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Meconium is a potent activator of complement in human serum and in piglets.

Meconium aspiration syndrome (MAS) is a clinical condition in the newborn infant with a significant morbidity and mortality. The complex pathophysiology of MAS, leading to both pulmonary and systemic complications, is characterized by an incompletely understood inflammatory reaction. Treatment is symptomatic, mainly limited to airway cleaning and ventilatory support. In this study, we show for the first time that meconium is a potent activator of complement, a key mediator of inflammation. In vitro, meconium activated the alternative complement pathway in human umbilical cord serum as judged by a substantial increase in the alternative pathway convertase C3bBbP. The activation proceeded through C3 (C3bc) and the terminal C5-9 pathway (terminal SC5b-9 complement complex), whereas the classical and lectin pathways were not activated (C1rs-C1-inhibitor complexes and C4bc). The lipid fraction, containing, e.g. free fatty acids, and the water fraction, containing, e.g. bile acids, contributed equally to the complement activation. A blocking antibody to factor D (alternative pathway) completely inhibited the meconium-induced complement activation, whereas blocking antibodies to mannose-binding lectin (lectin pathway) and C2 (classical and lectin pathway) had no effect. In vivo, meconium induced systemic complement activation in a piglet model of MAS, paralleling the increase in lung dysfunction. In conclusion, meconium is a potent activator of the complement system both in vitro and in vivo. Complement may be important in the pathogenesis of MAS, and specific complement inhibition might be a possible treatment approach in MAS.

Age Factors↗

Silica induced suppression of the production of third and fifth components of the complement system by human lung cells in vitro.

Although investigations to date have demonstrated the ability of the monocyte/macrophage to synthesize complement components, only a limited number of studies on complement synthesis by nonhepatic tissue cells have been reported. To begin to fill this gap in our knowledge we have recently evaluated the ability of lung tissue cells to synthesize and secrete various complement components in vitro. Using 35S-methionine incorporation and immunoprecipitation techniques we have previously demonstrated the ability human lung type II pneumocytes (A549) and human lung fibroblasts (WI-38), to synthesize and secrete a variety of both early and terminal complement components, as well as several regulatory proteins including Clr, Cls, C4, C3, C5, C6, C7, C8, C9, Factor B, Factor H, Factor I and Cls inactivator. Our present studies demonstrate the capability of silica to regulate complement component production by A549 cells, but not complement component production by WI-38 cells. Specifically, using sensitive ELISAs we demonstrated that a non-toxic dose of silica had the capability to suppress the production of both C3 and C5 by A549 pneumocytes by 40-50 percent, but had no effect on C3 or C5 synthesis by WI-38 fibroblasts. Additionally, using 35S-methionine incorporation and TCA precipitation techniques, we demonstrated that suppression of C3 and C5 production by silica treated A549 pneumocytes was not a result of suppression of total protein synthesis. These studies demonstrate that silica, which has been implicated in pulmonary diseases, has the capability to regulate local complement production by lung tissue cells in vitro. In vivo, this suppression of complement production by the type II pneumocytes could alter the local tissue reservoir of complement components during infection and pulmonary injury, thus resulting in depressed pulmonary host defense.

Cell Line↗

The role of the complement cascade in ischemia/reperfusion injury: implications for neuroprotection.

BACKGROUND: The complement cascade plays a deleterious role in multiple models of ischemia/reperfusion (I/R) injury, including stroke. Investigation of the complement cascade may provide a critical approach to identifying neuroprotective strategies that can be effective at clinically relevant time points in cerebral ischemia. This review of the literature describes the deleterious effects of complement activation in systemic I/R models and previous attempts at therapeutic complement inhibition, with a focus on the potential role of complement inhibition in ischemic neuroprotection. Translation of these concepts into ischemic stroke models and exploration of related neuroprotective strategies are also reviewed. SUMMARY OF REVIEW: We performed a MEDLINE search to identify any studies published between 1966 and 2001 dealing with complement activation in the setting of I/R injury. We also searched for studies demonstrating up-regulation of any complement components within the central nervous system during inflammation and/or ischemia. CONCLUSIONS: The temporal and mechanistic overlap of the complement cascade with other biochemical events occurring in cerebral I/R injury is quite complex and is only beginning to be understood. However, there is compelling evidence that complement is quite active in the setting of acute stroke, suggesting that anticomplement strategies should be further investigated through genetic analysis, nonhuman primate models, and clinical investigations.

Animals↗

Mechanism of complement activation in the hyperacute rejection of porcine organs transplanted into primate recipients.

The authors investigated the importance of natural antibody and complement in the pathogenesis of hyperacute xenograft rejection using in vivo and in vitro pig to primate models. Studies were carried out in rhesus monkeys transplanted with a pig heart or kidney in which hyperacute rejection was observed within a few hours. The rejected organs showed deposits of IgM, C3, C4, C5, and C9 neoantigen along small blood vessels, but few deposits of factors B and P. Removal of anti-endothelial cell "natural" antibodies by plasmapheresis, immunoabsorption, and immunosuppression techniques resulted in marked prolongation of the survival of a subsequently transplanted heart, even when complement levels were within the normal range. Thus, complement, in the absence of natural antibodies, did not initiate hyperacute rejection in this species combination. The requirements for complement activation in human serum to cause cytotoxicity of porcine endothelial cells were then evaluated. Cytotoxicity was abrogated by depleting human serum of IgM, C2, or C5, but not of factor B. Restoration of the effect of serum on endothelial cells was achieved by reconstitution of the respective depleted sera with purified IgM or with the corresponding complement proteins, indicating that IgM and the classical, but not the alternative, pathway of complement, were involved. Identical conclusions were drawn from experiments to ascertain the requirements for complement activation in human serum to mediate binding of iC3b to porcine endothelial cells. The authors conclude that in a pig to primate xenograft complement does not directly initiate injury to the graft but rather requires activation by bound xenoreactive natural antibodies; IgM antibodies directed against endothelial cells activate the classical complement pathway, which then contributes to endothelial cell activation and subsequent events characteristic of hyperacute rejection.

Animals↗

Activation of rainbow trout complement by C-reactive protein.

The activation of the complement system of rainbow trout by trout C-reactive protein (CRP) was investigated. Complement fixation tests were performed by using rabbit hemolysin-sensitized sheep erythrocytes and rainbow trout complement. Purified CRP increased the consumption of complement in the presence of Streptococcus pneumoniae C-polysaccharide (CPS), indicating the activation of the complement system. In contrast to this, acute phase serum activated the complement in the absence of CPS. Consumption of the complement by acute-phase serum was depressed when CRP was removed from acute-phase serum by CPS-sepharose 4B affinity chromatography. The acute-phase serum, as well as CRP plus CPS, suppressed in vitro growth of Vibrio anguillarum in the presence of complement, and enhanced the phagocytosis of the bacteria by glass-adherent peritoneal exudate cells. These results indicated that CRP has a role in host defense during acute-phase response through the activation of the complement system, enhancement of phagocytosis, and suppression of bacterial growth.

Acute-Phase Reaction↗

Complement components and receptors: deficiencies and disease associations.

The complement system, accessory to many immunological functions, consists of a number of interdependent components and receptors. Numerous in vitro approaches have elucidated the biological role of these components and receptors. However, it is the in vivo "natural" experiments that underscore their importance. The phagocytosis and subsequent digestion of pyogenic bacteria is significantly enhanced by the fixation of the third complement component to the bacterial cell wall. Equally important is the intact expression of a receptor (CR3) for the C3b cleavage fragment. Breakdown in this ligand-receptor interaction due to either C3 or CR3 deficiency leads to pyogenic infection. Interestingly, C3-deficient individuals do not demonstrate leukocytic infiltration at the site of infection. Undoubtedly, this is due to the lack of C5 convertase and failure to produce C5a. CR3-deficient individuals, on the other hand, do demonstrate leukocytosis since the third complement component is functional. C3 deficiency is not necessarily a primary lesion and may be secondary to factor I deficiency. In this case, the C3b fragment, along with factor B, acts as a C3 convertase. Inefficient inactivation of C3b, due to factor I deficiency, leads to the uncontrolled consumption of the third component, resulting in C3 deprivation. It appears that phagocytosis by neutrophils and monocytes followed by enzyme-interaction is not sufficient for destruction of the Neisseria organisms. In addition to this leukocyte activity, an intact membrane attack complex, composed of the late complement components C5, 6, 7, 8, and 9, is required for the lysis of these bacteria. This is supported by findings that individuals deficient in late components are highly susceptible to systemic Neisseria infections. Diseases of an autoimmune nature are frequently associated with a deficiency of one of the early complement components C1, C2, or C4 and a deficiency of erythrocytic CR1 receptors as well. This may suggest that proper interaction between a complement fragment of the immune complex with the complement receptor expressed on the erythrocyte is important for proper management and clearance of the complex. Deficiency of the early complement components would prevent the activation of C3 and the fixation of a resulting C3 cleavage product. In this case, erythrocytes would be unable to participate in the transport of the immune complex to the reticuloendothelial system. Instead, tissue deposition of the complex would occur more readily, contributing to the pathologic process. Provided that the early complement cascade were intact, deficiency of erythrocytic CR1 receptors would contribute to the pathologic response for the same reason.(ABSTRACT TRUNCATED AT 400 WORDS)

Autoimmune Diseases↗

Resistance of human melanoma cells against the cytotoxic and complement-enhancing activities of doxorubicin.

The anticancer agent doxorubicin has two different effects on human SK-MEL-170 melanoma cells: the well known direct cytotoxicity and a marked enhancement of their susceptibility to killing by the R24 monoclonal anti-GD3) ganglioside antibody and human complement. This complement-enhancing effect of doxorubicin is also present after covalent immobilization onto glycerol-coated glass beads preventing cellular uptake of the drug (M. Panneerselvam, R. Bredehorst, and C-W. Vogel, Proc. Natl. Acad. Sci. USA, 83: 9144-9148, 1986). In order to investigate the effect of doxorubicin resistance on the complement-enhancing activity of the drug, we have established a doxorubicin-resistant SK-MEL-170 subline. The development of drug resistance in these melanoma cells was associated with multiple phenotypical changes including an increased expression of at least four high molecular weight plasma membrane proteins or glycoproteins with molecular weights of approximately 220,000, 180,000, 150,000, and 130,000, respectively. The drug-resistant cells accumulated doxorubicin at approximately 2-fold lower amounts in accordance with a 2-fold higher efflux of doxorubicin from these cells. The basal complement susceptibility of the doxorubicin-resistant cells was reduced by more than 60% presumably as a result of the observed reduced expression of GD3 sites and decreased binding of C3b. Most importantly, the doxorubicin-resistant cells were also resistant against the complement-enhancing effect of the free and immobilized drug. The two doxorubicin resistance phenomena, the resistance to the cytotoxic and to the complement-enhancing activities of the drug, seem to be fundamentally different: (a) to achieve comparable cytotoxic and complement-enhancing effects on drug-sensitive and -resistant SK-MEL-170 cells, the drug-resistant cells required 178-fold higher concentrations of free doxorubicin for the cytotoxic effect but only 5-fold higher amounts of the free drug and 12-fold higher amounts of the immobilized drug for the complement-enhancing effect; (b) resistance against the cytotoxic activity of doxorubicin is associated with reduced intracellular drug accumulation, while the data obtained with immobilized doxorubicin indicate that resistance to the complement-enhancing activity of the drug is independent of cellular drug uptake. These data suggest that different mechanisms are responsible for the two resistance phenomena in doxorubicin-resistant melanoma cells.

Antibodies, Monoclonal↗

Diethylcarbamazine-enhanced activation of complement by intact microfilariae of Dirofilaria immitis and their in vitro products.

Microfilariae of Dirofilaria immitis and their products inhibited hemolytic complement in sera from various animal species. Inhibition of hemolytic complement activity, fluorescent antibody detection of specific complement proteins binding to microfilarial surfaces, and immunoelectrophoretic evaluation of complement protein C3 conversion demonstrated that (1) intact microfilariae depleted hemolytic complement activity maximally in the presence of diethylcarbamazine whereas the complement-fixing activity of microfilarial products was little affected by diethylcarbamazine; (2) complement proteins C3, properdin, and C5 bound to the cuticular surface of microfilariae; and (3) C3 was converted to a faster-migrating species during incubation with microfilariae or their products. The complement-depleting activity of in vitro products from viable microfilariae was soluble in 10% trichloroacetic acid, resistant to beta-elimination with 0.5 M NaOH, susceptible to treatment with 0.2 M periodate, and composed of 56% neutral sugar, 18% protein, 12% hexosamine, and 10% sulfate. The polysulfated, acidic mucopolysaccharide nature of the surfaces of microfilariae and the results presented here indicate that polyanionic components on worm surfaces or shed by microfilariae react with host complement proteins. This interaction may be enhanced by diethylcarbamazine and contribute to the pathology associated with microfilaremias.

Animals↗

Complement in serum and dialysate in children on continuous ambulatory peritoneal dialysis.

OBJECTIVE: During continuous ambulatory peritoneal dialysis (CAPD), activation of complement in the peritoneal cavity may theoretically occur, with inappropriately high or low levels of certain complement factors in dialysate as a consequence. In a group of children on CAPD, it was tested whether levels of a number of complement factors in dialysate were in the range that was predicted on the basis of their molecular weight. DESIGN: Serum and dialysate levels of C1q, C3, C4, C3d, B, D, and P were measured after a night dwell in children on CAPD. Simultaneously, four non-complement proteins (beta 2-microglobulin, albumin, IgG, and alpha 2-macroglobulin) were also measured in dialysate and serum. Assuming a linear relationship between the log base 10 of the dialysate/serum ratio of these non-complement proteins and the log base 10 of their molecular weight, the expected ratios of all complement factors were determined. The differences between actual and predicted ratios were tested using a modified t-test, taking into account the inaccuracy of the estimate. SETTING: University hospital. PATIENTS: A group of 14 children on CAPD, with a median age of 7.8 years (range 2.1 - 13.2). These children had been on CAPD for a median period of 42.4 months (range 0.4 - 89.1). RESULTS: The ratios of factor D (p < 0.001) and C3d (p = 0.035) were elevated, whereas those of C3 (p < 0.001), C4 (p < 0.001), and factor P (p = 0.012) were decreased. CONCLUSIONS: Relatively low dialysate/serum ratios of C4, C3, and factor P could be caused by intraperitoneal consumption of complement. High levels of C3d are compatible with this. High dialysate/serum ratios of factor D indicate intraperitoneal production of factor D. These results provide evidence for activation of complement in the peritoneal cavity in children on CAPD. A further reduction of already low levels of complement factors in dialysate as a result of this may impair host defense.

Albumins↗

Expression of CD46, CD55, and CD59 on renal tumor cell lines and their role in preventing complement-mediated tumor cell lysis.

Nucleated cells are protected from complement-mediated injury by the expression of membrane-bound regulators of complement activation (mRCA) CD46, CD55, and CD59. Increased expression of these mRCA may be a mechanism by which tumor cells protect themselves from complement-mediated injury and prevent an inflammatory response. In the present study, we have investigated whether human renal tumor cell lines and cultured proximal tubular epithelial cells express CD46, CD55, and CD59 and whether these mRCA influence complement-mediated lysis of these cells. The expression of CD46, CD55, and CD59 was measured by flow cytometry. To determine the effect of mRCA on lysis, tumor cells were opsonized with complement activating anti-HLA class l mAb. Lysis was measured in the presence or absence of anti-CD46, anti-CD55 or anti-CD59 mAb and serum as a source of complement, using a 51Cr release assay. Flow cytometric analysis revealed that renal tumor cell lines and proximal tubular epithelial cells all express CD46, CD55, and CD59. Lysis of renal tumor cell lines in the presence of rabbit serum depended on the number of HLA class I molecules expressed by the tumor cells. Using human serum, complement-mediated lysis was decreased by at least one-third as compared with rabbit serum. The susceptibility of renal tumor cells for complement-mediated lysis could be increased up to the level observed with rabbit serum by inhibiting the function of CD59. Inhibition of the function of CD46 or CD55 with mAb directed against these mRCA had no substantial effect on lysis. We conclude from this work that renal tumor cells and proximal tubular epithelial cells express CD46, CD55, and CD59. Of these mRCA, CD59 is most efficient in preventing complement-mediated lysis of these cells. Expression of mRCA on tumor cells may influence the effectiveness of immunotherapy with tumor-associated mAb.

Amino Acid Sequence↗

Enhanced sensitivity of P-glycoprotein-positive multidrug resistant tumor cells to complement-mediated lysis.

The interaction of KB-V1, a multidrug resistant (MDR) variant of the KB-3-1 human oral carcinoma, with human complement was investigated. KB-V1 cells were found to be more sensitive than KB-3-1 cells to complement-mediated lysis. Detailed analysis of the capacity of KB cells to activate human complement demonstrated that both C3b deposition and formation of the membrane attack complex (MAC) are higher on KB-V1 than on KB-3-1 cells. Furthermore, the MAC formed on KB-V1 cells, but not on KB-3-1 cells, was found to be resistant to trypsin treatment, i.e. more stably inserted into the plasma membrane. Immunofluorescence analysis by flow cytometry showed that KB-V1 cells express less decay-accelerating factor (DAF, CD55) than KB-3-1 cells. Two other complement regulatory proteins, membrane cofactor protein (MCP, CD46) and CD59 are expressed to a similar extent on both KB-V1 and KB-3-1 cells. Treatment of KB-V1 cells with neutralizing anti-P-glycoprotein (P-gp) monoclonal antibodies reduced their sensitivity to complement. In addition, KB-V1 revertants which cease to express P-gp become more resistant to complement. These results indicate that multiple factors, such as reduced expression of DAF, enhanced deposition of C3b and increased binding and stability of the MAC may contribute to the increased complement sensitivity of KB-V1 cells. It is suggested that P-gp is responsible for the complement-sensitive phenotype of KB-V1 cells.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Complement inhibition rescued mice allowing observation of transgene expression following intraportal delivery of baculovirus in mice.

BACKGROUND: The baculovirus Autographa californica nucleo-polyhedrosis virus (AcNPV) is an alternative to other viral vectors for hepatic gene delivery. A barrier to AcNPV being used in vivo is its susceptibility to inactivation by serum complement 1. In vivo utility has only been demonstrated using methods that avoid contact with serum 2-5. We have studied the complement pathways involved in baculovirus inactivation in vitro and the systemic administration of baculovirus vectors in vivo, with the co-administration of the complement inhibitor, soluble complement inhibitor 1 (sCR1). RESULTS: EDTA increased baculovirus survival in human serum more than EGTA showing that both the alternative and classical pathways of complement are activated. Depleting serum of IgM increased survival, whereas reconstitution with pooled IgM restored activity against baculovirus, suggesting naturally occurring IgM antibodies with affinity for baculovirus may be partially responsible for complement activation. Intraportal administration of baculovirus led to hepatic expression when the complement inhibitor sCR1 (soluble complement receptor type 1) was co-administered by tail vein injection; however, liver histology showed hepatic necrosis. Without co-administration of sCR1, intraportal infusion of baculovirus was fatal within 24 h. Histology demonstrated massive hepatic necrosis. Yolk sac vein injection of baculovirus was associated with fetal death. CONCLUSIONS: Transgene expression was demonstrated following intraportal infusion of recombinant baculovirus vectors in combination with sCR1; however, our experiments suggest a significant associated toxicity.

Animals↗

Role of complement in in vitro and in vivo lung inflammatory reactions.

Complement is one of the integral buttresses of the inflammatory response. In addition to host defense activities, proinflammatory properties of several complement components are described. This overview elucidates the role of complement in inflammatory reactions in vitro and in vivo, focusing on the complement activation products, C5a, and the membrane attack complex, C5b-9. Using several approaches, the impact of these complement components in mechanisms relevant to neutrophil recruitment is emphasized. In addition, the participation of complement in endothelial superoxide generation and its essential requirement for full expression of lung injury is demonstrated, as are the involved intracellular signal transduction pathways. Understanding the mechanisms of complement-induced proinflammatory effects may provide a basis for future therapeutic blockade of complement and/or its activation products.

Complement Activation↗

Decreased activity of complement-mediated immune complex clearance in hemodialysis patients.

Complement-mediated immune complex (IC) clearance was examined in the sera from regular hemodialysis patients, who accumulated excess factor D in the circulation. Both complement activities for the inhibition of insoluble IC formation and the solubilization of insoluble IC were lower in the sera from these patients than in the sera from normal individuals. A similar decrease in complement activities was observed in normal serum fortified with excess factor D. In addition, complement-processed IC was found to be bound less effectively to human erythrocytes via complement receptor type 1 in the sera from these patients and from normal serum fortified with excess factor D than in normal serum. Gel-filtration HPLC analysis revealed a decrease in covalent binding of C3 fragments to IC solubilized in the sera from hemodialysis patients or in normal serum fortified with excess factor D. This supports the notion that lower complement-mediated IC clearance is due to the paucity of complement fragments bound to IC. It is suggested that some detrimental alterations in the complement system, probably due to excess factor D, cause decreased IC clearance activity in hemodialysis patients with chronic renal failure.

Antigen-Antibody Complex↗

A reexamination of the role of clusterin as a complement regulator.

Clusterin is a highly conserved glycoprotein which has been proposed to protect host cells against complement-mediated cytolysis. We tested the hypothesis that clusterin is a complement regulator using erythrocytes and cells which had been stably transfected with a membrane-anchored form of clusterin as targets for complement-mediated cytolysis. Clusterin gave dose-dependent protection of antibody-coated sheep erythrocytes against complement-mediated lysis by diluted normal human serum. There was a linear relationship between the concentration of clusterin giving 50% protection and the concentration of serum; extrapolation of this to the case of undiluted human serum showed that a clusterin concentration at least two orders of magnitude greater than its physiological plasma concentration would be needed to confer protection against complement-mediated cytolysis under physiological conditions. Physiological concentrations of clusterin did not protect rabbit erythrocytes against alternative complement pathway-mediated lysis using dilute human serum. Exogenous clusterin had no effect on lysis of human erythrocytes triggered by the addition of inulin to autologous human serum. Induction of cell-surface clusterin expression by L929 (murine fibroblast) cells which had been stably transfected with cDNA for human clusterin linked to DNA coding for the 44 C-terminal amino acid residues of CD55 did not protect the cells against complement-mediated lysis by either normal or clusterin-depleted human serum. These data suggest that clusterin may not be a physiologically relevant regulator of complement activation.

Animals↗

Retinal synthesis and deposition of complement components induced by ocular hypertension.

Inappropriate activity of the complement cascade contributes to the pathophysiology of several neurodegenerative conditions. This study sought to determine if components of the complement cascade are synthesized in the retina following the development of ocular hypertension (OHT) and if complement accumulates in association with retinal ganglion cells. Toward this goal the gene expression levels of complement components 1qb (C1qb) and 3 (C3) were determined in the retina by quantitative polymerase chain reaction in human eyes with elevated intraocular pressure (IOP) and healthy retinal tissue as well as in a rat model of OHT induced by laser cauterization of the trabecular meshwork and episcleral veins. Immunohistochemical methods were employed to determine the sites of complement deposition in the retina and optic nerve head. Our data demonstrate that transcript levels for C1q and C3 are significantly elevated in retinae subjected to OHT, both in the animal model as well as in human eyes. Immunohistochemical analyses indicate that C1q and C3 accumulate specifically in the retinal ganglion cell layer and the nerve fiber layer. In addition, we demonstrate that the terminal complement complex, or membrane attack complex, is formed both in the human and rat model as a consequence of OHT. Complement activation, particularly formation of membrane attack complexes, has the potential to exacerbate ganglion cell death through bystander lysis or glial cell activation. The results show that complement activation occurs in the retina that has been subjected to elevated IOP, and may have implications in pathophysiology of glaucoma.

Animals↗

Temporal accrual of complement proteins in amyloid plaques in Down's syndrome with Alzheimer's disease.

The complement system constitutes a series of enzymatic steps involved in the inflammatory response and is activated in Alzheimer's disease (AD). Using Down's syndrome (DS) brains as a temporal model for the progression of AD, we examined components of the complement cascade and their relationship to other principal events in AD pathology: Abeta42 deposition, neuritic changes, neurofibrillary tangles (NFTs), and gliosis (reactive astrocytes, activated microglia). Adjacent sections of frontal cortex from 24 DS subjects ranging in age from 12 to 73 years were immunohistochemically examined for immunoreactivity (IR) of classical complement proteins (Clq and C3), markers indicating activation of complement (C4d and C5b-9), the complement inhibitor apolipoprotein J (apo J), and markers of AD neuropathology. Abeta42-labeled diffuse plaques were first detected in a 12-year-old DS subject and were not labeled by any of the complement antibodies. Colocalization of Abeta42 with Clq, C3, C4d, and/or apo J was first detected in compacted plaques in the brain of a 15-year-old DS patient with features of mature AD pathology, such as reactive astrocytes, activated microglia, dystrophic neurites, and a few NFTs. IR for C4d and C5b-9 (membrane attack complex, MAC) was observed in small numbers of plaque-associated dystrophic neurites and in focal regions of pyramidal neurons in this 15-year-old. The only other young (</=30 years) DS brain to show extensive complement IR was that of a 29-year-old DS subject who also displayed the full range of AD neuropathological features. All middle-aged and old DS brains showed IR for Clq and C3, primarily in compacted plaques. In these cases, C4d IR was found in a subset of Abeta42 plaques and, along with C5b-9 IR, was localized to dystrophic neurites in a subset of neuritic plaques, neurons, and some NFTs. Our data suggest that in AD and DS, the classical complement cascade is activated after compaction of Abeta42 deposits and, in some instances, can progress to the local neuronal expression of the MAC as a response to Abeta plaque maturation.

Adolescent↗

C-type lectins and galectins mediate innate and adaptive immune functions: their roles in the complement activation pathway.

In recent years, a 'new' pathway for complement activation mediated by the mannose-binding lectin (MBL) has been described as a key mechanism for the mammalian acute phase response to infection. This complement activation pathway is initiated by a non-self recognition step: the binding of a humoral C-type lectin [mannose-binding lectin (MBL)] to microbial surfaces bearing 'foreign' carbohydrate determinants. The recognition factor, MBL, is associated with a serine protease [MBL-associated serine protease (MASP)] which, upon MBL binding to the microbial ligand, activates the complement component C3, leading to either (a) phagocytosis of the opsonized target via the complement receptor, or (b) humoral cell killing via assembly of the membrane attack complex. Galectins (formerly known as S-type lectins) modulate activity of the complement receptor 3 (CR3), the macrophage membrane receptor for complement components C3b and iC3b, downstream products of the MBL pathway which are covalently bound to 'target cells. Galectins also mediate macrophage- and dendrocyte-adhesion to lymphocytes activated by signaling through another C-type lectin, the L-selectin, leading to immunoglobulin-mediated responses. Thus, the functional interplay of MBL, galectins and L-selectin in the acute phase response neutralizes the microbial challenge, and lead to further adaptive immunity. Although the observation of various components of the lectin pathway in different invertebrate species demonstrates the high conservation and ancient roots of the components of innate immunity, there has previously been no evidence supporting the possibility that the integral lectin-mediated complement activation pathway is present in invertebrates. We now have evidence for the coexistence of homologs of all the pathway's key components (MBL, MASP, C3, and galectin) in the protochordate Clavelina picta, suggesting the lectin-mediated pathway of complement activation preceded the immunoglobulin pathway in evolution. Therefore, despite being 'new' to the textbooks, experimental evidence indicates that this pathway is ancient, and has been conserved intact throughout its evolution.

Amino Acid Sequence↗