Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Complement Membrane Attack Complex”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,549 records · Page 86Linked to original sources

Monoclonal antibodies demonstrate protection of polymorphonuclear leukocytes against complement attack.

Studies on erythrocytes have shown that the formation of the membrane attack complex on a cell surface inevitably results in lysis. However, it is known that nucleated cells are much more difficult to kill with complement, although the molecular basis of this resistance has never been established. We have shown that a very early intracellular event, occurring within seconds of formation of the attack complex in the membrane, is a rise in cytoplasmic Ca2+, which can activate cell responses without cell death 5,6. Here we report the use of a monoclonal antibody to the terminal complement component C9, quantified by 125I and visualized by fluorescein, to demonstrate a protection mechanism in polymorphonuclear leukocytes (PMNs) attacked by complement, involving removal of the attack complex by vesiculation. Concomitantly, there is a Ca2+-dependent activation of reactive oxygen metabolite production without cell lysis. These findings have important implications in the evolutionary and pathological significance of the terminal components of the complement pathway.

Animals↗

Protection of germinal centres from complement attack: decay-accelerating factor (DAF) is a constitutive protein on follicular dendritic cells. A study in reactive and neoplastic follicles.

The development of B-cell memory is linked to the presence of germinal centres. This process is dependent on the presence of antigen, usually in the form of immune complexes with antibody, on the surface of the follicular dendritic cells (FDCs) that form a network in the germinal centre. The presence of immune complexes poses a constant danger of activating complement. Decay accelerating factor (DAF, CD55) and the membrane attack complex (MAC) inhibitor (CD59) are two cell proteins whose sole function is to protect cells from the action of complement, the former affecting the earlier components of the complement cascade, and the latter the terminal ones; both are bound to the cell surface via a glycosylphosphatidylinositol link. DAF but not CD59 could be demonstrated on FDCs. DAF is also present on the FDCs in follicular lymphomas despite the absence of complement (C3) in neoplastic follicles. This indicates that DAF is constitutive to FDCs but does not preclude the possibility that its expression is increased when immune complexes are deposited.

Antigens, CD↗

Distribution of A beta-associated proteins in cerebrovascular amyloid of Alzheimer's disease.

Senile plaques and cerebrovascular amyloidosis (CA) are two of the major neuropathological lesions in brains of patients with dementia of the Alzheimer type. We studied the expression of a number of amyloid beta (A beta)-associated proteins in CA, which have previously been identified in senile plaques and which were suggested to play an important role in the pathogenesis of these lesions. Our findings show that involvement of inflammatory components in CA is restricted to activation of the complement system, resulting in deposition of the complement factors C1q, C3c, C4d and the membrane attack complex C5b-9 as well as of the complement inhibitor clusterin. Furthermore, we observed expression of apolipoprotein E, amyloid P component and heparan sulfate proteoglycans in CA, whereas expression of lactoferrin was almost absent. Other inflammatory proteins, known to be present in senile plaques, such as alpha1-antichymotrypsin, alpha2-macroglobulin and intercellular adhesion molecule-1, were absent or detectable only in small amounts. These data suggest that an incomplete inflammatory response occurs in CA as compared to senile plaques. This was confirmed by the finding that the number of cells of the monocyte/macrophage lineage around CA was not increased compared to unaffected vessels. Based on their expression patterns, complement factors, apolipoprotein E and heparan sulfate proteoglycans may be produced early in the process of CA formation and may play an important role in the formation of A beta fibrils in CA. The absence of a number of A beta-associated proteins in CA in comparison to senile plaques is in support of a different pathogenesis for these two lesions.

Aged↗

Analysis of the promoters and 5'-UTR of mouse Cd59 genes, and of their functional activity in erythrocytes.

The complement regulatory protein CD59 inhibits formation of the membrane attack complex (MAC), the terminal effector of the complement system. There are two mouse Cd59 genes in mice but only one in humans. In the work reported here we (a) mapped the promoter regions of both mCd59a and mCd59b genes, (b) identified two different promoters for each mCd59 gene, (c) defined a previously unrecognized additional exon 1 in each mCd59 gene, (d) identified that each mCd59 gene expresses two different tissue-specific transcripts that differ in their 5'-UTR, and (e) confirmed the presence of mCd59b mRNA in multiple tissues. At the functional level, comparison of the sensitivity of mCd59ab(-/-) and mCd59a(-/-) red blood cells to MAC-mediated lysis revealed that mCd59b protects RBC from MAC-mediated lysis, at least in the setting of mCd59a deficiency. Together these findings indicate that the mCd59 genes may have complex and perhaps different regulatory mechanisms in different tissues.

5' Untranslated Regions↗

Enhanced expression of complement regulatory proteins on thyroid epithelial cells of Graves' disease.

Cytotoxic anti-thyroid microsomal autoantibodies are highly prevalent in sera of patients with Graves' disease, but in Graves' disease thyroid tissues rarely show destructive changes. We postulated that this might be due to membrane-associated complement regulatory proteins which protect target cells from injury by complement activation. We, therefore, investigated the expression of membrane attack complex inhibitory factor (MACIF) and decay accelerating factor (DAF) in the thyroid tissues from patients with Graves' disease, Hashimoto's thyroiditis, thyroid adenocarcinoma and normal human thyroid tissues. We found a high level of expression of MACIF and DAF in Graves' thyroid tissues. Using the membrane immunofluorescence and cell-ELISA techniques, we also investigated the factors which enhanced the MACIF and DAF expression in cultured thyroid cells. Thyroid stimulating hormone, phorbol 12, 13-dibutyrate and thyroid stimulating autoantibody enhanced the MACIF and DAF expression. These findings suggest that the membrane complement regulatory proteins increase in response to the thyroid stimulating factors such as thyroid stimulating autoantibody in Graves' disease and that this increase then protects the cells from damage due to complement activation by thyroid autoantibodies.

Antigens, CD↗

The function of antibody and complement in the lysis of bacteria.

The factors controlling lysis of gram-negative bacteria by complement are being investigated systematically. The first question was how smooth Salmonella minnesota, which has on its surface lipopolysaccharide with long O polysaccharide side chains, avoids lysis. Rough organisms are serum sensitive. In both smooth and rough organisms, complement components are deposited on the surface and the lytic sequence proceeds to completion. However, with serum-resistant organisms the membrane attack complex (MAC), composed of late-acting complement proteins, does not successfully insert into the outer membrane to cause membrane damage. At the completion of the lytic sequence, the hydrophobic MAC is shed. C3b, which directs late component assembly, is deposited on the longest O polysaccharide side chains on these smooth organisms, where it does not direct successful insertion of the MAC into the outer membrane. Serum-resistant gonococci sequester the MAC on the organism's surface in association with specific outer membrane components, where it does no damage to the outer membrane. Antibody appears to mediate site-directed complement component deposition in a number of systems. Thus, depending on antibody specificity, complement may be deposited on the organism's surface to cause successful complement attack or may block complement attack induced by bactericidal antibody. Monoclonal antibodies of the same isotype directed at different epitopes on the same bacterial surface antigen may either induce lysis or block lytic attack.

Antibodies, Bacterial↗

Inhibition of complement factor C5 protects against renal ischemia-reperfusion injury: inhibition of late apoptosis and inflammation.

BACKGROUND: Complement has been implicated in the pathophysiology of renal ischemia-reperfusion (I/R) injury. However, the mechanism underlying complement-mediated renal I/R injury is thus far unknown. To investigate the involvement of complement in I/R injury, we studied the activation and deposition of complement in a murine model of renal I/R injury. Furthermore, we examined the effect of inhibition of complement-factor C5 on renal I/R injury. METHODS: Mice were subjected to 45 min of unilateral ischemia and subsequent contralateral nephrectomy and reperfusion for 2, 12, or 24 hr. Mice were control treated or treated with BB5.1, a monoclonal antibody that prevents cleavage of complement factor C5, thereby preventing C5a generation and formation of the membrane attack complex (MAC). RESULTS: Renal I/R induced extensive deposition of C3 early after reperfusion, whereas C6 and C9 deposition (MAC formation) occurred relatively late. I/R-induced complement deposition was mainly localized to tubular epithelium. Treatment with BB5.1 totally prevented MAC formation but also reduced C3 deposition. Inhibition of C5 strongly inhibited late inflammation, as measured by neutrophil influx and induction of the murine CXC chemokines macrophage inflammatory protein-2, KC, and lipopolysaccharide-induced CXC chemokine. Anti-C5 treatment furthermore abrogated late I/R-induced apoptosis, whereas early apoptosis was not affected. Moreover, BB5.1 treatment significantly protected against I/R-induced renal dysfunction. CONCLUSIONS: Renal I/R is followed by activation of the complement system and intrarenal deposition of C3 and MAC. Complement activation plays a crucial role in the regulation of inflammation and late apoptosis. Complement inhibition, by preventing C5 activation, abrogates late apoptosis and inflammation, being strongly protective against renal function loss.

Animals↗

Complement-induced expression of chemokine genes in endothelium: regulation by IL-1-dependent and -independent mechanisms.

Activation of complement in the vicinity of endothelium is thought to contribute to the tissue manifestations of inflammatory and immune responses. Endothelial cells contribute to these processes in part by the elaboration of chemokines that activate various leukocytes and direct their migration into tissues. We investigated the mechanisms by which activation of complement on endothelial cell surfaces might influence the expression of chemokine genes in endothelial cells. In a model for the immune reaction occurring in a xenograft, human serum, as a source of xenoreactive anti-endothelial Abs and complement, induced expression of the monocyte chemotactic protein-1 (MCP-1), IL-8, and RANTES genes. The MCP-1 and IL-8 genes were expressed within 3 h as a first phase and at > 12 h as a second phase. The RANTES gene was expressed in porcine endothelial cells only 12 h after exposure to human serum. The expression of these genes required activation of complement and assembly of membrane attack complex, as it was inhibited by soluble CR1 and did not occur in the absence of C8. The early phase of MCP-1 and IL-8 gene expression did not require de novo protein synthesis. The late phase of MCP-1, IL-8, and RANTES gene expression predominantly required the production of IL-1alpha as an intermediate step. The results indicate that the expression of chemokine genes in endothelial cells occurs as a function of differential responses to complement and may in part be conditioned by the availability of IL-1alpha.

Animals↗

Immunohistochemical determination of complement activation in joint tissues of patients with rheumatoid arthritis and osteoarthritis using neoantigen-specific monoclonal antibodies.

Murine monoclonal antibodies specific for neoepitopes expressed by C9 incorporated into membrane attack complexes and by membrane-bound C3b and iC3b have been prepared and characterised. These reagents were used to determine the extent and locus of complement activation in synovial-tissues obtained from patients with rheumatoid arthritis and osteoarthritis. In the four rheumatoid arthritis patients there was extensive deposition of C3 activation products and C5b-9 complexes onto the synovial membrane and the pattern of deposition of both neoantigens in serial tissue sections was very similar. There was less extensive staining for C3 and, particularly, C9 neoepitopes on the apical surface of vessel endothelia. In two of four osteoarthritic patients a similar pattern of C3 and C9 neoepitope deposition was found; in the remaining patients no C5b-9 could be located. Synovial vessel walls, but not synovial cells, from both groups of patients stained extensively for the complement regulatory protein CD59. In synovial membranes from patients with osteoarthritis, C9 appeared to be present predominantly in SC5b-9 complexes whereas in rheumatoid arthritis patients no evidence of S-protein incorporation into membrane attack complexes could be demonstrated, suggesting that in rheumatoid arthritis there is damage to the synovial membrane as a result of complement activation and C5b-9 deposition.

Adult↗

Pro-inflammatory complement activation by the A beta peptide of Alzheimer's disease is biologically significant and can be blocked by vaccinia virus complement control protein.

The amyloid plaque is the hallmark of Alzheimer's disease (AD). The transmembrane domain and a portion of the C-terminus (A beta) of the amyloid precursor protein, are known to form the nucleus of the amyloid plaque. It has been demonstrated recently, using in vitro assays, that the A beta peptide can activate both the classical (antibody-independent) and alternate pathways of complement activation. The proposed complement activation is due to the binding of A beta to the complement components C1q and C3, respectively, which initiate formation of the proinflammatory C5a and C5b-9 membrane attack complex. In this report, we have investigated the in vitro findings for the likely complement-dependent proinflammatory properties of the Alzheimer's disease A beta peptide. We have performed experiments using congenic C5-deficient and C5-sufficient mice injected with synthetic A beta and recombinant polypeptide (C-100) containing A beta. Injection of C-100 into C5-sufficient mice induced a clear increase in the number of polymorphonuclear cells (neutrophils) at the site of injection due to complement activation and the subsequent release of proinflammatory chemtoactic factors. In sharp contrast, the C5-deficient mice did not show any increase in cellular influx. The vaccinia virus complement control protein, an inhibitor of both the classical and alternate pathway can down-regulate the biologically significant activation of complement by A beta, as demonstrated by an in vitro immunassay. The therapeutic down-regulation of A beta-caused complement activation could greatly alleviate the progression of some of the chronic neurodegeneration characteristic of Alzheimer's disease.

Alzheimer Disease↗

Localization of 20-kD homologous restriction factor (HRF20) in diseased human glomeruli. An immunofluorescence study.

The 20-kD homologous restriction factor (HRF20), which is identical to CD59, is a membrane-associated protein which inhibits the reaction of C9 to form membrane attack complex (MAC) of homologous complements. In various human glomerular diseases deposition of complement components is frequently seen and MAC is reported to associate with immune deposits. Using a specific monoclonal antibody, 1F5, against HRF20, we attempted to study the localization of HRF20 in human glomerulonephritides and to compare the localization of HRF20 with those of immune deposits and MAC. The frozen sections of kidney specimens were fixed in acetone at room temperature before staining. In normal kidneys and kidney specimens from the patients with minimal change nephrotic syndrome, membranous nephropathy, and IgA nephropathy, HRF20 was strongly localized in the peritubular capillaries and along Bowman's capsules. A weaker but well-defined staining was obtained in the mesangial area and faint staining was seen along the glomerular capillary walls. In contrast, glomerular capillary walls were rather strongly stained in the cases with diffuse lupus nephritis which had subendothelial dense deposits. These data suggest that HRF20 (CD59) is present in the human glomeruli and its expression is enhanced under certain conditions such as lupus nephritis.

Antigens, Differentiation↗

Immunologic assessment of host defense impairment in patients with septic multiple organ failure: relationship between complement activation and changes in neutrophil function.

BACKGROUND: The pathogenesis of gram-negative sepsis-induced multiple organ failure (MOF) remains to be elucidated. METHODS: Blood samples were obtained from eleven patients with septic MOF, three patients with sepsis, three patients who underwent operation, and three healthy volunteers. In these patients the relationship between changes in polymorphonuclear neutrophil (PMN) function and complement activation was investigated. RESULTS: PMNs from patients with sepsis exhibited enhanced endothelial cell adhesion, enhanced chemotaxis, increased oxygen radical generation, and increased lysosomal enzyme release. Although PMNs from patients with septic MOF also exhibited enhanced adhesion and chemical mediator production, chemotaxis was markedly depressed. Complement activation in septic MOF was indicated by decreases in total complement activity and complement component 4 (C4) and increases in C3a and C4a des-Arginine. Increases in plasma concentrations of circulating immunoglobulin G immune complexes and decreases in PMN Fc gamma R expression suggest that the classic pathway is the main pathway of complement activation. On the other hand, we could not detect decreases in C4 or increases in C4a des-Arginine in patients with sepsis, suggesting that the alternate pathway is the main pathway of complement activation. Increases in serum concentrations of the membrane attack (SC5b-9) complex also suggested that activated complement itself may participate in organ injury in patients with septic MOF. Moreover, PMN up-regulation of surface inhibitory factors of complement activation likely allows these neutrophils to survive and function. CONCLUSIONS: The combination of changes in PMN function and complement activation appears to be intimately associated with the pathogenesis of septic MOF.

Adult↗

Localization of the human CD59 gene by fluorescence in situ hybridization and pulsed-field gel electrophoresis.

We have localized the human CD59 gene encoding a membrane protein that inhibits cell lysis by the membrane-attack complex of the homologous complement system. Using chromosomal in situ suppression hybridization and pulsed-field gel electrophoresis, we mapped this gene to chromosome 11p13, distal to the breakpoint of acute T-cell leukemia and proximal to the locus of the Wilms' tumor gene on a 30-kb SacII fragment.

Antigens, CD↗

Attenuation of interleukin-8 expression in C6-deficient rabbits after myocardial ischemia/reperfusion.

Neutrophil accumulation and activation of the complement system with subsequent deposition of the cytolytic membrane attack complex (MAC) have been implicated in the pathogenesis of myocardial ischemia/reperfusion injury. The MAC, when present in high concentrations, promotes target cell lysis. However, relatively little is known about the potential modulatory role of sublytic concentrations of the MAC on nucleated cell function in vivo. In vitro studies demonstrated that the MAC regulates cell function by promoting the expression of pro-inflammatory mediators, including adhesion molecules and pro-inflammatory cytokines. We examined, using C6-deficient and C6-sufficient rabbits, the regulatory role of the MAC in mediating IL-8 expression and subsequent neutrophil recruitment in the setting of myocardial ischemia/reperfusion injury. C6-deficient and C6-sufficient rabbits were subjected to 30 min of regional myocardial ischemia followed by a period of reperfusion. In addition to a significant reduction in myocardial infarct size in C6-deficient animals, analysis of myocardial tissue demonstrated a decrease in neutrophil influx into the infarcted region. The reduction in neutrophil influx correlated with the decreased expression of the neutrophil chemotactic cytokine IL-8, as determined by ELISA and immunohistochemical analysis. The results derived from this study provide evidence that the MAC has an important function in mediating the recruitment of neutrophils to the reperfused myocardium through the local induction of IL-8.

Animals↗

Renal localization of the membrane attack complex in systemic lupus erythematosus nephritis.

The membrane attack complex (MAC) of the complement system was localized in both glomeruli and peritubular regions of 22 kidneys manifesting systemic lupus erythematosus (SLE) nephritis. A similar distribution was observed for immune complex markers (IgG, Clq, and C3) and MAC in glomeruli, although the deposits of MAC were more discrete and showed lesser immunofluorescence staining intensity compared with immunoglobulins and complement components. In contrast, peritubular immune complexes were present in only 7 out of 22 kidneys, involved comparatively small clusters of tubules, exhibited weaker immunofluorescence staining than MAC, and failed to correlate with interstitial foci of inflammation. Granular or irregular, linear aggregates of the MAC were observed at the periphery of larger groups of tubules contiguous to areas of interstitial inflammation. Comparable amounts of IgG, Clq, C3, and MAC were present in blood vessel walls in areas of fibrinoid necrosis. These data suggest that the MAC is a direct mediator of tissue injury occurring in renal glomeruli, tubules, and blood vessels. The discordance between immune complexes and MAC localized in the peritubular region, but not in glomeruli or blood vessels, raises the possibility that both immune complexes and nonimmune agents, such as bacterial antigens, may activate the classical or alternative complement pathways and thereby play a role in the pathogenesis of tubulointerstitial lesions of SLE nephritis.

Animals↗

Role of terminal complement pathway in the heterologous phase of antiglomerular basement membrane nephritis.

Terminal complement components, including the membrane attack complex, have been demonstrated in glomeruli of patients with immune complex and anti-GBM nephritis. We recently demonstrated the functional significance of C6 in the mediation of experimental membranous nephropathy in rabbits. In the present study, the role of C6 was examined in the heterologous phase of rabbit anti-GBM nephritis by studying normal and C6-deficient (C6D) rabbits. In C6D rabbits, C6 hemolytic activity was less than 0.01% of control. All control rabbits became heavily proteinuric in the first 24 hr following injection of a standard dose of sheep anti-rabbit GBM antibody (mean, 42.0 +/- 26.3; range, 18.4 to 83.5 mg protein/mg creatinine, N = 5). In contrast, C6D rabbits excreted a mean of only 5.1 +/- 5.5 mg/mg creatinine (range, 0.06 to 14.4, N = 6, P = 0.002). Protein excretion in normal rabbits was less than 0.06 mg/mg creatinine. Both control and C6D rabbits had similar deposits of sheep anti-rabbit GBM IgG in glomeruli when measured by radiolabeling techniques (control 15.8 +/- 2.71, N = 5; C6D 18.7 +/- 1.99 micrograms of sheep IgG/10(4) glomeruli, N = 6, P greater than 0.05). Control rabbits had a greater rise in serum creatinine in the first 24 hr (1.74 +/- 1.15 vs. 0.53 +/- 0.44 mg/dl, P less than 0.05). Both groups had similar deposits of sheep IgG and rabbit C3 by IF. By light microscopy at 4 and 24 hr, both groups had qualitatively similar proliferative changes and similar numbers of neutrophils infiltrating glomeruli.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

The human complement C9 gene: structural analysis of the 5' gene region and genetic polymorphism studies.

C9 is the last of the human complement components creating the membrane attack complex. The single chain serum protein is encoded by a gene located on chromosome 5p13 that is composed of 11 exons. With the aid of inverse PCR, the hitherto unknown regions flanking exon 1 and the 3' part of exon 11 (3'UTR) have been sequenced. A computer-based analysis of the 300-bp region located just upstream of the AUG start codon showed homologies to known DNA modules which affect the transcriptional regulation of certain genes. The most striking of these is a sequence that may substitute the missing TATA box in initiating C9 transcription. In the 3'UTR, three successive polyadenylation signals were found. Although the C9 protein is invariant, four different single nucleotide polymorphisms (SNPs) have been observed at the DNA level by exon-specific PCR and direct sequencing. None of them changes the amino acid composition of the mature protein. Due to a C --> T transition in exon 1 at cDNA position 17, the fifth amino acid of the leader peptide may be either an arginine or a tryptophane. Using either PCR/ RFLP analysis (exons 1 and 11) or allele-specific PCR (intron 1 and exon 4), each polymorphism can be characterized without sequencing. All of the exon 1, intron 1 and exon 11 variants could be detected in small population samples of European, Thai or South American Indian origin. In contrast, the exon 4 C variant was observed only once in a European. The first three SNPs can be combined to designate eight different 'C9 alleles'. Of these, six have actually be found. These data provide strong evidence that several mutation and recombination events occurred in the course of C9 gene evolution.

3' Untranslated Regions↗

Complement, neutrophils and free radicals: mediators of reperfusion injury.

Myocardial ischemia of sufficient duration produces irreversible myocardial injury and cell death. Associated with the direct ischemic insult, there is the indirect attack on the jeopardized tissue through activation of the complement system. The latter, occurring in response to ischemia, facilitates neutrophil-endothelial cell interactions, neutrophil migration into and across the vascular wall, along with the formation of cytotoxic oxygen metabolites and release of proteolytic enzymes. The neutrophil dependent actions participate in extending the tissue injury beyond that due to ischemia alone. The invading neutrophils injure the myocardial vasculature and sarcolemma through the generation of oxygen free radicals. Components of the complement system can damage tissue indirectly through formation of neutrophil chemoattractants as well as directly through assembly of the "membrane attack complex." Pharmacologic interventions that prevent complement activation, modulate neutrophil function or scavenge oxygen radicals, can reduce the extent of myocardial injury associated with ischemia reperfusion. The inflammatory reaction of cell injury mediated by neutrophil invasion of the affected tissue is an important site for pharmacologic intervention. Specific adhesive glycoprotein receptors are expressed on the neutrophil in conjunction with corresponding endothelial cell ligands. Recognition of these events has led to the development of specific antibodies having the potential to prevent cell-cell interactions essential for promoting and maintaining the inflammatory response. Therefore, neutrophil-independent extension of irreversible cell death that occurs upon reperfusion, is additive to the component of cell death attributed to the ischemic interval. As is the situation with any organ, function and cellular viability are dependent upon a blood supply, which if interrupted for a sufficiently long period, will lead to irreversible cellular changes and necrosis. Reperfusion is essential for arresting the otherwise progressive injury due to ischemia. The accelerated inflammatory response upon reperfusion contributes to an extension of the injury, a phenomenon known as "reperfusion" or "reoxygenation" injury.

Animals↗