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Involvement of complement components in renal disease.

The complement system is a critical element of innate immunity whose role in renal physiology and disease is illustrated by the following observations: (1) a deficiency or inhibition of a complement regulatory protein results in renal tissue damage; (2) inhibition of complement activation (with cobra venom factor or sCR1), or in C6-deficient rats, attenuates complement-mediated tissue destruction; and (3) ongoing glomerular disease has been associated with the deposition/expression of complement proteins in glomerular or tubular structures and the excretion of C5b-9 and CD59 proteins. Complement activation by cellulosic membranes results in the production of C5a, which has now been shown to provoke most of the same inflammatory responses observed during hemodialysis. Controlling the dose of C5a given during dialysis, by controlling blood flow rates or membrane types, may have an impact on patient health. Finally, lessons learned in the xenotransplant setting suggest that complement activation can be effectively controlled to limit inflammation (with sCR1 or anti-C5 monoclonal antibodies). Recent developments in this area may lead to new therapeutic approaches to deal with the complex etiology of renal disease.

Animals↗

Role of the membrane attack complex of complement in lung injury mediated by antibodies to endothelium.

The potential pathogenic role of the membrane attack complex (MAC) of the complement system was investigated in two models of lung injury mediated by antibodies to angiotensin-converting enzyme (ACE), an endothelial cell enzyme. In the first model, acute and fatal lung edema was induced in rabbits by intravenous administration of divalent anti-ACE antibodies. These animals died acutely. C6-deficient rabbits tolerated anti-ACE antibodies without apparent ill effects. On the other hand, C6-deficient rabbits reconstituted with C6 and then receiving anti-ACE antibodies developed acute pulmonary edema and died. These results indicate that the MAC is required for the pathogenesis of this lung injury. In the second model, intravenous administration of monovalent anti-ACE Fab fragments over 4 consecutive days induced fatal interstitial pneumonitis in normal rabbits. For C6-deficient rabbits there was a reduced inflammatory response, and no animals died, implicating a mediator function for the MAC in this model as well. These results demonstrate that MAC is an important mediator of acute pulmonary edema induced by divalent antibodies to an endothelial antigen. Moreover, the complement system was also, to some extent, involved in the recruitment of inflammatory cells leading to the development of interstitial pneumonitis in the experimental lung injury induced by monovalent anti-ACE Fab fragments that 'per se' do not activate complement.

Acute Disease↗

Functional properties of the asialo-fifth component of human complement.

Removal of exposed, terminal sialic acid (SA) from carbohydrate chains N-glycosidically linked to asparagine residues of highly pure human C5 with bacterial sialidase increased C-mediated hemolysis of antibody-sensitized sheep E maximally 2.77-fold. Sialidase-treated C5 used as a reagent for the titration of C6, C7, C8, and C9 resulted in increased titers of all these components compared to buffer-treated C5. As determined by a fluorometric method, ca. 65% of the SA was enzymically hydrolyzed under optimal conditions. Endoglycosidase F incubated with C5 followed by monosaccharide analyses by anion exchange chromatography with pulsed amperometric detection revealed both high mannose and complex (terminate in SA) oligosaccharides were hydrolyzed; no effect was found on the functional activity of C5. Approximately 4% of the complex oligosaccharides were hydrolyzed from C5. Comparison of sialidase- and buffer-treated C5 decay rates from EAC1gp(4b,oxy2a,3b)hu resulted in two linear components of the decay curve with sialidase-treated C5, but one linear component with buffer-treated C5. Of the sialidase-treated 125I-C5 15% was bound to EAC1gp(4b,oxy2a,3b)hu compared to 9.3% of buffer-treated 125I-C5. Furthermore, 27% of sialidase-treated 125I-C5 was bound to EAC1gp,4bhu compared to 16.6% of buffer-treated 125I-C5, but no lysis occurred after the addition of C6-C9. The mechanism of increased hemolytic activity after removal of SA from C5 is: the Tmax is prolonged at 30 degrees C (ca. 15 min vs 9 min), and a higher percentage of C5 binds to cellular intermediates compared to buffer-treated C5.

Asialoglycoproteins↗

Intestinal glycoprotein activates the alternative complement pathway by reacting with factor H.

Previous observations indicating complement activation via the alternative pathway of chelated human serum by a rat intestinal glycoprotein fraction were substantiated by using C2-deficient serum. Some inactivation of C6 by the glycoprotein was observed both in normal and C2-deficient serum. As estimated by conglutination, the glycoprotein largely abolished the ability of serum to convert EAC3b to EAC3bi, indicating inhibition of the control factors H (beta 1H globulin) and I (C3bINA), or inhibition of C3b deposition on the cells. The glycoprotein caused no change in the electrophoretic mobility of factors H or I. By immunoelectrophoresis the glycoprotein interfered with the precipitation line of plasminogen and beta-lipoprotein and some other serum proteins. The absence of plasminogen or beta-lipoprotein in serum seemed unimportant for the C3 conversion by the glycoprotein. Factor H was retained when heat-inactivated serum, heat-inactivated serum depleted of 99% albumin or 85% IgG, or heat-inactivated hypogammaglobulinaemic serum was eluted through a column of the intestinal glycoprotein coupled to epoxy-activated Sepharose 6B. Presence of EDTA abolished factor H retention. Factor H from methylamine-treated serum was also adsorbed to the glycoprotein. When serum depleted at 5 degrees C or 31% of the factor H content was heated, the alternative pathway was activated spontaneously. Addition of some of the previously removed factor H reduced the C3 and factor B conversion rate.

Animals↗

Oxygen radical dependent lung damage following thermal injury of rat skin.

Acute thermal injury (70 degrees C, 30 sec) to rat skin results in progressive consumptive depletion of the complement system. Individual complement components (C3, C4, C6) each show reductions in hemolytic activity. Crossed immunoelectrophoresis analysis of serum from thermally injured rats reveals conversion of C3 compatible with activation of the complement system. During the first hour following thermal injury, C5a-related chemotactic activity appears in the serum and is temporally related to the development of neutropenia. Lung injury, as revealed by increases in lung permeability, develops progressively during a 6-hour period and parallels changes in complement levels. Morphologically, lung changes include leukoaggregates within pulmonary capillaries and the presence of intra-alveolar hemorrhage. Protection from lung injury following remote thermal injury to skin is afforded by depleting animals of complement or neutrophils, or by systemic treatment of animals with a combination of catalase and superoxide dismutase. Antihistamine drugs have no protective effect. These data suggest that acute thermal injury leads to systemic complement activation, neutrophil activation, and acute lung injury that is related to production of toxic oxygen products by activated blood neutrophils.

Animals↗

[A method for developing hereditary deficiency of complement component in the rabbit].

A two-way selective experiment for total hemolytic complement activity (CH50) was carried out in a colony of New Zealand White rabbits for the purpose of developing hereditary deficiency of complement component and estimating the realized heritability (h2) of CH50. The results obtained were as follows. 1) The mean value of CH50 with a standard error (SE) in 203 adults rabbits was 9.0 +/- 0.2 U/ml, and the range of CH50 was 2 to 18 U/ml. 2) Individual differences of CH50 in rabbits were comparatively stable regardless of time and season. 3) The realized heritability (h2) of CH50 was estimated to approximately 0.3. 4) Two rabbits with a hereditary C8 alpha-gamma deficiency were obtained from a cross between low CH50 individuals (male: 5.9 U/ml X female: 5.6 U/ml). From other crosses (male: 3.2 U/ml X female: 5.6, 5.7 U/ml), five rabbits with a hereditary C6 deficiency were obtained. 5) The frequencies of C8 alpha-gamma and C6 deficient genes in the colony were estimated to at least 0.005, 0.003, respectively. 6) It was suggested that a downward selection for CH50 was a useful method for developing hereditary deficiency of complement component in the rabbit.

Animals↗

The contribution of terminal complement components to acute and hyperacute allograft rejection in the rat.

Acute rejection and antibody-mediated hyperacute allograft rejection are affected by activation of the complement cascade. Split products of early complement components influence the localization, activation, and effector functions of platelets, granulocytes, monocytes, and lymphocytes, while the formation of membrane attack complex (C5b-C9) can lead to rapid cell destruction. Therefore, we compared acute and Ab-mediated hyperacute allograft rejection in a recently described model of C6 deficient PVG (C-) (RT1c) rats and their normal counterpart PVG (C+) (RT1c) rats. Cardiac allografts from fully MHC disparate ACI donors were heterotopically grafted into naive and skin graft sensitized PVG (C-) and PVG (C+) rats. ACI cardiac allografts were rejected acutely (8.3 +/- 2 days; n = 7) by naive PVG (C+) recipients, but survived significantly longer in PVG (C-) recipients (22 +/- 10 days; n = 10). Presensitized PVG (C+) rats rejected ACI cardiac allografts hyperacutely in 6.1 +/- 2.4 hr (n = 5). In contrast, ACI cardiac allografts transplanted into presensitized (PVG (C-) rats had markedly longer survival of 91 +/- 14 hr (n = 5). The alloantibody responses of naive PVG (C+) and PVG (C-) recipients 7 days after cardiac allografting, and of presensitized PVG (C+) and PVG (C-) recipients at time of cardiac allografting were not significantly different as measured by flow cytometry against ACI lymphocytes. Immunofluorescence demonstrated deposition of IgM, IgG and C3 in ACI allografts in PVG (C-) as well as in PVG (C+) recipients. Deposition of C6 was only found in grafts rejected by PVG (C+). The significantly longer survival of ACI cardiac allografts in C6-deficient PVG (C-) rats indicates that the membrane attack complex contributes to acute as well as antibody-mediated hyperacute allograft rejection.

Acute Disease↗

The attack phase of human complement: differentiation between membrane binding and complex formation by the detection of neoantigen expression in situ. A morphometric immunoferritin study.

C5-9 neoantigen was found by morphometric immunoferritin staining on the membrane of guinea pig erythrocytes lyzed by reactive lysis C5b6 or acid-activated C5 + C6 and C7, C8, and C9. Neoantigen first appeared at the C7 step, increasing with C8, and decreasing after the addition of C9. The incubation of E with C5-C8 or C5-C9 at 0 degrees C resulted in EC5-8 without neoantigen. Reincubation of these cells after washing at 37 degrees C for 5 min led to neoantigen expression. An energy-requiring step is postulated after binding of C5-C8 and needed for C9 binding and lysis.

Animals↗

Studies on serum resistance in Escherichia coli.

Serum-sensitive mutants and their serum-resistant smooth parental E. coli strains (Wf8, Wf26, and WF 52) have been investigated in respect to their binding of different complement components. These pairs consisting of a wild-type and its mutants represent a better model for the investigation of the mechanism of serum resistance than the comparison of unrelated strains. Both strains of a pair bind equivalent amounts of C3. In binding assays using radiolabeled terminal components C6, C7, C8, and C9, the serum-sensitive strains do bind more late acting components than their resistant parental strains. An active membrane attack complex stably bound to the cell surface was found on the mutants, whereas with wild-type bacteria a complex could be isolated from the supernatant which is composed of the late acting complement components and S-protein. This complex is released from the surface of the wild-type bacteria without participation of C9.

Blood Bactericidal Activity↗

Complement-derived leukotactic factors in inflammatory synovial fluids of humans.

A large per cent of rheumatoid synovial fluids contain chemotactic activity for rabbit granulocytes (neutrophilic). The chemotactic activity is, in large part, related to the fifth (C5) and sixth (C6) components of human complement; a combination of physical-chemical techniques indicates the activity to be attributable to C567 and C5a, a cleavage product of C5. Many rheumatoid synovial fluids contain a C5-cleaving enzyme which, on the basis of substrate specificity and susceptibility to inhibitors, is very similar to an enzyme extractable from lysosomal granules of human and rabbit granulocytes. Inflammatory nonrheumatoid synovial fluids contain chemotactic activity that is related to cleavage products (C3a) of the third component of human complement (C3). Also found in these fluids is a C3-cleaving enzyme capable of producing C3a. Of the other synovial fluids examined, lupus fluids were remarkable by their total lack of chemotactic activity. These findings record for the first time the presence of complement-derived chemotactic factors in pathological human fluids.

Antigen-Antibody Reactions↗

Phenotypic genetics of complement components.

Both charge and size-dependent electrophoretic techniques have been used to investigate genetic polymorphisms of complement proteins. Of the seventeen complement proteins, ten have been shown to have genetic variants and only one (C9) has been extensively investigated without revealing variants. These investigations give information on the numbers of cistrons and their linkage relations. They demonstrate or confirm the linkage of C2, Factor B and C4 to the MHC. In the cases of both human and mouse C4, it has been shown that the loci are (usually) duplicated. C4 in humans is extremely polymorphic and exhibits a number of strong allelically associated haplotypes. Some of these have only one expressed C4 gene and are associated with disease susceptibility. C8 has at least two cistrons coding for associating subunits. C6 and C7 are linked in several species and sometimes C7 is duplicated. This gene pair is discussed in relation to natural selection and gene conversion.

Animals↗

Functional activity of anti-C6 antibodies elicited in C6-deficient rats reconstituted by liver allografts. Ability to inhibit hyperacute rejection of discordant cardiac xenografts.

A critical role of the complement membrane attack complex (C5b-9) in mediating hyperacute rejection has been demonstrated previously in fully C6-deficient PVG (C-)(RT1c) rats that reject guinea pig cardiac xenografts at a delayed tempo (45 +/- 9 hr; n=16) compared with C6-sufficient PVG (C+)(RT1c) hosts (0.5 +/- 2 hr; n=6). We have investigated whether selective depletion of C6 from Lewis rats by antibody therapy prevents hyperacute rejection. A polyclonal rat-antirat C6 antibody was induced in PVG (C-) recipients by orthotopic liver transplants from congenic PVG (C+) donors. These liver grafts produced high levels of C6 that reconstituted the complement function of PVG (C-) hosts by 7 days, but the recipients responded within 28 days with the synthesis of an IgG1 antibody to rat C6. The antiserum inhibited hemolytic complement activity of Lewis (RT1(1)) rats in vivo and in vitro. The effect of C6 depletion on Xg survival was investigated by injecting Lewis rats with 2 ml of rat-antirat C6 antiserum before and 1 ml after reperfusion of the guinea pig cardiac xenograft. Lewis rats rejected guinea pig cardiac xenografts after treatment with this rat-antirat C6 antiserum in 38 +/ -11 hr (n=3). Treatment with normal control sera from PVG (C-) rats did not prolong guinea pig cardiac xenograft survival in the Lewis rats (1 +/- 0.7 hr; n=3)(P<0.0043). Injection of 3 ml of the IgG fraction purified from the rat-antirat C6 antibody (33 mg/ml) prolonged xenograft survival to 13.6 +/- 4 hr (n=4) compared with the survival of 0.61 +/- 0.3 hr (n=4) after injection of control rat IgG (33 mg/ml) (P<0.005). These results demonstrate that specific depletion of C6 by antibody therapy has a significant effect on guinea pig cardiac xenograft survival in the Lewis rat. These findings further suggest that C6 depletion may be beneficial to patients undergoing hyperacute rejection of xenografts or allografts.

Animals↗

Protective role of complement in experimental Escherichia coli endocarditis.

Fourteen strains of Escherichia coli were tested for ability to cause infective endocarditis in rabbits prepared by prior placement of an intracardiac catheter. Strains that were resistant to the bactericidal action of serum caused E. coli endocarditis in 91.4% of rabbits, whereas serum-sensitive strains usually failed to cause persisting infection (11.3% infected, P less than 0.001). Although serum-sensitive E. coli lodged on heart valves within 1 h after intravenous injection, they survived less than 24 h in most normal rabbits. In contrast to normals, all five C6-deficient rabbits injected with a serum-sensitive strain of E. coli developed infective endocarditis (P less than 0.005). No correlation was found between the presence of K1 antigen and the incidence of experimental E. coli endocarditis. Thus, the ability of strains of E. coli to establish persisting endocardial infection in rabbits appears to be directly associated with resistance to the complement-mediated serum bactericidal system. These findings may explain in part the rarity of gram-negative bacillary endocarditis in patients; they also indicate that in certain special circumstances the serum bactericidal system can play a decisive role in host defense.

Animals↗

Regulation of complement activation at the C3-level by serum resistant leptospires.

Leptospires are spirochetes that are transmitted to humans through contacts with wild or domestic animals or via an exposure to contaminated soil or water. In this study we have compared the serum-sensitivity of five pathogenic strains of leptospires (L. interrogans) to an environmental isolate (strain Patoc). Different levels of sensitivities to human serum were seen. Interestingly, the most sensitive strain was the non-pathogenic Patoc strain. The fully and intermediately resistant strains have been isolated from human patients. Testing was performed in the absence of specific antibodies, and killing was found to be dependent on the complement system. The serum sensitive Patoc strain was killed in human serum within minutes, whereas the most resistant strains tolerated serum up to 4h. We also tested the deposition of the complement components C3, C5, C6, C8 and C5b-9 to the surfaces of the sensitive and resistant strains of Leptospira by immunofluorescence microscopy and ELISA. C3 was deposited on both the sensitive and resistant strains, but the terminal complement components were detected only on the surface of the complement-sensitive strain. The complement resistant and intermediate strains were found to bind more factor H from human serum than the complement sensitive strain. Thus, binding of this major alternative complement pathway inhibitor is related to serum resistance in Leptospira spirochetes.

Animals↗

Evidence that C1s participates in the alternative complement pathway.

Purified C1s, subcomponent of C1, induced electrophoretic conversion of factor B and consumption of hemolytic C3 and C5 in sera genetically deficient in C2 or C4. Blocking of the hemolytic activity of C1s in C2-deficient serum by F(ab')2 anti-C1s resulted in inhibition of the alternative pathway, as indicated by the failure of zymosan or cobra venom factor to induce comsumption of C3 and C6. Zymosan also failed to activate the alternative pathway when C1s was absorbed from C1r-deficient serum using a solid immunoabsorbent. These data, showing that C1s participates in the alternative pathway under certain experimental conditions, suggest the interesing possibility that C1s is important in the activation sequence of both the classical and the alternative pathway more generally.

Animals↗

Moculating effect of the late-acting components of the complement system on the bactericidal activity of human polymorphonuclear leukocytes on E. coli 0111:B4.

The effect of complement (C) components on the intracellular killing of E. coli 0111:B4 by human PMN was studied. Various intermediate bacteria were prepared by opsonizing IgM-coated 0111:B4 with yeast cell-treated human serum (BAC1-3), a C6-deficient human serum (BAC1-5), a C8-deficient human serum (BAC1-7), a C8-deficient human serum, and with partially purified C8 (BAC1-8). All these bacterial preparations were phagocytosed by human PMN, but only BAC1-8 and, to a lesser extent, BAC1-5 were killed. Similar results were obtained when the 400 x G postnuclear supernatant (PNS) of PMN homogenate was used instead of intact leukocytes. The C9 nature of the killing factor in the PMN homogenate was ruled out by its inability to lyse EAC1-8 and by the finding that the killing of BAC1-8 by the PMN factor was not inhibited by the antiserum against human C9. The anti-C5 and anti-C8 antisera were unable to inhibit the killing by the PNS of BAC1-5 and BAC1-8, respectively, suggesting that bound C5 and C8 do not provide a binding site for the killing factor.

Animals↗

Effects of zinc chloride on guinea pig complement component activity in vitro: concentration-dependent inhibition and enhancement.

We have studied the in vitro effects of zinc chloride on the hemolytic activity of each component of the guinea pig classical complement pathway over a wide range (25 to 500 muM) of zinc concentrations. At high concentrations (>200 muM) the activity of all components was strongly inhibited by this metal. Concentrations of 500 muM inhibited C1 and C5 by 80 and 65%, respectively, whereas all other components were inhibited by more than 94%. Zinc chloride at 25 muM produced more varied effects, with C2, C3, and C6 inhibited by 36, 35, and 55%. C7 and C8 were inhibited by approximately 25%, whereas C1, C4, and C9 were not appreciably affected. The activity of the fifth component, on the other hand, was strongly enhanced by the presence of zinc. Concentrations of 25, 50, and 100 muM zinc chloride produced increases of 92, 44, and 18%, respectively, in C5 titers when present during the activation-binding step of this component. Further studies indicated that the activities of cell-bound complement components were unaffected by zinc treatment after activation and/or binding to the sheep erythrocyte surface had occurred. In addition, zinc did not appear to inhibit by causing irreversible denaturation of either total complement proteins or its various components. Rather, it appears that zinc must be present as a reactant during the activation and/or binding step of each component for inhibition or enhancement to occur.

Animals↗