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Neutrophils express a receptor for iC3b, C3dg, and C3d that is distinct from CR1, CR2, and CR3.

In the present study we examined human neutrophils for the expression of a receptor capable of binding C3dg and defined the relationship of this receptor to those that have been previously described, namely CR1, CR2, and CR3. C3dg was isolated from serum depleted of plasminogen, supplemented with 20 mM Mg++, and incubated at 37 degrees C for 6 to 8 days. The purified protein was homogeneous when analyzed by polyacrylamide gel electrophoresis and exhibited an apparent m.w. of 41,000. C3dg was polymerized by treatment with dimethyl suberimidate, and the dimer was isolated by gel filtration. Binding of both monomeric and dimeric 125I-labeled C3dg to neutrophils was saturable, and the latter ligand bound to an average of 12,400 sites/cell among nine normal individuals. At 4 degrees C, bound monomeric C3dg dissociated from neutrophils with an average t1/2 of 30 min, whereas dimeric C3dg dissociated with a t1/2 in excess of 120 min. Specific binding of multimeric C3dg was cation independent and was competitively inhibited by molar concentrations of iC3b and C3d that were equivalent to the inhibitory concentrations of unlabeled C3dg; C3b was less able to compete with C3dg for binding to these sites. The capacity of this neutrophil receptor to bind iC3b, C3dg, and C3d suggested its possible identity as CR2 or CR3. However, no specific binding to neutrophils of 125I-labeled HB-5 monoclonal anti-CR2 was detected. Furthermore, uptake of 125I-labeled C3dg was not inhibited by saturating concentrations of rabbit anti-CR1, anti-Mac-1, or OKM10. Thus, a receptor resides on neutrophils that binds the C3d region of iC3b and C3dg and is distinct from CR1, CR2, and CR3.

Animals↗

Identification of distinct C3b and C4b recognition sites in the human C3b/C4b receptor (CR1, CD35) by deletion mutagenesis.

Complementary DNA clones encoding the NH2-terminal region of human CR1 have been isolated and sequenced. The deduced complete amino acid sequence of the F allotype of human CR1 contains 2,039 residues, including a 41-residue signal peptide, an extracellular domain of 1,930 residues, a 25-amino acid transmembrane domain, and a 43-amino acid cytoplasmic region. The extracellular domain is composed exclusively of 30 short consensus repeats (SCRs), characteristic of the family of C3/C4-binding proteins. The 28 NH2-terminal SCRs are organized as four long homologous repeats (LHRs) of seven SCRs each. The newly sequenced LHR, LHR-A, is 61% identical to LHR-B in the NH2-terminal two SCRs and greater than 99% identical in the COOH-terminal five SCRs. Eight cDNA clones were spliced to form a single construct, piABCD, that contained the entire CR1 coding sequence downstream of a cytomegalovirus promoter. COS cells transfected with piABCD transiently expressed recombinant CR1 that comigrated with the F allotype of erythrocyte CR1 on SDS-PAGE and that mediated rosette formation with sheep erythrocytes bearing C4b and C3b. Recombinant CR1 also had factor I-cofactor activity for cleavage of C3(ma). Analyses of six deletion mutants expressed in COS cells indicated that the NH2-terminal two SCRs of LHR-A contained a site determining C4 specificity and the NH2-terminal two SCRs of LHR-B and -C each had a site determining C3 specificity. The presence of these three distinct sites in CR1 may enable the receptor to interact multivalently with C4b/C3b and C3b/C3b complexes generated during activation of the classical and alternative pathways.

Amino Acid Sequence↗

Salicylate-enhanced exposure of Klebsiella pneumoniae subcapsular components.

The capsular polysaccharide (CPS) of Klebsiella pneumoniae is an important virulence factor. Salicylate, which inhibits CPS production, was used to expose subcapsular antigens and components that may play an important role in host defense. Salicylate treatment greatly increased phagocytosis of five O1 serotypes by human polymorphonuclear leukocytes with normal rabbit serum and rabbit antisera against purified O1 lipopolysaccharide (O1LPS) as opsonins (p < 0.01 or < 0.05). Similar results were obtained with rabbit antiserum against a non-encapsulated isogenic strain. To further determine how salicylate increases susceptibility to phagocytosis, the binding of monoclonal antibodies against O1LPS or the LPS core and the binding of complement component C3b were measured by ELISA. The data indicate that salicylate reduced the barrier of CPS in serotypes O1:K1, O1:K10, and O1:K16 and unmasked subcapsular antigenic components in serotypes O1:K2 and O1:K66 so that bound opsonins could react with receptors on phagocytes. Serum bactericidal assays supported this conclusion. Therefore, decapsulating agents such as salicylate accentuate phagocytosis of K. pneumoniae by making subcapsular antigens and components accessible to immune and nonimmune host defences and vaccination with subcapsular antigens may exhibit optimal protection against lethal infection when combined with salicylate therapy.

Animals↗

The use of conglutinin in a quantitative assay for the presence of cell-bound C3bi and evidence that a single molecule of C3bi is capable of binding conglutinin.

We have developed a quantitative assay for cell surface C3bi using 125I-labeled conglutinin. Conglutinin was purified to homogeneity from bovine serum and radiolabeled with 125I Bolton Hunter reagent. Conditions of time, temperature, ionic strength, and cell concentration that optimized the binding of conglutinin to erythrocytes bearing C3bi were then determined. The interaction between conglutinin and C3bi under these conditions was highly specific, since EAC4b3b, EAC4b3d, EAC4b3b-beta IH, and EAC4b treated with serum did not bind radioconglutinin significance better with EA or EAC4b. Using this assay, was examined the kinetics of inactivation of both human and guinea pig C3b bound to erythrocytes and showed that, for both, maximum conglutinin binding occurred after EAC4b3b had been incubated with a source of beta 1H and C3INA for 10 to 20 min at 37 degrees C.l We showed a linear relationship between the number of molecules of C3bi per erythrocyte and the amount of conglutinin bound for both guinea pig and human C3bi. The affinity of conglutinin for cell-bound C3bi was shown to be independent of C3bi density on the erythrocyte surface, and the Kd for conglutinin binding to erythrocytes bearing human C3bi was determined to be 1.3 X 10(-8) M. The number of conglutinin binding sites per erythrocyte as calculated from Scatchard plots was equal to the number of C3bi molecules on the cell surface as determined by direct assay using 125I-labeled C3. Moreover, for both human and guinea pig C3bi, the plot of log (cell surface C3bi) vs log (conglutinin bound) had a slope of 1. These findings imply that a single molecule of C3bi is capable of binding a molecule of conglutinin under the conditions of our assay.

Animals↗

The hemopoietic progenitor 32DCl3(G) cells synthesize C3 molecules and acquire C3b acceptor sites upon differentiation or neoplastic transformation.

32DCl3(G) cells are a diploid, nontumorigenic, IL-3-dependent hemopoietic progenitor cell line, which undergoes terminal differentiation into neutrophilic granulocytes when cultured in presence of G-CSF. The infection with BALB-Moloney murine sarcoma virus, containing a v-HA-ras oncogene, renders this cell line IL-3 independent and continuously growing in the presence of G-CSF, nontumorigenic and with an apparent block at the level of promyelocyte/myelocyte (32D-Ha-ras). After infection with Abelson murine leukemia virus containing a v-abl oncogene, the cell line originates (32D-abl) that is also IL-3 independent but is tumorigenic and unable to differentiate in the presence of G-CSF. This cellular model allowed us to study the relationship between distinct steps of cell differentiation, neoplastic transformation, and C3 synthesis, activation, and characteristics of binding. We demonstrated that C3 synthesis, release, and cleavage are properties already present in the progenitor 32DCl3(G) cells. The more differentiated 32D-Ha-ras cells acquired C3 acceptor sites, apparently completely saturated by the constitutively released molecules. The transformation with Abelson murine leukemia virus, although it did not affect all these properties, let the cells bind considerable amounts of C3-related fragments activated in normal murine serum through the alternative pathway. This last event was a result of the acquisition of PMSF-sensitive serine proteases associated with the plasma membrane.

Animals↗

Binding of soluble immune complexes to Raji lymphocytes. Role of receptors for complement components, C1q and C3-C3b.

We have found that, although the binding of particulate antigen-antibody complement complexes such as EAC to lymphoblastoid Raji cells is mediated largely through receptors for C3b, the binding of complement-containing soluble complexes such as those prepared with aggregated human IgG (AHG) occurs also via receptors for C1q. Evidence supporting this conclusion included: (1) Binding of AHG to Raji cells takes place after incubation in EDTA serum; (2) Binding of AHG does not occur in C1q deficient EDTA serum but does take place after addition of C1q; (3) The extent of binding of AHG in EDTA serum is a function of the amount of C1q present; (4) Raji cells can bind up to 5-4 times 10(5) molecules of 125I C1q per cell which can be blocked by unlabelled C1q; (5) AHG pre-incubated with C can bind to a T-cell line MOLT, which lacks receptors for C3b but possesses receptors for C1q to the same extent as Raji cells; (6) Immunoassays for immune complexes in human sera yield similar results whether Raji cells, MOLT cells or C1q precipitation is used for assay; (7) EAC-Raji cell rosettes can be inhibited with inulin-treated, C1q deficient serum containing C3b or C3d whereas binding of AHG or immune complexes in patient samples to Raji or MOLT cells is not inhibited by this reagent. We conclude that receptors for C1q on certain B and T lymphocytes may play an important role in physiologic functions of lymphocytes depending on binding of soluble immune complexes to their surfaces.

Antigen-Antibody Complex↗

Expression and purification of functional, recombinant Trypanosoma cruzi complement regulatory protein.

The complement regulatory protein (CRP) of Trypanosoma cruzi is a developmentally regulated glycosylphosphatidylinositol (GPI)-anchored membrane protein that protects the parasite from complement-mediated killing, and is an important virulence determinant of the microorganism. CRP binds human complement components C3b and C4b to restrict activation of the complement cascade. Here, we report production of functional, recombinant T. cruzi CRP in mammalian cells and a one-step purification of the recombinant protein. Exchange of the crp DNA sequence encoding the carboxy-terminal GPI signal sequence with the corresponding sequence of decay accelerating factor (DAF) was necessary for recognition, cleavage, and addition of GPI in mammalian cells. CRP production was assessed in two mammalian cell lines with crp-daf gene expression driven by three different transcription control regions: Rous sarcoma virus long terminal repeat, cytomegalovirus (CMV) immediate early gene, and chicken beta-actin promoter/CMV enhancer. We present evidence that CRP produced in transfected Chinese hamster Ovary (CHO) cells was functional and protected the cells from complement-mediated lysis. To facilitate purification of the recombinant protein, a hexahistidyl tag was incorporated at 3(') end of the cDNA upstream of the GPI anchor addition sequence. An additional histidine fusion construct was made that allowed for secretion and recovery of recombinant protein from culture supernatant fluid. Both membrane and secreted forms of the protein were purified in one step by nickel nitrilotriacetic acid. The production and purification of functionally active CRP in a non-infectious expression system will allow for structure and function studies aimed at identifying the active site(s) of this protein.

Animals↗

Cloning of decay-accelerating factor suggests novel use of splicing to generate two proteins.

Decay-accelerating factor (DAF), a glycoprotein that is anchored to the cell membrane by phosphatidylinositol, binds activated complement fragments C3b and C4b, thereby inhibiting amplification of the complement cascade on host cell membranes. Here, we report the molecular cloning of human DAF from HeLa cells. Analysis of DAF complementary DNAs revealed two classes of DAF messenger RNA, one apparently derived from the other by a splicing event that causes a coding frameshift near the C terminus. The apparent 'intron' sequence contains an Alu family member and encodes contiguous protein sequence. Two DAF proteins are therefore possible, having divergent C-terminal domains which differ in their hydrophobicity. Both mRNAs are found on polysomes, suggesting that both are translated. We propose that the major (90%) spliced DAF mRNA encodes membrane-bound DAF whereas the minor (10%) unspliced DAF mRNA may encode secreted DAF and we present expression data supporting this. The deduced DAF sequence contains four repeating units homologous to a consensus repeat found in a recently described family of complement proteins.

CD55 Antigens↗

Localization of the covalent C3b-binding site on C4b within the complement classical pathway C5 convertase, C4b2a3b.

C5 convertase of the classical complement pathway is a trimolecular protein complex consisting of C4b, C2a, and C3b. In the complex there is an ester bond between C3b and C4b. We analyzed the C5 convertase formed on erythrocytes and localized the covalent binding site of C3b to a small region on C4b. The covalently linked C4b.C3b complex was purified from a detergent extract of the erythrocytes and digested with lysyl endopeptidase. An Mr 17,000 fragment containing the ester linkage between C4b and C3b was purified and its amino-terminal sequence was examined. Two amino acids were obtained at each cycle and identified with those in the sequences of C3 and C4. The sequence derived from C3 corresponded to the thioester region. The sequence derived from C4 started at Ala-1186. Alkali treatment of the fragment yielded an Mr 7,000 peptide derived from C4, which thus appeared to span the region of C4 from Ala-1186 to Lys-1259. Therefore, the covalent C3b-binding site on C4b is located within a 74-residue region of the primary structure. This finding supports the notion that after cleavage of C3 by the C4b2a complex, the covalent binding of metastable C3b to C4b is a specific reaction to form a trimolecular complex with a defined quaternary structure.

Amino Acid Sequence↗

C3b generation is affected by the structure of the O-antigen polysaccharide in lipopolysaccharide from salmonellae.

Salmonellae differing in the O-antigen side chain of their lipopolysaccharide were previously shown to activate the alternative pathway of complement to different extents. We now examine the generation of the major cleavage fragment of the complement component C3 (C3b) on these bacteria in a system that contains the purified components C3, B, D, and P but lacks the regulatory proteins H and I. The deposition of C3b in this system reproduces the same pattern obtained earlier with the use of whole serum, with the expected differences among the strains bearing different O-antigen. However, two distinct mechanisms for these differences in C3b generation became apparent. The intermediate activating strain showed 3 to 4 times less initial deposition of C3b than the other two strains. In contrast, the least activating strain showed adequate initial deposition but poor amplification, as shown by 2 to 3.4 lower amplification indexes as compared with those on the other two strains. Binding studies with factor B showed that decreased C3 convertase formation was responsible for the low amplification on this strain. Only 25% of the C3b bound to its surface was able to bind factor B with a high affinity, in comparison with 90% on the other two strains. No differences were found for the binding of factor H among the strains. These studies identify the molecular mechanisms by which these bacteria avoid complement activation.

Antigens, Bacterial↗

Isolation and characterization of a 33,000-dalton fragment of complement Factor B with catalytic and C3b binding activity.

Factor B is the zymogen of the catalytic site bearing subunit Bb of the C3/C5 convertase of the alternative pathway of complement. In this study, the location of the C3b binding site and the catalytic site within the Bb subunit were investigated. When human Factor B was treated with porcine elastase, fragments with respective molecular weights of 36,000, 35,000, 33,000, 31,000, and 25,000 were generated. Binding studies showed that only the 33,000-dalton fragment was capable of binding to C3b. The 33,000-dalton fragment was purified using fast protein liquid chromatography and found to be part of the Bb fragment upon testing with monoclonal antibody 15-6-19-1. Amino-terminal amino acid sequence analysis of the 33,000-dalton fragment placed it in the C-terminal half of Bb. The fragment expressed esterolytic activity as evidenced by cleavage of the synthetic substrate N alpha-acetyl-glycyl-L-lysine methyl ester and restored alternative pathway activity in Factor B-depleted serum. Its hemolytic activity was approximately 60-fold lower than that of Factor B. Comparative binding studies in the presence of metal ions using zymosan-C3b showed that the 33,000-dalton fragment bound to C3b with higher affinity than Factor B. Addition of the fragment to human serum inhibited alternative pathway activation by rabbit erythrocytes due to its high affinity for C3b and its low hemolytic activity compared to Factor B. These results show that the C-terminal 33,000-dalton portion of Bb contains not only the enzymatic site of Bb but also a C3b binding site which confers hemolytic activity upon the fragment. The observation that the fragment inhibited alternative pathway activation suggests that a synthetic peptide may be constructed that exhibits negative regulator activity in the alternative pathway.

Amino Acid Sequence↗

Structural basis of C3b binding by glycoprotein C of herpes simplex virus.

Glycoproteins C (gC) from herpes simplex virus type 1 (HSV-1) and HSV-2, gC-1 and gC-2, bind the human complement fragment C3b, although the two glycoproteins differ in their abilities to act as C3b receptors on infected cells and in their effects on the alternative complement pathway. Previously, we identified three regions of gC-2 (I, II, and III) which are important for C3b binding. In this study, our goal was to identify C3b-binding sites on gC-1 and to continue our analysis of gC-2. We constructed a large panel of mutants by using the cloned gC-1 and gC-2 genes. Most of the mutant proteins were transported to the surface of transiently transfected L cells and reacted with one or more monoclonal antibodies to discontinuous epitopes. By using 31 linker insertion mutants spread across the coding region of gC-1, we identified four regions in the ectodomain of gC-1 which are important for C3b binding, three of which are similar in position to C3b-binding regions I, II, and III of gC-2. Region III shares some similarities with the short consensus repeat found in CR1, the human complement receptor. These were, in part, the targets for construction of 20 single amino acid changes in region III of gC-1 and gC-2. These mutants identified similarities and differences in the C3b-binding properties of gC-1 and gC-2 and suggest that the amino half of region III is more important for C3b binding. However, our results do not support the concept of a structural relationship between the short consensus repeat of CR1 and gC, since mutations of some of the conserved residues, including three of four cysteines in region III, had no effect on C3b binding. Finally, we constructed four deletion mutants of gC-1, including one which lacked residues 33 to 123, as well as residues 367 to 449. This severely truncated molecule, lacking four cysteines and five potential N-linked glycosylation sites, was transported to the cell surface and retained its ability to bind monoclonal antibodies as well as C3b. Thus, the four distinct C3b-binding regions of gC-1 and several epitopes within two different antigenic sites are localized within residues 124 to 366.

Amino Acid Sequence↗

Inhibition of complement by covalent attachment of rosmarinic acid to activated C3b.

Rosmarinic acid has been reported to inhibit complement activation in vivo as well as in vitro. Previous studies suggested that the inhibitory effect was due to inhibition of C3/C5 convertases, but inhibition of C3b attachment would yield the same results. Recent work in our laboratory demonstrated that compounds with polyhydroxylated phenyl rings are highly reactive with the thioester bond in nascent C3b. These compounds block complement activation by preventing attachment of C3b to the activating surface. Because rosmarinic acid contains two 3,4-dihydroxyphenyl groups, the current study was undertaken to re-examine the mechanism of inhibition by analyzing the effect of rosmarinic acid on C3b attachment. In assays using purified complement proteins, rosmarinic acid inhibited covalent attachment of C3b to cells with an 1C50 = 34 microM. Inhibition of C5 convertase activity required 1500 microM rosmarinic acid, and no significant inhibition of the C3 convertase enzyme, which produces C3b from C3, was observed at 10,000 microM. In hemolytic assays using human serum, rosmarinic acid was shown to inhibit activation of both the classical (IC50 = 180 microM) and the alternative (IC50 = 160 microM) pathways of complement. Rosmarinic acid concentrations up to 10,000 microM did not cause direct inactivation of C3. Radioiodination of rosmarinic acid was used to demonstrate covalent activation-dependent incorporation of rosmarinic acid specifically into the thioester-containing alpha'-chain of nascent C3b. These findings indicate that inhibition of complement activation by rosmarinic acid is due to the reaction of rosmarinic acid with the activated thioester of metastable C3b, resulting in covalent attachment of the inhibitor to the protein.

Animals↗

High levels of "complexed" interleukin-6 in human blood.

The biochemical nature of endogenous interleukin-6 (IL-6) as it exists in human serum or plasma was investigated. Serum from a patient following bone marrow (BM) transplantation and fresh plasma samples from patients with epidermolysis bullosa or psoriasis, as well as from normal volunteers, were fractionated through G-200 columns and each of the eluted fractions assayed for IL (interleukin)-6 content using enzyme-linked immunosorbent assays (ELISAs) based on the monoclonal antibody (mAb) pairs IG61/5IL6 or 4IL6/5IL6 and in the B9 hybridoma growth factor bioassay. The IG61/5IL6 ELISA and the B9 assay detected IL-6 in BM serum almost exclusively of molecular mass approximately 20 kDa. In contrast, the 4IL6/5IL6 ELISA detected strong IL-6 immunoreactivity in complexes of size 100-150 and 400-500 kDa. IL-6 present in the 100-150- and 400-500-kDa complexes was purified by immunoaffinity chromatography through a 5IL6 mAb column. The 5IL6 mAb immunoaffinity column eluate of the respective pools from BM serum contained IL-6 at concentrations approaching 1 microgram/ml as characterized by Western blotting. Sufficient IL-6 and associated proteins were purified by 5IL6 mAb immunoaffinity column chromatography of the 100-150-kDa complex from 0.8 ml of BM serum to allow (i) verification of three of the polypeptides as IL-6 by amino-terminal sequencing (estimate of IL-6 in original serum sample: 5-10 micrograms/ml), (ii) identification by amino acid sequencing of the "associated" proteins as complement factor C3b (carboxyl-terminal of the alpha-chain), complement factor C4b (gamma-chain), C-reactive protein, and albumin, and (iii) detection of an "associated" polypeptide consistent with the soluble IL-6 receptor. Taken together, these data establish that IL-6 is present at unexpectedly high concentrations in human blood in novel biochemical complexes that include other plasma proteins, which in turn, can camouflage IL-6 immunoreactivity and bioactivity as measured in conventional assays.

Amino Acid Sequence↗

Binding of human complement component C4b-binding protein (C4BP) to Streptococcus pyogenes involves the C4b-binding site.

A key step in the elimination of invading pathogens from the body is the covalent binding of complement proteins C3b and C4b to their surface. However, many pathogens have evolved mechanisms to avoid the complement system of the host. Understanding how these mechanisms work may lead to more efficacious forms of therapy. Here we provide an insight into the molecular basis of how Streptococcus pyogenes binds human plasma C4b-binding protein (hC4BP), a complement regulatory molecule that may decrease C3b and C4b deposition on the streptococcal surface. We show that streptococcal surface molecules bind to a site on hC4BP that is indistinguishable from the C4b binding site. This site involves multiple binding surfaces that span short consensus repeats 1 to 3 of the alpha-chain of hC4BP. We propose that hC4BP is bound to the bacterial surface because the streptococcal surface molecules involved in the interaction mimic human C4b epitopes.

Animals↗