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Complement-mediated killing of Escherichia coli: dissipation of membrane potential by a C9-derived peptide.

The molecular mechanism of complement-mediated killing of Gram-negative bacteria has yet to be resolved, but it is generally accepted that assembly of the membrane attack complex (MAC) of complement on the outer bacterial membrane is a required step. We have now investigated the effect of the MAC and its precursor complex, C5b-8, on the membrane potential (delta Em) across the inner bacterial membrane. Delta Em of whole cells was measured directly by using a lipophilic cation (tetraphenylphosphonium) that equilibrates with the potential or indirectly by measuring transport of solutes (proline and galactoside), which is dependent on delta Em. Our results indicate that the C5b-8 complex caused a transient collapse of delta Em in the absence of cell killing. Addition of C9 to allow formation of the MAC dissipated delta Em irreversibly, and the cells were killed. Since delta Em is generated across the inner membrane in Gram-negative bacteria, inner membrane vesicles were prepared and membrane potentials were generated either by adding D-lactate to energize the electron-transport chain or by creating a K+ diffusion potential with valinomycin. C9 added in the absence of earlier acting complement proteins had no effect on delta Em of isolated, actively respiring vesicles or on K+ diffusion potentials. In contrast, its C-terminal thrombin fragment (C9b), which has been shown earlier to contain the membrane-active domain of C9, efficiently collapsed delta Em in such vesicles. C9b did not require a specific receptor since it was effective on "right-side-out" and "inside-out" vesicles. These results are interpreted to indicate that a C9-derived fragment deenergizes cells and may be the causative agent for cell death.

Biological Transport↗

Complement in lung disease.

Complement proteins play an integral role in both innate and adaptive immune responses of the host. Complement activation leads to the formation of bioactive molecules including the anaphylatoxins, C3a and C5a, and the lytic membrane attack complex (C5b-9). These molecules trigger a series of events that culminate in the recruitment of phagocytic cells, release of cytokines/chemokines and reactive oxygen species, enhanced expression of adhesion molecules and apoptosis at the site of inflammation. Several animal models provide evidence that this series of events forms the basis for the pathophysiology found in many lung diseases, such as asthma and acute respiratory distress syndrome. Clinical data further confirm these findings. This review briefly discusses recent data from such studies.

Animals↗

Tachyplesin activates the classic complement pathway to kill tumor cells.

Tachyplesin is a small, cationic peptide that possesses antitumor properties. However, little is known about its action mechanism. We used phage display to identify a protein that interacted with tachyplesin and isolated a sequence corresponding to the collagen-like domain of C1q, a key component in the complement pathway. Their interaction was subsequently confirmed by both ELISA and affinity precipitation. Tachyplesin seemed to activate the classic complement cascade because it triggered several downstream events, including the cleavage and deposition of C4 and C3 and the formation of C5b-9. When TSU tumor cells were treated with tachyplesin in the presence of serum, activated C4b and C3b could be detected on tumor cells by flow cytometry, Western blotting, and confocal microscopy. However, this effect was blocked when the tumor cells were treated with hyaluronidase or a large excess of hyaluronan, indicating that hyaluronan or related glycosaminoglycans were involved in this process. Treatment of cells with tachyplesin and serum increased in membrane permeability as indicated by the ability of FITC-dextran to enter the cytoplasm. Finally, the combination of tachyplesin and human serum markedly inhibited the proliferation and caused death of TSU cells, and these effects were attenuated if the serum was heat-inactivated or if hyaluronidase was added. Taken together, these observations suggest that tachyplesin binds to both hyaluronan on the cell surface and C1q in the serum and activates the classic complement cascade, which damages the integrity of the membranes of the tumor cells resulting in their death.

Amino Acid Sequence↗

A perspective on xenograft rejection and accommodation.

There is increasing interest in the potential clinical application of xenotransplantation. This interest derives in part from the need to identify a more abundant source of organs for transplantation and in part from rapid progress in understanding the cellular and molecular events that contribute to xenograft rejection. Recent areas of progress include the characterization of xenoreactive antibodies which would initiate the rejection of porcine organs transplanted into primates. These antibodies consist predominantly of IgM and their binding is characterized by high avidity and surprising uniformity. Xenoreactive antibodies recognize porcine glycoproteins of the integrin family; the determinants residing on N-linked substitutions. The predominant substitution has a terminal alpha Gal residue. Antibody binding initiates activation of complement through the classical pathway triggering a number of effector mechanisms. These mechanisms may include loss of heparan sulfate from endothelial cells mediated by C5a and xenoreactive antibody; a change in endothelial cell shape mediated by C5b-7 or the membrane-attack complex; procoagulant changes mediated by the membrane-attack complex; and neutrophil adhesion mediated by iC3b. If hyperacute rejection is prevented by the depletion of xenoreactive antibody and/or the inhibition of complement, acute vascular rejection may be seen some days later. Acute vascular rejection is characterized by prominent evidence of thrombosis and neutrophil infiltration. The cause of acute vascular rejection is unknown, but may reflect profound alterations in the function of endothelial cells lining blood vessels in the graft. In some cases, when recipients of xenografts are modified by depletion of xenoreactive antibodies, acute vascular rejection does not occur; rather, a process called accommodation allows the xenograft to survive despite the return to the circulation of xenoreactive antibodies and complement. The mechanism for accommodation is not known. New therapeutic strategies including the development of specific immunoabsorbants, identification of preferred donor animals expressing low levels of antigen and the development of transgenic donor animals expressing human complement regulatory proteins are among the strategies which may bring xenotransplantation closer to the clinical arena.

Acute Disease↗

Localization of clusterin in the epimembranous deposits of passive Heymann nephritis.

The membrane attack complex of complement (MAC) plays an important role in the mediation of proteinuria in experimental membranous nephropathy induced by Heymann antiserum. SP-40,40 is a recently described serum protein which appears to inhibit the formation of cytolytic MAC in a manner analogous to S protein/vitronectin. SP-40,40 is homologous to proteins originally isolated from rat and ram seminal fluid (sulfated glycoprotein 2 and clusterin, respectively). By current convention, these proteins are considered clusterin homologues. The objective of this study was to examine the participation of rat clusterin in passive Heymann nephritis. Using an antibody to rat clusterin as an immunofluorescent probe, clusterin deposits were demonstrated along the glomerular capillary wall in an identical pattern to rat C3 and C5b-9. Decomplementation using cobra venom factor prevented proteinuria and intraglomerular MAC formation. The epimembranous clusterin were not detected in the complement-depleted animals. The role of clusterin in the mediation of glomerular injury remains unknown, but it is probably related to in situ formation of the terminal complement cascade where it may play a regulatory role.

Animals↗

Tubulointerstitial injury induced in rats by a monoclonal antibody that inhibits function of a membrane inhibitor of complement.

The kidney widely expresses membrane-associated complement regulatory proteins (membrane inhibitors of complement). The aim of this work was to evaluate the roles of these molecules in rat kidneys in vivo. To suppress functions of rat membrane inhibitors of complement, two mAbs, 512 and 6D1, were used. 5I2 and 6D1 inhibit functions of membrane inhibitors of complement at C3 level (rat Crry/p65) and C8/9 level (rat CD59), respectively. F(ab')2 fragment of 5I2 or 6D1 was perfused in the left kidneys, and perfusate was discarded from the renal vein. After perfusion, the left kidneys were connected to systemic circulation. In rats perfused with 5I2, mouse IgG was found in glomeruli, peritubular capillaries, vascular bundles, and tubules 15 min after recirculation. Binding of C3 and C5b-9 was evident in these areas. 1 d after perfusion with 5I2, cast formation, dilatation of tubular lumen, and tubular cell degeneration were observed. At day 4 through day 7, significant mononuclear cell infiltration and proximal tubule damage were observed. These changes were completely prevented by complement depletion. Rats perfused with 6D1 showed the binding of mouse IgG in the similar areas as 5I2, but C3 or C5b-9 deposition was not observed. Rats perfused with 6D1 or vehicle only did not show any pathology in the left kidneys. These results suggest that rat Crry/p65 plays protective roles against spontaneously occurring indiscriminate attack to tubulointerstitial tissues by autologous complement and that rat Crry/p65 is one of the important factors to maintain normal integrity of the kidney in rats.

Animals↗

Protection of retroviral vector particles in human blood through complement inhibition.

The rapid inactivation of murine-derived retroviral vectors in human or nonhuman primate sera is largely attributed to the activity of complement mediated through the classical pathway. In this study, we have further investigated the relationship between the human complement cascade and retrovirus inactivation. Preincubation in normal human serum effectively inactivated LXSN retroviral vector particles, whereas the vector maintained the ability to transduce cells following incubation in sera deficient in either the C1, C2, C3, C5, C6, C8, or C9 human complement proteins. Preincubation of serum with monoclonal antibodies (mAbs) that functionally block specific complement components, including C5, C6, C8, and C9, successfully protected the LXSN vector from complement-mediated inactivation. Treatment of serum with cobra venom factor, which consumes terminal complement, also effectively protected the vector from inactivation. LXSN vector survival in serum corresponded inversely to the level of complement activity following treatment of serum with anti-C5 mAb as assessed in an erythrocyte hemolytic assay. Additionally, pretreatment of human whole blood with anti-C5 mAb effectively inhibited inactivation of the LXSN vector. Taken together, these data demonstrate that formation of the membrane attack complex (MAC, C5b-9) is required for the inactivation of the murine-based LXSN retroviral vector in human blood and that this process can be abrogated with the use of soluble complement inhibitors.

3T3 Cells↗

Antigenic crossreactivity of the alpha subunit of complement component C8 with the cysteine-rich domain shared by complement component C9 and low density lipoprotein receptor.

Complement component C9 contains two distinct cysteine-rich domains exhibiting high sequence resemblance to a domain present in the low density lipoprotein (LDL) receptor and epidermal growth factor precursor, respectively. Antibodies were raised against a peptide corresponding to the most conserved region of the LDL receptor/C9-homology segment. The antibodies were shown by immunoblotting to bind specifically to C9 but also to crossreact with C8 alpha, the alpha subunit of complement component C8. Moreover, a monoclonal antibody to a neoantigen present in polymerized C9 bound to an epitope exposed on C8 within the C5b-8 complex but buried in monomeric C8, suggesting that C8 and C9 undergo similar conformational changes during membrane-attack-complex assembly. Isolated C8 alpha-gamma exhibited the propensity to polymerize in the presence of Zn2+ and urea, as already demonstrated for C9. These data indicate that C8 alpha is closely related, both structurally and functionally, to C9.

Complement C8↗

Production and functional characterization of a soluble recombinant form of mouse CD59.

This report describes the engineering, expression, purification and functional characterization of a soluble recombinant form of murine CD59 (srMoCD59). We report the expression in Chinese hamster ovary (CHO) cells of a modified mouse CD59 cDNA that had been truncated at D-74, resulting in the loss of the glycosylphosphatidyl inositol (GPI) anchor, and containing six additional C-terminal histidines. The expressed srMoCD59 was purified from tissue culture supernatant by means of its poly-histidine tag using immobilized metal affinity chromatography. In comparison with CD59 on mouse erythrocytes, the srMoCD59 had a reduced molecular weight (18-20 000 as compared with 20-28 000 for GPI-anchored srMoCD59). The terminal complement inhibitory capacity of this soluble recombinant protein was assessed using two methods: a cobra venom factor (CVF)-triggered 'reactive-lysis' system and a C5b-7 site assay. In both assays, srMoCD59 inhibited lysis by the sera from all three species tested in the rank order mouse > rat >> human. The amount of srMoCD59 required to produce 50% inhibition of lysis in the C5b-7 site assay, using purified terminal components to develop lysis, was 10-fold less than that required in the same assay when EDTA serum was used as a source of C8 and C9, or in the CVF reactive lysis system. These data indicate that the presence of serum markedly interfered with the activity of srMoCD59 and have important implications for the use of recombinant soluble CD59 analogues as therapeutic agents in complement-mediated diseases.

Animals↗

C5-dependent enhancement of rosette formation and phagocytosis by human polymorphonuclear leukocytes.

Using purified human complement components, the participation of C5 in phagocytosis was investigated. The addition of C5 to EAC 1423 increased both rosette formation and phagocytosis of the intermediates by human polymorphonuclear leukocytes. The opsonizing activity of C5b was not affected after decay of its hemolytic activity. Both C3- and C5-dependent phagocytosis is abolished either in the presence of chelating agents or by pretreatment of the polymorphonuclear leukocytes with trypsin. The enhancing effect of C5b in phagocytosis can be reduced either by further reaction with C6 and C7 or with anti-C5 F(ab)2 fragments.

Antibodies↗

Alternative pathway complement activation induces proinflammatory activity in human proximal tubular epithelial cells.

BACKGROUND: Proximal tubular epithelial cells express a surface C3-convertase activity which induces C fixation and insertion of the C5b-9 membrane attack complex (MAC) into the cell plasma membrane. The physiopathological consequences of this phenomenon are unknown. METHODS: The effect of C fixation on the production of inflammatory mediators by human proximal tubular epithelial cells in culture was explored. RESULTS: Proximal tubular epithelial cells incubated with a sublytic amount of normal human serum as a source of C, but not with heat-inactivated human serum, showed a time-dependent calcium influx and a concomitant release of 14C-arachidonic acid (14C-AA). Eicosanoid synthesis following the arachidonic acid mobilization was studied as prostaglandin E2 release. Mg2+/EGTA, which did not prevent C activation by the C3-convertase, and p-bromodiphenacyl bromide a phospholipase A2-inhibitor, inhibited mobilization of 14C-AA. These results suggest the activation of an extracellular Ca(2+)-dependent, phospholipase A2. Complement fixation was associated with the synthesis of proinflammatory cytokines such as IL-6 and TNF-alpha. Experiments with C6-deficient sera indicated that the release of 14C-AA and the production of cytokines were dependent on the insertion of the terminal components of complement in the plasma membrane. Indeed, the reconstitution of normal haemolytic activity of C6-deficient sera with purified C6 restored also the release of 14C-AA and the production of cytokines. CONCLUSIONS: In vitro complement activation on the proximal tubular cell surface triggers the generation of proinflammatory mediators, which may potentially contribute to the pathogenesis of tubulointerstitial injury.

Arachidonic Acid↗

Penetration of C8 and C9 in the C5b-9 complex across the erythrocyte membrane into the cytoplasmic space.

We have developed a technique in which transglutaminase is used to measure the penetration of terminal complement proteins across the erythrocyte membrane into the cytoplasmic space. Penetration of a given terminal complement protein into the cytoplasmic space was assessed by labeling the protein of interest with radioactive iodine, forming the complement channel using the labeled protein, adding transglutaminase to only one side of the membrane, and allowing the enzyme to cross-link the susceptible proteins on that side of the membrane. Cross-linking was assessed by measuring the increase in molecular weight of the appropriate molecule on sodium dodecyl sulfate gels under reducing conditions. The results of these experiments indicate that C8 and C9 are rapidly cross-linked to high molecular weight from either the interior or the exterior of the membrane. In order to determine whether the cross-linking mediated by enzyme on the interior was occurring from within the ghosts and not via enzyme that had leaked into the extracellular medium, experiments were performed with dimethylcasein in the extracellular medium. In the presence of this protein, cross-linking of C8 and C9 from outside was negligible. Hence, if cross-linking occurs when transglutaminase is trapped inside the ghosts, it cannot be due to leakage of enzyme, but must be attributable to cross-linking from the inside. The results show that C9 definitely penetrated across the membrane into the intracellular space. With respect to C8, statistical evaluation indicates that C8 probably penetrated into the intracellular space.

Acyltransferases↗

Molecular mechanisms of cytotoxicity: comparison of complement and killer lymphocytes.

The membrane attack complex of complement is an amphiphilic fusion product of 5 glycoproteins, C5, C6, C7, C8 and C9. The membrane attack complex forms transmembrane channels that vary in size depending on the number of C9 molecules incorporated into the complex. The C5b-8 complex forms small channels and at high multiplicity can kill nucleated cells. At least 12 C9 molecules are required to form tubular poly C9 which evokes the ultrastructural image of the classical membrane lesion produced by complement. The membranes of erythrocytes and other blood cells contain a 70,000 dalton protein that can inhibit channel formation by the membrane attack complex. This protein is species specific and has been called homologous restriction factor. A cytotoxic protein immunochemically related to C9 was isolated from cytotoxic human large granular lymphocytes and from OKT3 activated human peripheral blood mononuclear cells. In the presence of Ca++, isolated C9 related protein (C9RP) formed circular structures that resembled poly C9. C9RP efficiently killed K562 cells, human melanoma cells, Raji cells and human large granular lymphocytes. The results suggest that the channel forming protein of cytotoxic lymphocytes and C9 of complement have a common evolutionary ancestry.

Complement C9↗

Determination of the active site of CD59 with synthetic peptides.

CD59 inhibits the formation of membrane attack complex (MAC) of human complement by binding to C8 and C9 in the nascent membrane attack complex and inhibiting C9 binding to C8 in C5b-8 and C9 polymerization. Considering five disulfide bridges of CD59, we divided the molecule into two portions and synthesized the two peptides. One represented an amino-terminal half, P1-41, consisting of residues 1-41, while another represented a carboxyl-terminal half, P42-77, consisting of residues 42-77. P1-41 inhibited the MAC formation much more strongly than P42-77, indicating that the amino-terminal half contained the active site. We further synthesized P4-18 that consisted of residues 4-18 and P19-41 that consisted of residues 19-41. The activity of P4-18 was less than that of P19-41. Surprisingly, P19-41 showed higher activity than P1-41 and was comparable to urine CD59. Residues 19-41 were further divided into two portions: P20-25 which consisted of residues 20-25 and P27-38 which consisted of residues 27-38. Although their activities were significantly less than the activity of P19-41, P27-38 showed higher activity than P20-25. Residues 27-38 were further divided into three portions: P27-32 which consisted of residues 27-32, P30-34 which consisted of residues 30-34 and P33-38 which consisted of residues 33-38. When these peptides were assayed for the activities, all of them showed significant activities, even though they needed 10-fold more concentrations than P19-41. These data suggest that the portion made up of residues 27-38 is the active site constituting the binding site to C8 and C9.

Amino Acid Sequence↗

Interaction between the labile binding sites of the fourth (C4) and fifth (C5) human complement proteins and erythrocyte cell membranes.

We have shown that the labile binding site of C3b interacts covalently with receptive surfaces. We report here an analogous study of the interaction between the labile binding sites of the closely related complement proteins, C4 and C5, with sheep erythrocyte membranes. We find that i) C4b binds covalently to cell surface components; ii) the bond between C4b and receptive molecules is hydroxylamine sensitive; iii) the alpha-polypeptide of C4b binds to receptive molecules; and iv) C5b does not interact covalently with cell surfaces.

Autoradiography↗

Endotoxin-induced lung inflammation is independent of the complement membrane attack complex.

Several products of the activated complement system are known to modulate endothelial cell function in vitro. It has been shown that the membrane attack complex (MAC) (C5b-C9) can enhance tumor necrosis factor alpha (TNF-alpha)-induced expression of P- and E-selectin and intercellular adhesion molecule type 1 in cell cultures of human umbilical vein endothelial cells. In the present study the potential role of this synegism for lung injury during endotoxin-mediated septic shock in vivo was examined using a model of C6-deficient PVG (C-) (RT1(C)) rats and the congenic PVG (C+) (RT1(C)) strain. Following administration of a high (5 mg/kg) or low (0.5 mg/kg) dose of lipopolysaccharide (LPS) (Escherichia coli O55:B5), we determined the expression of cytokines, chemokines, and adhesion molecules as well as the recruitment of leukocytes in the lung. Challenge with intraperitoneal i.p. injections of LPS resulted in a strong induction of TNF-alpha, interleukin-1alpha/beta, cytokine-induced neutrophil chemoattractant, interferon-inducible protein 10, macrophage inflammatory proteins 1alpha and 2, macrophage chemotactic protein 1, and P-selectin. However, there were no significant differences between PVG (C-) and PVG (C+) rats. Immunoperoxidase staining showed a similar increase of lung infiltration by CD11b/c(+) leukocytes in both rat strains. We therefore conclude that the described synergism between TNF-alpha and the MAC of the complement system on the induction of endothelial adhesion molecules is dispensable for inflammatory processes during endotoxin-mediated septic shock in vivo.

Animals↗

Mechanism of killing of Giardia lamblia trophozoites by complement.

Only antibodies of the IgM class support the lytic effect of complement on Giardia lamblia (GL). We sensitized GL trophozoites (SGL) at 4 degrees C with serum containing anti-GL antibodies or IgM purified from this serum, and either normal human serum (NHS), complement 2-deficient human serum (C2d-HS), or C4-deficient guinea pig serum was used as source of complement. SGL were killed by NHS (86%) and by the deficient sera (50 and 40%, respectively), suggesting activation of the alternative pathway. However, the reaction was inhibited by Mg-EGTA. These observations led to studies of the role of C1. The lytic effect of NHS and C2d-HS on SGL was abolished by immunochemically depleting C1 from these sera, and reconstituted by adding purified C1q plus C1r and C1s. Factor B-depleted C2d-HS also lost its capacity to mediate killing, but reconstitution with factor B led to a dose-dependent increase in the killing of SGL. We next investigated the participation of the membrane attack complex in this system. SGL carrying C5b to C7 were lysed when incubated with C8 alone (56%); the addition of C9 further increased killing (98%), while C9 in the absence of C8 had no effect. We concluded that although activation of the classical pathway produces lysis of SGL, lysis may also proceed through a unique pathway of complement activation that requires C1 and factor B, but is independent of C4 and C2. Lysis of SGL can be accomplished by C5b to C8 in the absence of C9.

Animals↗