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Properdin, the terminal complement components, thrombospondin and the circumsporozoite protein of malaria parasites contain similar sequence motifs.

Properdin is a plasma glycoprotein which stabilizes the C3bnBb enzyme complex of the alternative pathway of the complement system. Unlike the classical pathway, which is initiated by interaction of C1q with the Fc regions of IgG or IgM antibodies in immune complexes, the alternative pathway can be directly activated via binding of C3b to surfaces of foreign organisms. The stabilized C3bnBbP complex activates components C3 and C5 resulting in opsonization of foreign material (via C3b) and assembly of the membrane attack complex (via C5b) on target cells. Therefore properdin greatly enhances complement-mediated clearance and inactivation mechanisms in both natural and acquired resistance to infection. This paper shows that the primary amino acid sequence of properdin is composed mainly of six repeating motifs, each of approximately 60 amino acids, and that similar sequences are found in thrombospondin, the circumsporozoite protein of malaria parasites and regions of the membrane-attack components of complement. These similarities may provide insight into the mechanisms by which parasites avoid host defences mediated by complement.

Amino Acid Sequence↗

Burkholderia pseudomallei activates complement and is ingested but not killed by polymorphonuclear leukocytes.

The mechanism by which Burkholderia pseudomallei is resistant to lysis by human serum is unknown but may include interference with complement activation, effective opsonization, or complement-mediated lysis. We investigated the interaction of B. pseudomallei with complement in the presence and absence of specific antibody to determine potential mechanisms of serum resistance. We demonstrated rapid activation and consumption of complement by B. pseudomallei which, in the absence of specific antibody, occurred predominantly via the alternative pathway. Complement activation was associated with deposition of the opsonically active C3b and iC3b fragments on the bacterial surface. C5b-9, detected on the bacterial surface after opsonic periods of 1 to 60 min, was susceptible to elution by 1 M NaCl, indicating that resistance to complement-mediated lysis may result from deposition of the membrane attack complex in a nonmicrobicidal location. To define the role of opsonins, we investigated the ability of polymorphonuclear leukocytes (PMNL) to phagocytose B. pseudomallei. Phagocytosis of bacteria by PMNL, and the observed oxidative response, was significantly increased by opsonization of organisms with complement and/or specific antibody. Despite opsonophagocytosis by PMNL and the production of an oxidative response, no significant bacterial killing was observed.

Burkholderia pseudomallei↗

Complement mediated cell death is associated with DNA fragmentation.

In this study, we demonstrate for the first time that complement attack of target cells, in the presence of suitably high levels of serum, can induce the oligonucleosomal DNA fragmentation characteristic of apoptosis. This phenomenon requires membrane permeabilisation induced by formation of the complete membrane attack complex and relies on physiologically relevant levels of serum. TUNEL analysis detected complement mediated DNA fragmentation as early as 30 min after the addition of serum and electron microscopy confirmed that chromatin became condensed after complement attack. Various experiments implicate serum DNase I as the mediator of this DNA fragmentation. Intriguingly, membrane permeability induced by melittin gave rise to similar serum dependent DNA fragmentation. The implications of these results for the study of apoptosis in vitro and in vivo are discussed.

Animals↗

Slp is an essential component of an EDTA-resistant activation pathway of mouse complement.

Slp (sex-limited protein) is a mouse serum protein encoded by a major histocompatibility complex class III gene. It is considered to be a product of a duplicated complement component C4 gene, but without functional activity. Originally it has been found expressed only in adult males with the S region of the H-2d or H-2s haplotype. In this report we present evidence that Slp is involved in a form of mouse complement activation that occurs after fractionation of serum by polyethylene glycol precipitation. This activation pathway is EDTA-resistant (i.e., independent of classical and alternative pathway activation), is regulated by C1 inhibitor, and leads to the generation of hemolytically active membrane attack complexes. A positive correlation between this EDTA-resistant mouse complement activity and reported Slp levels was found. Direct evidence for a functional role of Slp came from substitution experiments in which purified Slp induced hemolytic activity in polyethylene glycol-fractionated, Slp-deficient mouse serum. Selective depletion of other complement components suggested a role for C1s-, C2, and C5, but not C3, in the Slp-dependent complement activation. A model for this type of mouse complement activation is presented.

Aging↗

The role of C5a and antibody in the release of heparan sulfate from endothelial cells.

The activation of endothelial cells is thought to contribute to the host response to infection and to the pathogenesis of autoimmune disease. It was recently shown that antibody and complement can activate endothelial cells leading to cleavage and release of heparan sulfate from the cells. We show here that release of heparan sulfate from endothelial cells is mediated by antibody and the complement fragment C5a and that assembly of the membrane attack complex and lysis of endothelial cells is not necessarily involved. These data suggest that the generation of C5a in conditions such as autoimmunity and infection in which anti-endothelial cell antibodies may also be present, might amplify tissue injury by a novel mechanism involving endothelial cell activation and loss of heparan sulfate mediated by antibody and C5a.

Animals↗

Immunological effects of therapeutic immunoadsorption with respect to biocompatibility.

The activation of the complement system leading to generation of anaphylatoxins and the membrane attack complex depends on the chemical nature of the adsorptive system and the anticoagulation used. The method of the primary separation determines the presence of cell debris in the plasma as well as the extent of platelet activation. The particular role of anticoagulation and its properties to prevent/reduce complement activation on immunadsorption material is discussed and the combined use of citrate and heparin is proposed. The quality of the reinfused plasma--as discussed on the example of LDL-apheresis--is therefore influenced by the amount of the activated split products. This determines finally the extent of cellular activation during therapeutic immunadsorption when receptor-dependent activation of cells by C3a(desarg) and C5a(desarg) can occur.

Biocompatible Materials↗

Apoptosis is associated with reduced expression of complement regulatory molecules, adhesion molecules and other receptors on polymorphonuclear leucocytes: functional relevance and role in inflammation.

Human polymorphonuclear leucocytes (PMN) express proteins that protect them from damage by homologous complement. Protection may be particularly important when these cells migrate to inflammatory sites where complement activation is taking place. Resolution of inflammation involves removal of these PMN. The major mechanism of removal is likely to involve PMN apoptosis followed by recognition and engulfment by macrophages. However, little attention has been paid to the possible relevance of apoptosis to PMN susceptibility to immune effectors. Here we describe a reduction in cell surface expression of two complement regulatory proteins, CD59, an inhibitor of the membrane attack complex and CD55 (decay accelerating factor), an inhibitor of the C3/C5 convertase, on a subpopulation of PMN aged in culture. Loss of these proteins, both attached to the membrane by glycosyl phosphatidylinositol (GPI) anchors, correlated closely with the appearance of apoptotic morphology. We also observed a marked reduction in expression of the GPI-anchored molecule CD16 on apoptotic PMN. Reduced expression of membrane proteins was not confined to those anchored through GPI--several transmembrane molecules including CD11a CD11b and CD18 were also reduced on apoptotic PMN, whilst other were little changed (CD35, CD46). The precipitous fall in CD16 surface expression on PMN was not specific for apoptosis--in vitro incubation of PMN with lipopolysaccharide-inhibited apoptosis but caused a reduction in CD16 expression to 'apoptotic' levels.

Antigens, Surface↗

[Role of complement in experimental glomerulonephritis].

The complement system is composed by 26 plasmatic proteins. The activation of either the classical or alternative complement pathway leads to the formation of the membrane attack complex C5b-C9 (MAC) which is capable of producing damage of the cellular membrane. MAC has been identified in renal biopsies from human and experimental, immune and nonimmune renal diseases, but it has not been possible to demonstrate any enzymatic activity on the glomerular basement membrane components (GBM). MAC can produce a lytic or a nonlytic effect on renal cells depending upon the dose used. The lytic effect in vitro has been demonstrated in epithelial, mesangial and endothelial cells, whereas the lytic effect in vivo has been described in a model of acute glomerulonephritis produced by the administration of monoclonal antibody anti-Thy 1.1. which reacts with mesangial cells. The nonlytic effect of MAC on renal cells is characterized by alterations in cell metabolism which can lead the production of prostaglandins, type IV collagen, reactive oxygen species, and a growth factor resembling interleukin I which can contribute to glomerular damage, to the modification of the filtration barrier permeability and hemodynamic changes in experimental glomerulonephritis. The effector mechanisms by which the complement system participates in the pathogenesis of glomerulonephritis are different in the various experimental models of nephritis. In nephrotoxic nephritis the complement pathway participates at least in 3 different ways: a) complement-neutrophil mediated injury, b) MAC dependent mechanism and c) producing hemodynamic alterations. In acute serum sickness the complement system beyond C2 is not necessary for the development of proteinuria and glomerular inflammation, but the MAC assembly seems to be important for the formation of large deposits. In the chronic serum sickness model, the complement system participates in the early proteinuria as well as in the histological expression of the disease. In the heterologous phase of Heymann's nephritis, the proteinuria is complement dependent whereas in the autologous phase the damage depends upon cellular mediated immunity. In passive Heymann's nephritis the complement system and particularly MAC, has a central role for the histological lesion of the epithelial cell as well as in the proteinuria. In conclusion, the complement system can mediate renal damage by the following mechanism: a) Releasing chemotactic factors which result in neutrophil recruitment and neutrophil mediated glomerular damage.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Trimeresurus flavoviridis (habu snake) venom induces human erythrocyte lysis through enzymatic lipolysis, complement activation and decreased membrane expression of CD55 and CD59.

Trimeresurus flavoviridis (habu snake) bites can be fatal to man because of its virulent venom, which is clinicopathologically classified as haemorrhagic, necrotic, and haemolytic toxins. Trimeresurus flavoviridis venom causes lysis of human erythrocytes in conditions where plasma is present as well as in plasma-free conditions in a dose-dependent manner. The haemolytic process requires Ca2+ and Mg2+ ions in the solution. Additionally, the venom initiates activation of the human complement cascade as evidenced by C3a and C5a releases, complement consumption indicated by CH50 and formation of soluble membrane attack complex. The insertion of membrane attack complex into the erythrocyte membranes is morphologically identified by electronmicroscopy. Immunofluorescence analysis reveals that incubation of erythrocytes with the venom decreased cell-surface expression of CD55 (decay accelerating factor) and CD59 (protectin), which renders erythrocyte more vulnerable to adherent C3 and C5 convertases and to polymerization of C9 into membranes, and may enhance autologous complement-mediated haemolysis triggered by the venom. Our data demonstrate that Trimeresurus flavoviridis venom induces haemolysis in the presence of plasma by three distinct mechanisms, direct lipolysis through PLA2 activity, activation of the human complement system, and cleavages of CD55 and CD59 from erythrocyte membranes.

Animals↗

Complement activation and inhibition in myocardial ischemia and reperfusion injury.

The myocardial inflammatory response that occurs as a result of ischemia and reperfusion is similar to that which occurs in other tissues. Activation of the complement system is an integral part of the initiation and maintenance of any inflammatory response. It and other immune system mediators participate in the promotion of neutrophil adherence to endothelium by modulating expression of various adhesion molecules. The complement system also serves an integral role in mediating neutrophil activation, the results of which have been documented in the setting of myocardial ischemia and reperfusion. Another aspect of the complement cascade, which has received little attention with respect to the heart, is the direct effects of complement activation such as endothelial and myocardial cell cytotoxicity mediated by the membrane attack complex. It is likely that this form of tissue injury contributes significantly to myocardial reperfusion injury. Given the numerous contributions of the complement system to the generation of the inflammatory response, and to directly-mediated tissue injury, selective inhibitors of the complement system have great potential to limit reperfusion injury. This has already been demonstrated for the complement inhibitor sCR1. In the future, it is likely that any therapeutic treatment of reperfusion injury will include modulation of the effects of complement activation.

Animals↗

Molecular basis of the enhanced susceptibility of the erythrocytes of paroxysmal nocturnal hemoglobinuria to hemolysis in acidified serum.

When incubated in acidified serum, the erythrocytes of paroxysmal nocturnal hemoglobinuria (PNH) are hemolyzed through activation of the alternative pathway of complement (APC), but normal erythrocytes are resistant to this process. PNH cells are deficient in decay-accelerating factor (DAF), a complement regulatory protein that inhibits the activity of both the classical and the alternative pathways. However, deficiency of DAF alone does not account entirely for the aberrant effects of acidified serum on PNH cells. Recently, we have shown that PNH erythrocytes are also deficient in another complement control protein called membrane inhibitor of reactive lysis (MIRL) that restricts complement-mediated lysis by blocking formation of the membrane attack complex (MAC). To determine the effects of the DAF and MIRL on susceptibility to acidified serum lysis, PNH cells were repleted with the purified proteins. DAF partially inhibited acidified serum lysis by blocking the activity of the amplification C3 convertase. MIRL inhibited acidified serum lysis both by blocking the activity of the MAC and by inhibiting the activity the C3 convertase. When DAF function was blocked with antibody, normal erythrocytes became partially susceptible to acidified serum lysis. By blocking MIRL, cells were made completely susceptible to lysis, and control of C3 convertase activity was partially lost. When both DAF and MIRL were blocked, the capacity of normal erythrocytes to control the activity of the APC and the MAC was destroyed, and the cells hemolyzed even in unacidified serum. These studies demonstrate that DAF and MIRL act in concert to control susceptibility to acidified serum lysis; of the two proteins, MIRL is the more important. In addition to its regulatory effects on the MAC, MIRL also influences the activity of the C3 convertase of the APC. Further, in the absence of DAF and MIRL, the plasma regulators (factor H and factor I) lack the capacity to control membrane-associated activation of the APC.

Animals↗

Characterization of the membrane attack complex inhibitory protein CD59 antigen on human amniotic cells and in amniotic fluid.

A functional complement system and the potential for its activation are present in human amniotic fluid. We have recently demonstrated that CD59 antigen is present and functionally active on human amniotic epithelial cells (HAEC). We have now further examined the role of this protein on HAEC and have also demonstrated its presence in amniotic fluid (AF). CD59 Ag on HAEC is similar in size to the erythrocyte protein and is anchored via glycosyl phosphatidylinositol. The AF protein retained the capacity to incorporate into target cells and protect against lysis by complement. These data suggest that HAEC secrete into AF a form of CD59 Ag which retains inhibitory activity and which may be important in protection of the foetus from maternal complement in utero.

Amnion↗

West Nile virus nonstructural protein NS1 inhibits complement activation by binding the regulatory protein factor H.

The complement system, by virtue of its dual effector and priming functions, is a major host defense against pathogens. Flavivirus nonstructural protein (NS)-1 has been speculated to have immune evasion activity, because it is a secreted glycoprotein, binds back to cell surfaces, and accumulates to high levels in the serum of infected patients. Herein, we demonstrate an immunomodulatory function of West Nile virus NS1. Soluble and cell-surface-associated NS1 binds to and recruits the complement regulatory protein factor H, resulting in decreased complement activation in solution and attenuated deposition of C3 fragments and C5b-9 membrane attack complexes on cell surfaces. Accordingly, extracellular NS1 may function to minimize immune system targeting of West Nile virus by decreasing complement recognition of infected cells.

Amino Acid Sequence↗

Elevated levels of complement components C5 and C9 and decreased antitrypsin activity in the serum of patients with X-linked vacuolated myopathy.

We have recently reported a French family presenting with an X-linked vacuolated myopathy. Here we show that levels of complement components C5 and C9 are elevated in the serum of these patients. Moreover, antitrypsin activity is decreased in the serum of the patients. Taken with the deposition of membrane attack complex encountered in muscle tissue, these results emphasize the role of complement in the pathogenesis of this rare muscular disorder.

Complement C5↗

The immunologic response to thermal injury.

Thermal injury is associated with altered immune defense. Extensive and deep thermal injuries lead to depressed immune defense function with both cellular and humoral defense affected. There is an intricate interaction between various components of the immune system. The altered specific immune response is seen as a depressed ability to produce active rosette-forming cells. Depressed stimulation of lymphocyte proliferation as well as the mixed lymphocyte response have also been recorded following burns. These effects are modulated by the release of kinins, prostaglandins, anaphylatoxins, superoxides, and leukotrienes, all of which can influence the inflammatory response following thermal injury. The humoral immunity is altered as seen by decreased levels of immunoglobulins, activation of complement with release of anaphylatoxins, and formation of membrane attacking complexes leading to inflammation and cytolysis. The immune response to burns is also affected by factors other than this injury, such as nutrition or diseases such as diabetes mellitus or disorders of the lymphoproliferative type. The immune response is also influenced by some drugs used for other reasons such as steroids, chemotherapeutic agents, and topical agents used for burn wound care. The immune reaction to a burn is also influenced by the additive effect of superimposed infections. Removal of injured tissue without the need for extensive transfusion will improve the ability of the burned patients to use their immune defense system in a fruitful way.

Animals↗

Ischaemia-reperfusion is an event triggered by immune complexes and complement.

BACKGROUND: Reperfusion injury is a common clinical problem that lacks effective therapy. Two decades of research implicating oxygen free radicals and neutrophils has not led to a single successful clinical trial. METHODS: The aim was to review new clinical and preclinical data pertaining to the alleviation of reperfusion injury. A review of the literature was undertaken by searching the MEDLINE database for the period 1966-2003 without language restrictions. RESULTS AND CONCLUSION: Evidence now points to complement and immune complexes as critical players in mediating reperfusion injury. Ischaemia is postulated to induce a phenotypical cellular change through the surface expression of a neoantigen. Preformed circulating natural IgM antibodies are then trapped and complement is activated. Final events leading to reperfusion injury include formation of the membrane attack complex and mast cell degranulation.

Antigen-Antibody Complex↗

Is there a future for vaccination as a treatment for Alzheimer's disease?

Vaccination of APP transgenic mice with Abeta has been shown to prevent amyloid deposits. A clinical trial of Abeta vaccination in Alzheimer's disease (AD) was halted due to serious neurological complications developing in some patients. Such complications were not observed in transgenic mice. Since human APP is not a mouse self-protein, vaccination of mice with Abeta should not produce an autoimmune reaction although this would be anticipated in AD. Moreover, mouse C1q poorly recognizes human Abeta so complement activation is much weaker in transgenic mice than in AD. Vaccination will increase complement activation through formation of antigen-antibody complexes. In mice this will enhance phagocytosis. But in AD, where complement is already overactivated, and where the senile plaques are relatively insoluble, this stimulation should increase production of the membrane attack complex, adding to the autodestruction of neurons. The future of vaccination as a therapy for AD will require surmounting the problems of autoimmune reactions generally and autotoxic complement activation specifically.

Alzheimer Disease↗

Role of decay-accelerating factor in regulating complement activation on the erythrocyte surface as revealed by gene targeting.

Decay-accelerating factor (DAF) is a glycosylphosphatidylinositol (GPI)-anchored membrane protein that inhibits both the classical and the alternative pathways of complement activation. DAF has been studied extensively in humans under two clinical settings: when absent from the erythrocytes of paroxysmal nocturnal hemoglobinuria (PNH) patients, who suffer from complement-mediated hemolytic anemia, and in transgenic pigs expressing human DAF, which have been developed to help overcome complement-mediated hyperacute rejection in xenotransplantation. Nevertheless, the exact role of DAF in regulating complement activation in vivo on the cell surface and the species specificity of this molecule remain to be fully characterized. To address these issues, we have used gene targeting to produce mice lacking GPI-anchored DAF. We found that erythrocytes from mice deficient in GPI-anchored DAF showed no increase in spontaneous complement activation in vivo but exhibited impaired regulation of zymosan-initiated bystander and antibody-triggered classical pathway complement activation in vitro, resulting in enhanced complement deposition. Despite a high level of C3 fixation, no homologous hemolysis occurred. It is noteworthy that GPI-linked DAF knockout erythrocytes, when tested with human and guinea pig sera, were more susceptible to heterologous complement lysis than were normal erythrocytes. These results suggest that DAF is capable of regulating homologous as well as heterologous complement activation via the alternative or the classical pathway. They also indicate that DAF deficiency alone is not sufficient to cause homologous hemolysis. In contrast, when the assembly of the membrane-attack complex is not properly regulated, as in the case of heterologous complement activation or in PNH patients, impaired erythrocyte DAF activity and enhanced C3 deposition could lead to increased hemolytic reaction.

Animals↗