Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Complement C4b”

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

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

At least 1,135 records · Page 63Linked to original sources

The location of C2, C4, and BF relative to HLA-B and HLA-D.

The loci for HLA-A,B,C,D, and DR are known to be closely linked to the structural loci for the complement components C2, BF, and the duplicated loci for C4, C4A and C4B. Conflicting evidence has been presented for the order of these genes. However, new techniques have made possible identification of markers in the HLA-D and C4 region for nearly all identified haplotypes. In our population we have confirmed five HLA-B-D crossovers and in each case informative allotypes of C2, BF, or C4A and C4B segregated with HLA-D or DR suggesting that the loci for these proteins lie close to HLA-D and DR. These findings may be of importance for resolving problems encountered in the assignment of HLA-D alleles.

Complement C2↗

A new BF variant (F025).

A rare variant of Factor B exhibiting a mobility intermediate between BF F and BF S was described. After comparison with the mobilities of BF F and F075, this variant was designated BF F025. The allele was transmitted together with C2*C, C4A*3, and C4B*1.

Alleles↗

C4-mediated inhibition of immune precipitation and differences in inhibitory action of genetic variants, C4A3 and C4B1.

The inhibition of immune precipitation is mediated by the classical complement pathway. We report here that the rate of precipitate formation depends on the genetic form of human C4 present during immune precipitation. C4A3 is more effective than C4B1 in its capacity to inhibit the rate of immune precipitate formation in serum and in serum-free reaction mixtures containing C1 and C4. Immune precipitates form within seconds after antigen is mixed with antibody, and the activation of the classical pathway is known to occur within seconds after C1 binds to antibody molecules. The covalent deposition of C4b on immune complexes is an essential step in the inhibition of immune precipitate formation, and if any of the reactions that lead to covalent C4b deposition become limiting, the rate of immune precipitation could exceed the complement system's inhibitory capacity. Hence, the inhibition of this rate may be an important function underlying the complement-mediated processing of immune complexes, and a decreased ability of the complement system to mediate this process in the presence of C4B1, in contrast to C4A3, could explain, at least in part, the association between the C4A-null phenotype and autoimmune diseases such as systemic lupus erythematosus.

Animals↗

Primary structure of human complement component C2. Homology to two unrelated protein families.

The primary structure of the second component of human complement (C2) was determined by cDNA cloning and sequence analysis. C2 has 39% identity with the functionally analogous protein Factor B. The C-terminal half of C2a is homologous to the catalytic domains of other serine proteinases. C2b contains three direct repeats of approx. 60 amino acid residues. They are homologous to repeats in Factor B, C4b-binding protein and Factor H, suggesting a functional significance of the repeat in C4b and C3b binding. The repeats are also found in the non-complement proteins beta 2-glycoprotein I and interleukin-2 receptor, and this repeat family may be widespread.

Amino Acid Sequence↗

[C4b-binding protein].

Explore the source record for details and available documents.

Complement Inactivator Proteins↗

Complotypes, extended haplotypes, male segregation distortion, and disease markers.

From our studies in Caucasian families of HLA, complement, and glyoxalase alleles have developed the concepts of the complotype and the extended haplotype. complotypes are clusters of the four genes for complement proteins encoded within the MHC designated (in arbitrary order) by their BF, C2, C4A, and C4B alleles. They are inherited in families and occur in populations as functionally single genetic units and exhibit linkage disequilibrium with HLA-B and HLA-DR alleles which are complotype, rather than complement gene allele, specific. In Caucasians, there are 10-12 common sets of HLA-B, DR, complotype sets that show significant linkage disequilibrium. These haplotypes constitute 25-30% of all MHC haplotypes in Caucasians. Because there is evidence for relative fixity of alleles on these chromosomes to an unknown extent beyond the HLA-B-DR interval, they have been called extended MHC haplotypes. It appears likely that it is these extended haplotypes that provide most of the known linkage disequilibrium pairs previously reported for MHC alleles as well as many of the known MHC allele-disease associations. The most common extended haplotype [HLA-B8, DR3, SC01], when it carries GLO2, is increased in type I diabetes mellitus and probably a number of other diseases, including gluten-sensitive enteropathy and membranoproliferative glomerulonephritis. In the families with these disorders studied by us, this haplotype exhibits male segregation distortion, a feature displayed by t-mutants found in wild mouse populations. This feature constitutes an important selective advantage for the chromosome and may contribute to the accumulation of susceptibility mutations for a variety of diseases.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Prevention of complement-mediated activation of xenogeneic endothelial cells in an in vitro model of xenograft hyperacute rejection by C1 inhibitor.

The complement system plays a major role in hyperacute rejection of discordant xenografts. In an immediately vascularized xenograft of a porcine organ to a primate, natural antibodies bind to the vascular endothelium of the graft, triggering activation of complement via the classical pathway. One consequence of antibody binding and complement activation is the activation of endothelial cells leading to the loss from the cells of heparan sulfate. We explored to what extent the classical pathway regulatory protein C1 inhibitor (C1 inh) would inhibit complement-mediated cytotoxicity and activation of endothelial cells. Cultured porcine aortic endothelial cells were used as a model for a xenogeneic organ and human serum as a source of xenoreactive natural antibody and complement. Addition of purified human C1 inh to human serum inhibited deposition of C4b and iC3b and cytotoxicity after the serum was reacted with the cultured cells. C1 inh prevented, in a dose-dependent manner, activation of the endothelial cells, as manifested by release of heparan sulfate. These observations demonstrate that C1 inh added in sufficient amounts to human serum can effectively inhibit C1 activation in an antigen-antibody system. These studies extend our previous findings consistent with the concept that complement activation occurs via the classical pathway in models of hyperacute rejection in which porcine vascular endothelial cells are in contact with human serum containing xenogeneic natural antibodies against the endothelial cells. Thus, our results suggest a potential clinical use of C1 inh in conjunction with other therapies to prevent hyperacute rejection in xenogeneic combinations mediated by complement activation via the classical pathway.

Animals↗

Application of molecular cloning to studies on the complement system.

The isolation of cDNA and, in certain cases, genomic clones has been reported for the following complement proteins: C1q, C2, C3, C4, C5, C9, and factor B, C4b-binding protein and C1-inhibitor. The availability of cloned DNA has allowed rapid advances to be made in the understanding of the structure (from the derived amino acid sequences), function, biosynthesis and genetics of these proteins. This is most strongly illustrated from recent studies on the C2, factor B and C4 genes, which code for the class III molecules of the major histocompatibility complex, especially as certain allelic forms of these genes may be associated with disease susceptibility.

Animals↗

Relative importance of C4 binding protein in the modulation of the classical pathway C3 convertase in patients with systemic lupus erythematosus.

Serum concentrations of C1q, C4, C4 binding protein (C4bp), C3 and C2 haemolytic activity have been measured in 110 samples from 20 patients with systemic lupus erythematosus (SLE). Significant reductions in comparison to normal levels were found in the mean serum concentrations of C4, C3 and C4bp as well as C2 haemolytic activities. For patients serum concentrations of C4 correlated with C2 haemolytic activities (r = 0.91) and C4bp (r = 0.79); the C2 haemolytic levels correlated with the concentration of C4b (r = 0.72). It is concluded that serum concentrations of the complement components C4 and C2, which are the constituents of the classical pathway C3 convertase, are regulated by C4bp in vivo. Further metabolic studies are required to determine the causes of decreased serum concentrations of C4bp in patients with SLE.

Carrier Proteins↗

Complement-dependent binding of C-reactive protein complexes to human erythrocyte CR1.

C-reactive protein (CRP) is an acute phase serum protein that binds to phosphocholine (PC) on phospholipids and polysaccharides and to protein components of chromatin and small nuclear ribonucleoproteins. Complexes between CRP and ligands activate complement and bind to receptors on phagocytic cells. Although complement is required for CRP-mediated clearance or phagocytosis of ligand-coated erythrocytes, the participation of complement and complement receptors in clearance of soluble CRP complexes has not been examined. We have used PC-conjugated BSA to prepare complexes containing either IgG antibody or CRP. We found similar complement-mediated binding of both types of complexes to human erythrocyte complement receptors (CR1, CD35). We also found that serum deficient in C4A or C4B supported binding of CRP and IgG complexes to erythrocytes. These findings indicate that complexes between CRP and soluble ligands may be cleared by the erythrocyte CR1 pathway described for soluble immune complexes.

Antigen-Antibody Complex↗

[Changes in the polymorphism and concentrations of components of the class II complement after orthotopic transplantation of the liver].

OBJECTIVES AND METHODS: The genes of complement factor B, C2 and C4 are located within the major histocompatibility complex class III region on chromosome 6 in man. These components demonstrate a genetic polymorphism which, when determinated, can be used to define complotypes (association of C2, factor B, C4A and C4B allotypes). On the other hand the liver is the main source of the circulating complement component synthesis. The aim of this study was to analyse the kinetics of several complement component (C3, factor B and C4) concentrations in the plasma and to assess changes in the polymorphic pattern of the complotypes after orthotopic liver transplantation. Nephelometry was used for plasma level measurements and factor B, C2 and C4 typings were performed with high voltage electrophoresis or isofocalisation and immunofixation at intervals before, during and after orthotopic liver transplantation in eleven patients. RESULTS: Complotypes changes were observed 24 hours after liver transplantation in all patients. A slight decrease in C3, C4, and factor B plasma levels was observed in the first hours after transplantation. A rapid increase in the levels of these components was observed subsequently, with normalization in less than 15 days. CONCLUSION: These results demonstrate a rapid synthesis of complement components and the changes in complement polymorphic patterns after liver transplantation.

Adult↗

Complement activation in human lymphoid germinal centres.

The presence of complement activation products has been studied in morphologically normal human lymphatic tissue from tonsil, spleen and lymph node. Newly established monoclonal antibodies (mAbs) with reactivity against the C4 cleavage fragments C4a, C4b, C4c and C4d were applied on cyrostat sections in the indirect immunoperoxidase staining technique. Irrespective of organ type, C4d activation product could be detected in germinal centres of all secondary lymphoid follicles. To substantiate this finding, the complete sequence of complement activation products was investigated by a series of mono- and polyclonal antibodies to the complement proteins C1, C2, C3, factor B, C5, C9 to C5b-9 neoantigens and to the regulatory complement proteins C4 binding protein (C4bp), factor I, factor H and properdin. Similar to C4d, all secondary follicles exhibited a strong staining reaction for C3d antigens restricted to germinal centres. At the same site, albeit with distinctly weaker intensity, components of the membrane attack complex (MAC) C5b-9 were found. The simultaneous deposition of C1, C4b and C4bp in certain germinal centres indicates that complement activation is induced via the classical pathway. Concomitant deposition of IgM suggests IgM-antigen complexes that have been trapped on follicular dendritic cells (FDC) during normal immune response as the most likely candidates for activators of the classical pathway. Our data demonstrate that human lymphoid germinal centres as important sites of immune regulation closely interrelate with the complete cascade of complement-activation products, including the membrane attack complex (MAC).

Antigen-Antibody Complex↗

Proteases of the complement system.

The complement system is a group of about 35 soluble and cell-surface proteins which interact to recognize, opsonize and clear or kill invading micro-organisms or altered host cells (e.g. apoptotic or necrotic cells). Complement is a major part of the innate immune system. Recognition proteins such as C1q, MBL (mannan-binding lectin) and ficolins bind to targets via charge or sugar arrays. Binding causes activation of a series of serine protease proenzymes, such as C1r, C1s and MASP2 (MBL-associated serine protease 2), which in turn activate the atypical serine proteases factor B and C2, which then activate the major opsonin of the system, C3. Activated C3 binds covalently to targets, and is recognized by receptors on phagocytic cells. Two of the complement proteases, factors D and I, circulate not as proenzymes, but in activated form, and they have no natural inhibitors; their substrates are transient protein complexes (e.g. C3bB and C3bH) which form during complement activation. Factor B and C2 also have no natural inhibitor; they are active only when proteolytically cleaved and bound in an unstable, short-lived complex with C3b or C4b. C1r, C1s and the MASPs, in contrast, are regulated more conventionally by the natural serpin, C1-inhibitor. Complement proteases in general have very narrow specificity, and low substrate turnover with both natural and synthetic substrates. Excessive activation of complement is inflammatory, and causes tissue damage (e.g. in rheumatoid arthritis, or in ischaemia/reperfusion injury). Substances that regulate complement activation are likely to be useful in the regulation of inflammation. Complement activation might potentially be controlled at many different steps. Much attention has been focused on controlling the formation or activity of the protease complexes C3bBb and C4b2a (containing activated factor B and C2 respectively), as these generate the inflammatory peptides C3a and C5a.

Complement Activation↗

A promoter within intron 35 of the human C4A gene initiates abundant adrenal-specific transcription of a 1 kb RNA: location of a cryptic CYP21 promoter element?

Complement component C4 is encoded by two nearly identical genes, C4A and C4B, that encode a C4 precursor that is proteolytically cleaved into the alpha, beta and gamma subunits of the mature protein. C4 is expressed primarily in liver and to a much lesser extent in immune cells. We have identified a unique 1 kb RNA transcript, termed Z, that arises from a cryptic promoter lying in the intron between exons 35 and 36 of the C4 gene. Primer extension, RNase protection, and 5' RACE experiments locate the cap site in intron 35, 55 bases upstream from exon 36. Northern blotting and RNase protection assays show that expression of this 1 kb Z RNA transcript is confined to the adrenal gland. Z RNA contains the same open reading frame as C4 which predicts a protein of 131 amino acids, but antisera to C4 do not interact with epitopes on this protein when it is synthesized by cell-free translation, hence the presence or absence of a Z protein in vivo could not be determined. Transfection of Z promoter/reporter constructs into human adrenal NCI-H295 cells shows that most if not all of the sequences required for high-level adrenal expression lie within 235 bases upstream from the cap site, but that this region is inactive when transfected into COS-1, JEG-3 and Hep-G2 cells, suggesting it contains an adrenal-specific element. The 222 bases upstream from the cap site are 75% identical in the human C4A and mouse Slp genes, and contain a potential binding site for steroidogenic factor 1 (SF-1), an orphan zinc-finger nuclear receptor. We propose that this region, like a nearby region in the mouse genome, functions as an upstream element of the P450c21 promoter, and may be a component of an adrenal-specific locus-control region.

Adrenal Glands↗

A new duplication at the C4B locus associated with the HLA-Aw68, Cw8, Bw65 haplotype.

A family with a cross-over between HLA-B and HLA-DR was analysed for its complement alleles. This allowed location of the cross-over between HLA-B and C4. Furthermore, the same family showed a previously undescribed duplication at the C4B locus (C4B* 2,2) that was associated with the HLA-Aw68, Cw8, Bw65, C2*1, Bf*S, C4A*2, DR7, DQw2 haplotype.

Adult↗

IgA serum levels and HLA complement markers in gastric cancer patients.

Immunoglobulin serum levels and class III HLA polymorphisms (Bf, C4A, and C4B) have been analyzed in 55 gastric cancer patients (13 having at least a first-degree relative affected by the same tumor) from the Republic of San Marino. This was done to search for possible immunoglobulin deficiencies (in particular IgA), which have been proposed to have a prognostic value in gastric cancer, and to identify possible associations between such a tumor and HLA class III determinants. All subjects had normal Ig levels with the exception of one patient (having the worst prognosis) characterized by a combined IgA, IgG, and IgM deficiency. Normal Ig levels were found in all the examined relatives of the proband. The Bf, C4A, and C4B allele frequencies we found did not differ significantly from those reported for healthy subjects in Italian samples.

Alleles↗

The contrasting mechanisms of serum resistance of Neisseria gonorrhoeae and group B Neisseria meningitidis.

Neisseria gonorrhoeae and Neisseria meningitidis have evolved intricate mechanisms to evade complement-mediated killing. Sialylation of gonococcal lipooligosaccharide (LOS) results in conversion of previously serum sensitive strains to unstable serum resistance, which is mediated by factor H binding. Porin (Por) is also instrumental in mediating stable serum resistance in gonococci. The 5th loop of certain gonococcal PorlAs binds factor H, which efficiently inactivates C3b to iC3b. Factor H glycan residues may be essential for factor H binding to certain Por1A strains. Por1A strains can also regulate the classical pathway by binding to C4b-binding protein (C4bp) probably via the 1st loop of the Por molecule. Certain serum resistant Por1 B strains can also regulate complement by binding C4bp through a loop other than loop 1. Purified C4b can inhibit binding of C4bp to Por 1B, but not Por1A, suggesting different binding sites on C4bp for the two Por types. Unlike serum resistant gonococci, resistant meningococci have abundant C3b on their surface, which is only partially processed to iC3b. The main mechanism of complement evasion by group B meningococci is inhibition of membrane attack complex (MAC) insertion by their polysaccharide capsule. LOS structure may act in concert with capsule to prevent MAC insertion. Meningococcal strains with Class 3 Por preferentially bind factor H, suggesting Class 3 Por acts as a receptor for factor H.

Blood Bactericidal Activity↗

Functional characterization of the complement control protein homolog of herpesvirus saimiri: ARG-118 is critical for factor I cofactor activities.

Herpesvirus saimiri (HVS) is a lymphotropic virus that causes T-cell lymphomas in New World primates. It encodes a structural homolog of complement control proteins named complement control protein homolog (CCPH). Previously, CCPH has been shown to inhibit C3d deposition on target cells exposed to complement. Here we have studied the mechanism by which it inactivates complement. We have expressed the soluble form of CCPH in Escherichia coli, purified to homogeneity and compared its activity to vaccinia virus complement control protein (VCP) and human complement regulators factor H and soluble complement receptor 1. The expressed soluble form of CCPH bound to C3b (KD = 19.2 microm) as well as to C4b (KD = 0.8 microm) and accelerated the decay of the classical/lectin as well as alternative pathway C3-convertases. In addition, it also served as factor I cofactor and supported factor I-mediated inactivation of both C3b and C4b. Time course analysis indicated that although its rate of inactivation of C4b is comparable with VCP, it is 14-fold more potent than VCP in inactivating C3b. Site-directed mutagenesis revealed that Arg-118, which corresponds to Lys-120 of variola virus complement regulator SPICE (a residue critical for its enhanced C3b cofactor activity), contributes significantly in enhancing this activity. Thus, our data indicate that HVS encodes a potent complement inhibitor that allows HVS to evade the host complement attack.

Arginine↗