Search PubMedSearch

SEARCH · Search PubMed

Results for “Complement Pathway, Alternative”

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 271 records · Page 15Linked to original sources

Activation and binding of opsonic fragments of C3 on encapsulated Cryptococcus neoformans by using an alternative complement pathway reconstituted from six isolated proteins.

Encapsulated Cryptococcus neoformans yeast cells are potent activators of the complement system. We examined the interaction of the yeast cells with an alternative complement pathway reconstituted from isolated factor D, factor B, factor H, factor I, C3, and properdin. Incubation of encapsulated cryptococci with the reconstituted pathway led to activation and binding of C3 fragments to the yeast cells that was quantitatively and qualitatively identical to that observed with normal human serum. Incubation with either normal serum or a mixture of isolated proteins led to binding of 4 x 10(7) to 5 x 10(7) C3 molecules to the yeast cells. The kinetics for activation and binding of C3 were identical, with maximum binding observed after a 20-min incubation. Immunoglobulin G was not needed for optimal activation kinetics. C3 fragments eluted from the yeast cells by treatment with hydroxylamine and subsequent analysis by sodium dodecyl sulfate-polyacrylamide gel electrophoresis demonstrated the presence primarily of iC3b on yeast cells incubated with either normal serum or the reconstituted pathway. Ultrastructural examination of the opsonized yeast cells showed that the cryptococcal capsule was the site for binding of C3 activated from normal serum or the reconstituted pathway, with a dense accumulation of C3 at the periphery of the capsule. Thus, incubation of encapsulated cryptococci in the reconstituted pathway led to deposition of opsonic complement fragments at a site that was appropriate for interaction with phagocyte receptors. Cryptococci opsonized with the reconstituted pathway showed a markedly enhanced interaction with cultured human monocytes compared with unopsonized yeast cells, indicating that the alternative pathway alone is opsonic for yeast cells. However, the results indicate that additional serum factors are needed for optimal opsonization of yeast cells because a 35% reduction in the number of cryptococci bound to macrophages was observed with cryptococci opsonized with the reconstituted pathway compared with that observed when yeast cells were opsonized with normal serum.

Complement Activation

Host-specific evasion of the alternative complement pathway by schistosomes correlates with the presence of a phospholipase C-sensitive surface molecule resembling human decay accelerating factor.

Schistosoma mansoni parasites recovered from the blood stream were found to be nonactivators of the alternative complement pathway (ACP) when exposed to sera of homologous but not heterologous host species. Schistosomes could be converted into activators of the homologous ACP by treatment with phospholipase C. Antibodies to either human or guinea pig decay accelerating factor (DAF), a 70-kDa glycosylphosphatidylinositol anchored membrane glycoprotein which controls ACP activation on the mammalian cell plasma membrane, bound to the surface of immature schistosomes and immunoprecipitated a molecule of similar molecular mass from detergent extracts of surface iodinated parasites. Phospholipase C treatment drastically reduced the reactivity of the worms with the anti-DAF antibodies. These data suggest that schistosomes evade the ACP by inserting functional host DAF into their surfaces, possibly through adsorption of the molecule's lipophilic diacyglycerol membrane anchor moiety into the outer lipid bilayer of the parasite.

Adsorption

Activation of the alternative complement pathway by natural antibody to glycolipids in guinea-pig serum.

Liposomes containing paragloboside (PG) on their membrane were readily lysed by C4-deficient guinea-pig serum (C4D-GPS) through activation of the alternative complement pathway (ACP). Therefore we examined the reactivity of several types of guinea-pig serum (GPS) on PG-liposomes and determined that all GPS except that from specific pathogen-free (SPF) Hartley guinea-pigs had lytic capacity in Mg-EGTA-GVB (gelatin veronal-buffered saline containing Mg++ and ethyleneglycol-bis(beta-aminoethyl ether)N,N'-tetraacetate). This lytic capacity of GPS corresponded with the amount of natural antibody to PG in those sera. Although GPS of SPF guinea-pigs (SPF-GPS) could not lyse PG-liposomes in Mg-EGTA-GVB, it could lyse the liposomes when heated C4D-GPS or Hartley GPS was added. Natural antibody to PG in the heated sera was regarded to have sensitized PG-liposomes to lysis by SPF-GPS via ACP activation. Since the antibody to PG-liposomes was removed by lacto-N-nor-hexaosylceramide which has the same chemical structure in the terminal oligosaccharide, the antibody to PG in GPS was suggested to have a specificity to the terminal structure of oligosaccharide shared by lacto-N-nor-hexaosylceramide. Furthermore, the IgM fraction, which had been prepared by gel filtration of heated C4D-GPS on a Sephadex G200 column, could also sensitize PG-liposomes to lytic reaction of SPF-GPS in Mg-EGTA-GVB. This sensitizing capacity of heated C4D-GPS was suppressed by absorption of the serum or its IgM fraction with anti-guinea-pig mu-chain antibody coupled to Sepharose. Therefore, it was concluded that the lysis of PG-liposomes by GPS in Mg-EGTA-GVB was a result of ACP activation mediated by natural antibodies to PG of the IgM type which are present in usual GPS. This conclusion indicated that natural antibodies of the IgM type might play a role with ACP in host defence, especially in C4-deficient guinea-pigs where the classical complement pathway is impaired.

Animals

Production of nephritic factor of the alternative complement pathway by Epstein Barr virus-transformed B cell lines derived from a patient with membranoproliferative glomerulonephritis.

Nephritic factor of the alternative complement pathway (C3NeF) is an IgG autoantibody which binds to and stabilizes the C3 convertase (C3bBb) enzyme, and which has been detected mainly in sera from patients with membranoproliferative glomerulonephritis (MPGN) and partial lipodystrophy. To study the production of C3NeF, mononuclear cells isolated from the peripheral blood of patients with MPGN and C3NeF activity in their sera were infected with Epstein Barr virus (EBV) to establish active B lymphocyte cell lines. By using a modified C3NeF screening assay, we detected C3NeF activity in the supernatant of a B cell line derived from a patient with MPGN Type II, but in none of the supernatants of B cell lines derived from normal individuals. C3NeF-positive supernatants were investigated for their ability to conserve classical or alternative pathway C3 convertase activity by using EAC3bBb and EAC4b2a stabilization assays. C3NeF-positive supernatants stabilized the C3bBb convertase activity, but not the C4b2a convertase activity. Studies of the supernatants, using anti-human IgG affinity columns, showed that the C3NeF activity was in the IgG fraction; furthermore, C3NeF antibody agglutinated sheep erythrocytes coated with C3bBb, but not with C3b alone. On gel electrophoresis, both heavy and light chains of the C3NeF were comparable in size to that of normal human IgG molecules. We conclude that C3NeF, produced in vitro by EBV-transformed B cell lines derived from a patient with MPGN Type II, is functionally identical to the conventional C3NeF in serum. In vitro preparation of homogeneous NeF(s) should greatly facilitate the studies of the role of these autoantibodies in complement dysmetabolism.

B-Lymphocytes

Heterotoxicity of human serum. IV. Role of the alternative complement pathway and natural antibody in the lethal toxicity of human serum for mice.

The toxic and often lethal reaction caused by intravascular injection of fresh human serum (FHS) was studied in mice. Decomplementation experiments indicated that the alternative complement pathway plays an essential role in the production of 'serum shock'. In vivo activation of human factor B and C3, following the administration of FHS into mice, was detected by immunoelectrophoresis. Absorption experiments suggested that natural antibodies were not required for toxicity, although they may amplify the lethal potential of normal sera by feedback mechanisms of C activation. Injections of FHS caused intravascular hemolysis of mouse erythrocytes and platelet aggregation in mice. The relationship of these observations to the mechanism(s) underlying lethality will be discussed in the following article.

Animals

Activation of the alternative complement pathway by isolated human glomerular basement membrane.

The capacity of isolated human glomerular basement membrane (GBM) to initiate surface activation of the human alternative complement pathway was defined by the deposition of C3b under circumstances in which the classical complement pathway was inoperative. The deposition of C3b from normal or C2-deficient serum was time- and magnesium-dependent, implying a role for the alternative pathway. Normal human serum rendered deficient in D did not sustain C3b deposition until its reconstitution with D, indicating an absolute requirement for a protein unique to the alternative pathway and essential to the cleavage activation of the C3 amplification convertase of that pathway. The capacity of the excess control proteins H and I to prevent C3b deposition onto GBM incubated in C2-deficient serum provided further evidence for the direct activation of the alternative pathway in this system. The use of radiolabeled monoclonal antibody to localize the deposited C3b afforded specificity and quantitation of about 100 ng of C3b/mg of GBM. Immunohistochemical analysis with a monoclonal antibody to detect C3b demonstrated its deposition to be confined to the epithelial surface of the GBM.

Antibodies, Monoclonal

Kinetic assessment of alternative complement pathway activity in a hemolytic system. II. Influence of antibody on alternative pathway activation.

By using a kinetic assay, we have examined the role of antibody in the lysis of rabbit erythrocytes (RaRBC) through the alternative complement (C) pathway. Sera from some hypogammaglobulinemic (Hgamma) humans and all agammaglobulinemic chickens tested had subnormal activity in the assay. Heated normal human or chicken sera, but not heated Hgamma sera, restored activity to deficient Hgamma serum and initiated hemolysis in the presence of rabbit serum as C source. Absorption of heated normal human serum with RaRBC, but not with sheep erythrocytes or zymosan, removed its ability to reconstitute deficient Hgamma serum. Normal hemolytic activity could be resotred to Hgamma serum with human IgM, IgG, or colostral IgA, with goat anti-RaRBC IgG, or with an eluate from serum-sensitized RaRBC, but not with myeloma IgA. Restoration of hemolytic activity to Hgamma serum could be achieved in a dose-dependent fashion with the F(ab')2 fragment of IgG. These results suggest that antibody exerts a significant rate-limiting effect on alternative pathway activity in the RaRBC lytic system. This raises the possibility that antibody may be required for efficient alternative pathway activity in vivo and that the pyogenic infections that occur in Hgamma individuals are due to inefficient activation and fixation of C3 through either the classical or alternative pathway.

Agammaglobulinemia

Evasion of the alternative complement pathway by metacyclic trypomastigotes of Trypanosoma cruzi: dependence on the developmentally regulated synthesis of surface protein and N-linked carbohydrate.

Epimastigotes (EPI) of Trypanosoma cruzi are highly sensitive to lysis in fresh normal human serum by the alternative complement pathway (ACP). In contrast, metacyclic trypomastigotes (CMT) derived from EPI in stationary culture fail to activate the ACP and are thus resistant to serum-mediated lysis. To investigate the nature of the parasitic surface molecules which enable infective metacyclic trypomastigotes to evade the ACP, CMT were treated with a variety of different proteolytic and glycosidic enzymes, and their sensitivity to ACP-dependent lysis was tested. Pretreatment with pronase was found to cause a near complete reversal in the resistance of CMT to serum lysis, whereas trypsin or chymotrypsin induced smaller increases in complement sensitivity. Similarly, pretreatment with N-glycanase or neuraminidase also partially abrogated the resistance of CMT to ACP-dependent lysis. The effect of these enzymes on susceptibility to complement-mediated lysis was paralleled in increased C3 and C9 deposition on the organism. In addition, electrophoretic analysis of parasite-bound C3 indicated that the hemolytically inactive fragment, iC3b, was the major form of the molecule on CMT, while the hemolytically active fragment, C3b, predominated on pronase-treated CMT. Furthermore, when C3 was deposited on the parasite surface by means of purified ACP components, 80% of C3b on pronase-pretreated CMT but only 14% of the C3b on CMT bound the amplification protein factor B with high affinity, a prerequisite for efficient ACP activation. When cultured at 37 degrees C after pronase treatment, CMT gradually regained their resistance to ACP-mediated lysis. This process was blocked if puromycin, cycloheximide, or tunicamycin were included in the culture medium. The above findings suggest that evasion of the ACP by CMT is dependent on the developmentally regulated synthesis of protein as well as N-linked carbohydrate chains. A stage-specific 90,000 to 115,000 m.w. glycoprotein doublet present on the surface of CMT was shown to be uniquely sensitive to pronase digestion. Thus, this complex, which is also recognized by a CMT-specific monoclonal antibody, may be the glycoprotein component responsible for control of ACP activation

Animals

Direct evidence that decreased serum opsonization of Streptococcus pneumoniae via the alternative complement pathway in sickle cell disease is related to antibody deficiency.

Two approaches were used to demonstrate that reduction in serum opsonization of Streptococcus pneumoniae via the alternative complement pathway in children with sickle cell disease is related to a deficiency of antibodies to pneumococcal capsular polysaccharide. First, opsonization of S. pneumoniae mediated by the alternative pathway in patients' sera was restored to normal by addition of the purified IgG or IgM fraction of goat antiserum to capsular polysaccharide of the homologous serotype. Secondly, IgG antibody titers to capsular polysaccharide in patients' sera correlated significantly with alternative pathway-mediated opsonization; the correlation between titers of IgM anticapsular antibodies and opsonization approached statistical significance. The sum of the IgG and IgM anticapsular antibody titers correlated most significantly with opsonization. Our results suggest that reduction in alternative pathway-mediated opsonization in sera from children with sickle cell disease is related to low levels of both IgG and IgM anticapsular antibodies.

Anemia, Sickle Cell

Serum bactericidal action and activation of the classic and alternate complement pathways by Neisseria gonorrhoeae.

In order to more fully understand the host defense mechanisms against gonococcal infections, we decided to define the role of the classic and alternate complement pathways in gonococcal BA. Sera and infecting isolates were collected from several patients with genital and disseminated gonococcal infections. Sera from two never-infected subjects and a hypogammaglobulinemic patient were also collected. Sera from patients with genital gonorrhea and never-infected controls demonstrated marked BA for gonococci after 30 min incubation. Chelation of these sera with MgEGTA delayed the expression of BA. Consumption of C3, but not C4, was observed in chelated samples. BA could not be demonstrated in any of the sera from DGI patients or the patient with hypogammaglobulinemia. Aliquots of fresh and chelated hypogammaglobulinemic serum to which IgM or IgG antigonococcal antibodies were added showed marked BA by 30 and 60 min, respectively. Absorption of chelated serum with a serum-sensitive isolate eliminated the previously observed delayed BA. The findings suggest that gonococcal serum BA is primarily associated with activation of the classic complement pathway. Activation of the alternate pathway also occurs; however, its expression is delayed and appears to be antibody-dependent.

Adult

Preferential inactivation of the C5 convertase of the alternative complement pathway by factor I and membrane cofactor protein (MCP).

Human C3b bound to the ghost of sheep erythrocytes (E*) via activation of the alternative complement pathway (E*AC3b) consists of four major constituents on SDS-PAGE of 350, 260, 210 and 180 kDa. 350 kDa C3b is a dimeric form of C3b in which the alpha' chain of one C3b binds covalently to that of the other C3b. This complex is presumed to serve as a core for the alternative pathway C5 convertase. The other C3b populations are monomers complexed with membrane proteins or sugars. Using E*AC3b (C3b labeled) as a substrate, we have investigated functional properties of membrane cofactor protein (MCP), which is an integral membrane protein with C3b-binding and factor I-dependent cofactor activities. In conjunction with factor I, MCP was found to degrade the protein-bound C3b preferentially including the 350 kDa dimer. There was a similar but lesser tendency of this selective cleavage of C3b-dimer by CR1 but not by factor H or C4bp. In contrast to CR1 and factor H, detergent solubilization of EAC3b was required for MCP to fully express its cofactor activity for this selective degradation of C3b. We next separated the C3b dimer from the monomers and assessed their ability to assemble the alternative C5 convertase. The C3b dimer but not the monomers expressed C5 convertase activity following the addition of factors B and D, C5 and Ni2+. Kinetic analysis of the degradation of the C3b dimer by MCP and factor I suggested that only one C3b was efficiently converted to C3bi and this occurred concomitant with a decrease in C5 convertase activity. These results suggest that MCP has the ability to more efficiently interact with protein-bound C3b and that this may relate as well to its preferential ability to irreversibly inactivate the C5 convertase.

Antigens, CD

Alternative complement pathway activation by CD4+ T cells of HIV infected individuals: a possible role in AIDS pathogenesis.

The mechanisms by which CD4+ T cells are eliminated during HIV infection are poorly understood. We have previously shown that HIV infected cell lines activate and fix C3 via the alternative complement pathway (ACP). In the present study we examined the ability of blood lymphocytes from 40 HIV+ individuals to fix C3. A large fraction of the CD4+ T cells reacted with anti-gp120 antibodies. These cells also carried C3 fragments in vivo and could further fix C3 if exposed to human serum in vitro. C3 activation occurred via the ACP. In some cases exposure of the lymphocytes to human serum under conditions allowing ACP activation resulted in partial elimination of CD4+ T cells. The results suggest that complement activation and fixation by CD4+ T cells opsonized with HIV particles or gp120 may contribute to their selective destruction.

Acquired Immunodeficiency Syndrome

Activation of the alternative complement pathway of guinea-gip by liposomes incorporated with trinitrophenylated phosphatidylethanolamine.

By incorporation of trinitrophenylamino-caproyldipalmitoylphosphatidylethanolamine (TNP-Cap-DPPE) into liposomes composed of an equimolecular mixture of dimyristoylphosphatidylcholine (DMPC) and cholesterol (TNP-Cap-liposomes), liposomes became readily lysed by guinea-pig serum (GPS) in Mg++-EGTA-GVB (gelatin veronal buffered saline containing 2 mM MgCl2 and 10 mM ethyleneglycol-bis (beta-amino-ethyl ether)N-N'-tetraacetate) as well as in GVB++ (gelatin veronal buffered saline containing 0.15 mM CaCl2 and 0.5 mM MgCl2). Since the classical complement pathway (CCP) does not work in Mg++-EGTA-GVB, TNP-Cap-liposome lysis by GPS in Mg++-EGTA-GVB was thought to be mediated by the activation of the alternative complement pathway (ACP). This conclusion was supported by observations that heating of GPS at 50 degrees impaired its lytic activity while C4-deficient GPS was capable of lytic activity, no lysis occurred in EDTA, and there was noted consumption of complement in GPS treated with TNP-Cap-liposomes at 30 degrees. For TNP-Cap-liposome lysis by GPS in Mg++-EGTA-GVB, the epitope density of the TNP hapten was required to be 5% or more of the DMPC. Changing the acyl group of the phosphatidylcholine (PC) significantly influenced the ACP activating capacity of TNP-Cap-liposome. Dipalmitoyl-PC, DMPC and distearoyl-PC facilitated the ACP activating capacity of the TNP-Cap-liposome, while dilauroyl-PC, egg-PC and dioleoyl-PC did not. Furthermore, the length of spacer between TNP and dipalmitoylphosphatidylethanolamine (DPPE) also influenced the ACP activating capacity and maximum activation was noted when the spacer was aminocaproyl. These physicochemical characteristics which increase the ACP activating capacity coincided with those reported to increase the immunogenicity of hapten-sensitized liposomes.

Animals

Requirements of immunoglobulin and the classical and alternative complement pathways for phagocytosis and intracellular killing of multiple strains of Gram-negative aerobic bacilli.

The requirements for immunoglobulin and the alternative and classical complement pathways for phagocytosis and intracellular killing of clinical isolates of Escherichia coli, Proteus mirabilis, Klebsiella pneumoniae, and Serratia marcescens by normal human polymorphonuclear leukocytes were determined. Human sera deficient in immunoglobulin or classical pathway activity, or both, were compared for their ability to promote phagocytosis os and killing of 13 bacterial strains by the polymorphonuclear leukocytes. Seven of the thirteen microorganisms required immunoglobulin for phagocytosis and killing and utilized only the classical complement pathway. Three required immunoglobulin and utilized both the classical and alternative pathways. The other three microorganisms required minimal immunoglobulin and utilized the alternative or classical pathway, or both. None of the microorganisms utilized the alternative pathway in immunoglobulin-deficient sera or could be forced to utilize this pathway in sera deficient in both immunoglobulin and classical pathway activity. These results demonstrated a heterogeneity in the requirements for immunoglobulin and the alternative and classical complement pathways for phagocytosis and intracellular killing by polymorphonuclear leukocytes among various genera of gram-negative aerobic bacilli, as well as among strains of the same species. In addition, the results suggested that a mechanism of classical pathway activation dependent upon minimal immunoglobulin participates in phagocytosis and intracellular killing of certain gram-negative aerobic bacilli.

Complement Activation

Activation of the alternative complement pathway with rabbit erythrocytes by circumvention of the regulatory action of endogenous control proteins.

Cleavage of C3 by the alternative complement pathway occurs in at least two distinct phases: continuous low grade generation of C3b by the interaction of native C3, B, D, and P, and subsequent amplified cleavage of C3 by the interaction of C3b, B, D, and P which forms the amplification convertase, P,C3b,Bb. Transition to C3b-dependent amplification is necessary to achieve substantial C3 cleavage and is normally limited by the combined action of C3b inactivator (C3bINA) and betalH. An activator of the alternative pathway, such as rabbit erythrocytes (E(r)), provides sites that protect bound C3b and P,C3b,Bb from the action of these regulatory proteins and permits C3b deposited by the low grade fluid phase reaction to assemble a membrane-associated amplification convertase which can deposit additional protected C3b. Under conditions in which the control proteins, C3bINA and beta1H, almost completely inactivated C3b bound to sheep erythrocytes (E(s)), which does not activate the alternative pathway, the function of C3b bound to E(r) was diminished by less than one-fifth. Further, the P- stabilized amplification convertase on E(r) was 10-fold less sensitive to beta1H-mediated decay-dissociation than the convertase on E(s). The addition of E(r) to a regulated mixture of purified C3, B, D, P, C3bINA, and beta1H resulted in amplified inactivation of C3 and B by formation of the amplification convertase on E(r) as indicated by its lysis with subsequent exposure to C3-C9. In contrast, E(s) did not advance the low grade fluid phase inactivation of C3 and B to amplified inactivation and the cell was not converted to an intermediate susceptible to lysis by C3- C9. Since E(r) and E(s) did not differ in their inefficient fixation of C3b generated during an unregulated fluid phase reaction, the activating capacity of E(r) must reside in its protection of bound C3b and P, C3b,Bb from the regulatory proteins rather than in enhanced capacity to bind C3b from the fluid phase. When the reaction is limited to low grade fluid phase turnover, introduction of E(r) but not E(s) results in a 100-fold increase in the deposition of C3b, indicating that surface-dependent activation of the alternative pathway is characterized by efficient deposition of C3b on the initiating surface. Thus, the activating surfaces advance the interaction of the alternative pathway proteins to the amplification phase because of the selective inability of the regulatory proteins to deal with their substrates when deposited on these surfaces and results in a specificity that is not necessarily dependent on adaptive immunity.

Animals

Activation of the alternative complement pathway in normal human serum by Loa loa and Brugia malayi infective stage larvae.

Infective stage larvae (L3) of Loa loa and Brugia malayi upon in vitro incubation with normal human serum activated the alternative complement pathway. C3 conversion products were detected on larval cuticles by eosinophil adherence and by immunofluorescence with C3c antiserum. No evidence for cuticle binding of IgG, IgA, IgM, Clq, or C4 was found by immunofluorescence. L3-induced C3 activation was inhibited by 10 mM EDTA but unaffected by 10 mM Mg++-EGTA. Human sera deficient in C2, C4, or C6 incubated with L3 resulted in C3 activation. However, sera treated with zymosan or heated for 1 h, 56 degrees C were unreactive with L3. Immunoelectrophoresis of fresh serum exposed to L3 for 1 h at 37 degrees C showed C3 cleavage products. The results indicate that these nematode L3 activate the alternative complement cascade via cuticular surface components. Larval viability was unaffected by complement activation or by adherence of eosinophils.

Animals

Human natural anti-Gal IgG regulates alternative complement pathway activation on bacterial surfaces.

One percent of circulating IgG in humans recognizes galactose alpha 1,3 galactose residues (anti-Gal) and is synthesized in response to stimulation by enteric bacteria. In this study, we found that the prevalence of binding of anti-Gal to blood isolates is significantly higher than its binding to normal stool isolates. When anti-Gal bound onto the lipopolysaccharide of a representative blood isolate, Serratia marcescens #21, it blocked its alternative complement pathway (ACP) lysis and made the organism serum resistant. In contrast, when anti-Gal bound to the capsular polysaccharide of a serum sensitive Serratia, #7, it increased ACP killing of this strain. The mechanism of blockade of ACP lysis by anti-Gal did not involve a decrease in the number of C3 molecules deposited onto Serratia #21 or an inhibition of the binding of C3b to its LPS, nor did it change the iC3b and C3d degradation products of bound C3b or prevent membrane attack complex formation on this organism. Our findings suggest that the effect of anti-Gal on immune lysis is dependent on the bacterial outer membrane structure to which it binds. We postulate that anti-Gal may play a role in the survival of selected Enterobacteriacae in Gram-negative sepsis by blocking ACP-mediated lysis of such bacteria by the nonimmune host, and that this effect depends on where anti-Gal finds its epitope on the bacterial outer membrane.

Complement C3