement activation pathways in myocardial ischemia and reperfusion injury.

The complement (C) system-mediated neutrophil activation, adhesion to the coronary endothelium and accumulation into cardiac tissue are key steps in the pathogenesis of myocardial ischemia-reperfusion (MI/R) injury. We examined the differential role of the classical and the alternative complement pathway in MI/R injury in vivo. Rats were subjected to 20 min of myocardial ischemia followed by 24 h of reperfusion. Either a classical pathway inhibitor [C1 esterase inhibitor (C1-INH) (15 mg/kg)] or an alternative pathway inhibitor soluble complement receptor 1 (sCR1)[des-LHR-A](15 mg/kg) or their vehicle were administered intravenously 1 min prior to reperfusion, and myocardial necrosis (creatine kinase loss) and neutrophil accumulation, cardiac myeloperoxidase activity, were examined. C1-INH significantly attenuated cardiac creatine kinase loss compared to MI/R rats given only vehicle (p < 0.05) 24 h after reperfusion. An alternative pathway inhibitor, sCR1 [des-LHR-A] attenuated myocardial injury to a lesser extent, although it was not significantly different from the value for C1-INH or vehicle. Besides cardiac myeloperoxidase activity, the ischemic cardiac tissue was significantly attenuated by both C1-INH and sCR1[desLHR-A] (p < 0.05 vs. vehicle). Both the classical and alternative pathways may contribute to MI/R injury via a neutrophil-dependent mechanism in vivo. Selective inhibition of the classical pathway of complement activation seems to be slightly more effective in limiting necrotic MI/R injury than the selective alternative pathway inhibition in this 24 h model of reperfusion injury, but equal doses of each inhibitor attenuated neutrophil accumulation.

Animals↗

Acute nephrotoxic serum nephritis in complement knockout mice: relative roles of the classical and alternate pathways in neutrophil recruitment and proteinuria.

BACKGROUND: The importance of complement in the pathophysiology of renal disease is still being appreciated. To further address the role of this mediator system, we evaluated the influence of absolute deficiency of C3 and C4 on acute nephrotoxic serum nephritis (NSN). METHODS: Selective 'knockout' of C3 and C4 was routinely confirmed in null mice by ELISA. NSN was induced by intravenous injection of a sheep anti-rat nephrotoxic serum that cross-reacts with murine glomerular antigens. Deposition of heterologous immunoglobulin in wild-type glomeruli was associated with rapid complement deposition and neutrophil infiltration, and followed by the development of proteinuria. RESULTS: Neutrophil infiltration was markedly inhibited in C3-deficient mice indicating a role for complement in PMN recruitment. In contrast, C3 deficiency afforded only partial protection against proteinuria. NSN was studied further in C4 null mice to probe the relative roles of the classical and alternate pathway in disease pathophysiology. C3 and C4 deficiency were associated with equivalent inhibition of PMN recruitment and proteinuria. CONCLUSIONS: In aggregate, the data support a major role for complement in PMN recruitment in this model and point to complement-independent mechanisms of proteinuria in antibody-mediated glomerulonephritis. These 'knockout' mice should prove valuable for defining the complement-activated mediator systems that regulate leukocyte recruitment and tissue injury in renal diseases.

Acute Disease↗

Serum-induced lysis of Pseudomonas aeruginosa.

The sensitivity of 12 Pseudomonas aeruginosa strains (5 mucoid and 7 non-mucoid strains) to serum and the interaction of these strains with the complement system was studied. Five strains (4 mucoid and 1 non-mucoid strains) were lysed in 20% normal serum as measured by the release of radiolabelled material from 3H-adenine labelled bacteria. Three of these strains were also lysed in MgEGTA chelated serum. All strains activated complement via the classical pathway, and six strains were able to activate the alternative complement pathway as well. Slime production did not interfere with bacteriolysis and complement consumption.

Bacteriolysis↗

Anti-complement activity of tiliroside from the flower buds of Magnolia fargesii.

As part of the search for anticomplementary active components from natural products, the anticomplementary properties of methanolic extracts from the flower buds of Magnoliafargesii have been investigated. Bioassay-guided chromatographic separation of the active constituents led to the isolation of compound 1, whose structure was identified by spectroscopic methods to be kaempferol 3-O-beta-D-(6"-O-coumaroyl)glucopyranoside (tiliroside). Tiliroside showed very potent anti-complement activity (IC50=5.4 x 10(-5) M) on the classical pathway of the complement system, even higher than rosmarinic acid, which is a well-known inhibitor against the complement system. On the other hand, the hydrolysates of tiliroside, kaempferol, astragalin and p-coumaric acid showed very weak activity on this system.

Benzopyrans↗

Mouse complement component C4 is devoid of classical pathway C5 convertase subunit activity.

It has long been known that mouse C4 has unusually low hemolytic activity relative to the C4 of other mammalian species (e.g. human and guinea pig), the measurements being done in most cases using a C4-deficient guinea pig serum reagent in a one-step assay with EA. This low activity for mouse C4 previously had been attributed to "technical" difficulties such as lability of the protein during blood collection and partial species incompatibilities with guinea pig components. Recently, we presented evidence for the involvement of human C4 beta-chain residues 455-469, a putatively exposed hydrophilic segment, in contributing to a C5 binding site in the C4b subunit of the classical pathway C5 convertase, C4b3b2a. Given that there were five sequence differences between the human and mouse protein within this segment, we hypothesized that these substitutions may have compromised the C5 convertase subunit activity of mouse C4, thereby resulting in its low hemolytic activity. Using a multi-step hemolytic assay which was totally dependent upon C5 cleavage by the classical pathway, we found that mouse C4 was completely devoid of classical pathway C5 convertase subunit activity. We have been able to rule out the most obvious potential species incompatibilities (e.g. between C4mo and C5gp) as being responsible for this lack of activity. Moreover, we found that the low level of hemolytic activity of mouse C4 measured in the one-step assay can be ascribed totally to C5 cleavage, and subsequent terminal component assembly, by the alternative pathway C5 convertase, (C3b)2Bb. However, the assembly of the latter enzyme complex is dependent upon the presence of C3b molecules deposited initially via the classical pathway C3 convertase in which mouse C4b is a subunit. Finally, whereas conversion of human residues 458RP to the mouse-like sequence PL was sufficient to abrogate classical pathway C5 convertase subunit activity in human C4, the five substitutions which "humanized" the 452-466 segment of mouse C4 (corresponding to human residues 455-469) were on their own insufficient to impart this activity to mouse C4. This implies that, in addition to the 455-469 beta-chain segment of human C4, there are other regions of the molecule contributing to C5 binding which are also non-conserved between human and mouse C4.

Amino Acid Sequence↗

Regulation of complement activity by vaccinia virus complement-control protein.

A major protein secreted by vaccinia virus-infected cells has structural similarity to the super-family of complement-control proteins. This vaccinia complement-control protein (VCP) was studied to determine how it regulates complement activation. VCP was bound by C4b and C3b and served as a cofactor with factor I in cleaving these two molecules. VCP inhibited the formation and accelerated the decay of the classical C3 convertase. It also accelerated decay of the alternative pathway convertase, although higher concentrations were apparently needed. In vitro, therefore, VCP interfered with the classical and alternative complement pathways at several steps. In vivo, this interference may increase the virulence of vaccinia virus by enabling it to escape attack by the host's complement system.

Complement Activation↗