Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Complement C1s”

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 649 records · Page 36Linked to original sources

Purification and some properties of rabbit C1 inactivator.

C1 inactivator (C1 INA) was highly purified from rabbit serum. C1 INA thus purified was a single polypeptide chain with a molecular weight of 105,000 or 140,000, as estimated by SDS-polyacrylamide gel electrophoresis or gel filtration on Sephadex G-200, respectively. It inhibited rabbit and also human C1, when the C1 activities were measured in terms of hydrolyses of acetylglycyl-L-lysine methylester, N-alpha-acetyl-L-arginine methylester and N-alpha-acetyl-L-tyrosine ethylester. These properties showed that rabbit C1 INA bears a marked structural similarity to human C1 INA. Furthermore, rabbit C1 INA was capable of inhibiting similarly both rabbit C1s and its active fragment lacking a half of the H chain of C1s, indicating that deletion of a half of the H chain did not affect the susceptibility of C1s to the inhibitory activity of C1 INA.

Animals↗

Ancient origin of the complement lectin pathway revealed by molecular cloning of mannan binding protein-associated serine protease from a urochordate, the Japanese ascidian, Halocynthia roretzi.

Recent identification of a C3-like gene in sea urchins revealed the presence of a complement system in invertebrates. To elucidate further the components and function of the pre-vertebrate complement system, we attempted to isolate an ascidian (urochordata) C3 convertase. After identification of C3 cDNA from Halocynthia roretzi, a Japanese ascidian, reverse transcriptase-PCR amplification of hepatopancreas RNA was performed using primers encoding highly conserved amino acid sequences of the vertebrate Bf and C2 serine protease domain. Two candidate sequences were identified, and the corresponding cDNA clones were isolated from a hepatopancreas library. Surprisingly, neither clone is related to Bf/C2 but rather share the same domain structure of mammalian C1r/C1s/MASP (mannan binding protein-associated serine protease), and are more related evolutionarily to mammalian MASP than to mammalian C1r or C1s. The identification of the tunicate MASP clones, amplified with primers designed to amplify Bf or C2, suggests that the lectin pathway antedated the classical and alternative pathways of complement activation.

Amino Acid Sequence↗

Synthetic peptide inhibitors of complement serine proteases--III. Significant increase in inhibitor potency provides further support for the functional equivalence hypothesis.

Synthetic peptides based on functionally equivalent (as defined by similar patterns of chemically equivalent amino acids) serine protease inhibitor (serpin) C-terminal sequences inhibit both classical and alternative pathways of complement activation. Inhibition was also found with hybrid peptides consisting of the cleavage site of one serpin (antithrombin III, alpha-1-antitrypsin, or antichymotrypsin) attached to the short and long functionally equivalent protease binding cores of the other two serpins. A hybrid peptide composed of the sequence at the site of cleavage of C4 by C1s attached to the long binding core of antithrombin III was selective in inhibiting the classical pathway with no effect on the alternative pathway at a concn of 10 microM. Extension of the functional equivalence hypothesis has produced inhibitors of complement activation named generic and generic +, whose sequences differ by 77% or 87%, respectively, from those of all three serpin sequences. A hybrid peptide composed of the antithrombin III cleavage site attached to the generic peptide is an inhibitor of complement activation at 500 nM, the most potent inhibitor found in this study.

Amino Acid Sequence↗

The purification and properties of the second component of guinea-pig complement.

A method has been developed for the purification to homogeneity of guinea-pig complement component C2. Contrary to previous reports, guinea-pig C2 is a single polypeptide chain with apparent mol.wt. of 102000, the same as human C2. It is cleaved by C1s to yield fragments C2a (apparent molwt. 74000) and C2b (apparent mol.wt. 34000). The amino acid composition and N-terminal sequences of these fragments are similar to those of human C2a and C2b. Human and guinea-pig C2 show more extensive sequence homology to Factor B than previously identified. The known homology around the sites of cleavage by C1s and Factor D has now been extended by a stretch of ten identical or conservatively substituted residues. Sequence homology has now been identified at the N-terminal of C2b and Factor Ba. The properties of the classical-pathway C3 convertases assembled from human C4b, C1s and human or guinea-pig C2 have been compared. The rates of cleavage of human and guinea-pig C2 by C1s (and therefore the rates of assembly of the C3 convertases) are similar. The rate of decay of the activity of the C3 convertase formed from guinea-pig C2 is 10-fold lower than for human C2. This greater stability reflects a higher affinity of guinea-pig C2a for human C4b. The presence of C2b is not necessary for C3 convertase activity.

Amino Acid Sequence↗

Conformational changes in C1q after binding to immune complexes: detection of neoantigens with monoclonal antibodies.

The formation of neoantigens within the C1q molecule after the binding of C1r and C1s to C1q and the binding of C1q to immune complexes is described. The neoantigens were detected by different monoclonal anti-C1q antibodies. This immunochemical study supports the hypothesis drawn from functional studies that the activation of the classical C pathway results from conformational changes within the C1q molecule leading to the activation of C1r and subsequently C1s.

Animals↗

Synovial fibroblast-like cells synthesize seven proteins of the complement system.

Fibroblast-like cells from synovial tissue obtained during arthroscopy in 4 young adults with recent knee trauma were biosynthetically labeled with 35S-methionine, and protein production was quantitated by immunoprecipitation and sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Synovial fibroblast-like cells synthesized C1r, C1s, C1 inhibitor, C2, C3, factor B, and factor H, all with the same sizes and subunit structures as the proteins synthesized in skin fibroblasts. The capacity to synthesize these proteins was not lost with passages or freeze-thawing. Gamma-interferon stimulation increased synthesis of all 7 proteins. Lipopolysaccharide increased synthesis of only C3 and factor B. Unlike in whole rheumatoid tissue, C4 and C5 were not detected. Synovial lining cells may be an important source of local complement for participation in local defense or development of pathologic states.

Cell Adhesion↗

Biosynthesis of the third and fifth complement components by isolated human lung cells.

Increasing research efforts have been directed at determining the contribution of locally synthesized (cell-derived) complement in host defense and inflammation. In the studies presented here, we determined the ability of a continuous cell line of type II pneumocytes (A549) and a cell line of human lung fibroblasts (WI-38) to produce complement components in vitro. Complement biosynthesis by A549 pneumocytes and WI-38 fibroblasts was demonstrated by incorporation of [35S]methionine into immunoprecipitable complement proteins. Using this technique, A549 pneumocytes were demonstrated to synthesize Clr, Cls, C4, C3, C5, C6, C7, C8, C9, Factor B, Factor H, Factor I, and C1s inactivator. In comparison, WI-38 fibroblasts were shown to synthesize Cls, C4, C3, C5, C6, C8, and C9. Because previous work has demonstrated the central role of C3, C5, and their activation products in regulating lung inflammation and tissue injury, we further investigated the production of C3 and C5 by both lung pneumocytes and fibroblasts using enzyme-linked immunospecific assays. A549 cells cultured in the presence of 15% fetal bovine serum (FBS) produced antigenic C3 (135 ng C3/ml/24 h) at a greater rate than did identical cells maintained in serum-free culture conditions (70 ng C3/ml/24 h). Similarly, antigenic C5 production by A549 pneumocytes was greatest in the presence of FBS when compared with cells maintained in serum-free culture conditions (245 ng C5/ml/24 h versus 155 ng C5/ml/24 h).(ABSTRACT TRUNCATED AT 250 WORDS)

Cell Line↗

Purification and characterization of subcomponent C1q of the first component of bovine complement.

Bovine C1q, a subcomponent of the first component of complement, was purified in high yield by a combination of euglobulin precipitation, and ion-exchange and molecularsieve chromatography on CM-cellulose and Ultrogel AcA 34. Approx. 12-16mg can be isolated from 1 litre of serum, representing a yield of 13-18%. The molecular weight of undissociated subcomponent C1q, as determined by equilibrium sedimentation, is 430000. On sodium dodecyl sulphate/polyacrylamide gels under non-reducing conditions, subcomponent C1q was shown to consist of two subunits of mol.wts. 69000 and 62000 in a molar ratio of 2:1. On reduction, the 69000-mol.wt. subunit gave chains of mol.wts. 30000 and 25000 in equimolar ratio, and the 62000-mol.wt. subunit decreased to 25000. The amino acid composition, with a high value for glycine, and the presence of hydroxyproline and hydroxylysine, suggests that there is a region of collagen-like sequence in the molecule. This is supported by the loss of haemolytic activity and the degradation of the polypeptide chains of subcomponent C1q when digested by collagenase. All of these molecular characteristics support the structure of six subunits, each containing three different polypeptide chains, with globular heads connected by collagen triple helices as proposed by Reid & Porter (1976) (Biochem. J.155, 19-23) for human subcomponent C1q. Subcomponent C1q contains approx. 9% carbohydrate; analysis of the degree of substitution of the hydroxylysine residues revealed that 91% are modified by the addition of the disaccharide unit Gal-Glc. Bovine subcomponent C1q generates full C1 haemolytic activity when assayed with human subcomponents C1r and C1s.

Amino Acids↗

Prospective analysis of C1 dissociation and complement activation in patients with systemic lupus erythematosus.

OBJECTIVE: To evaluate the results of complement analysis for assessment of disease activity and severity, and prediction of flares in systemic lupus erythematosus (SLE). METHODS: Patients with mild extra-renal flares, severe extra-renal flares or flares of lupus glomerulonephritis were followed for eight months, with investigations being performed every second month. Findings in initial samples four months before the flares were compared with findings in a control group with stable disease. C-reactive protein, and circulating C1q, C4 and C3 were determined together with two types of complexes containing C1 inhibitor (C1 INH), C1 INH-C1r-C1s and C1 INH-C1r-C1s-C1 INH, and the C3 breakdown product C3d. RESULTS: Enhanced formation of C1 INH-C1r-C1s appeared to be a marker of low specificity and was mainly seen in patients with extra-renal disease. Concentrations of C1 INH-C1r-C1s-C1 INH, C3d, C1q and C3 clearly varied according to disease activity in patients with severe disease. Interestingly, high C1 INH-C1r-C1s-C1 INH values were found four months before the flares in all but one patient with lupus glomerulonephritis. Assessment of the relative predictivity for a subsequent flare indicated low C1q to be the most reliable marker, the predictivity of the complexes being: low C1q > high C1 INH-C1r-C1s-C1 INH > low C3 > high C3d > low C4. CONCLUSION: The importance of C1q and C1-related events in SLE may be underestimated. In addition, our results demonstrate the relevance of serial complement analysis for the assessment of disease activity and severity.

Adolescent↗

Deficiency of C1r in human serum. Effects on the structure and function of macromolecular C1.

THE EXPERIMENTS PRESENTED HERE UTILIZE A HUMAN SERUM MARKEDLY DEFICIENT IN HEMOLYTIC COMPLEMENT ACTIVITY TO SHOW THAT: (a) The hemolytic deficiency is the result of a selective deficiency in hemolytic C1. (b) The relative absence of hemolytic C1 is due to a profound deficit in C1r function associated with less than normal C1s protein and hemolytic function and normal C1q protein concentration and function. This deficit in C1r in the face of normal C1q suggests that different cell types are responsible for the synthesis of each of these components. (c) Whatever the basis for the deficiency of C1r function, this defect results in an inadequate association of the remaining C1 subcomponents, C1q and C1s, even in the presence of calcium ions, thus suggesting that C1r has an important role in the assembly and/or maintenance of macromolecular C1.

Adolescent↗

The unactivated form of the first component of human complement, C1.

The first component of complement, C1, was isolated unactivated from human serum by repeated additions of di-isopropyl phosphorofluoridate during isolation. The unactivated subcomponents were also isolated, and evidence is given that the three subcomponents C1q, C1r and C1s account wholly for the activity of component C1 in serum. No evidence could be found for a fourth subcomponent, C1t. The approximate molar proportions of the subcomponents in serum are C1q/C1r/C1s = 1:2:2. Optimum activity by haemolytic assay was found at approximate molar proportions C1q/C1r/C1s of 1:4:4. No activity was found when subcomponents were assayed singly or in pairs, except for subcomponents C1q and C1s, which in molar ratio 1:4 gave 15-20% of the activity of the mixture C1q + C1r + C1s. The proteolytic activity of the isolated subcomponent C1s varied according to the method of activation used. Subcomponents C1q + C1r + C1s and C1q + C1s in the presence of antibody-antigen aggregates were activated and inactivated simultaneously, showing a peak of activity and subsequent loss of activity. Both reactions are probably due to proteolysis, and analysis of the peptide bonds split will be necessary to distinguish these two phenomena.

Antigen-Antibody Complex↗

Immune complex mediated activation of the classical complement pathway.

The activation of classical C pathway by immune complexes depends on the binding and activation of C1, the first component of C. The Ig in the complex must be of the right class and in the right configuration to accomplish the conversion of precursor (zymogen) C1s to C1s, the active enzyme, whose substrates are C4 and C2. The primary question discussed in this paper is evidence that indicates that epitope distribution and density is a major factor in controlling the configuration of antibodies which in turn controls the activation of bound C1. This evidence confirms earlier findings that binding of C1 is a necessary but not sufficient condition for activating C1.

Animals↗

Molecular characterization of the catalytic domains of human complement serine protease C1r.

Limited cleavages of human C1r by extrinsic proteases of various specificity (plasmin, elastase, chymotrypsin, thermolysin) yield dimeric associations of two globular domains, each comprised of the intact B chain disulfide linked to gamma, the C-terminal fragment of the A chain. These (gamma-B)2 domains, which are homologous to those obtained from C1r by autolytic cleavage [Villiers, C. L., Arlaud, G. J., & Colomb, M. G. (1985) Proc. Natl. Acad. Sci. U.S.A. 82, 4477-4481], represent the core of the C1r molecule and are associated with the catalytic properties of the serine active site. V8 protease also yields (gamma-B)2 associations, although additional cleavages occur in the B chain. Sequence analysis shows that all cleavages generating the gamma fragments occur within a 13-residue sequence extending from positions 274 to 286 of the C1r A chain. Chemical cross-linking with 1-ethyl-3-[3-(dimethylamino)propyl]carbodiimide of the (gamma-B)2 catalytic domains obtained from C1r autolytic cleavage indicates that each gamma-B domain interacts with its neighbor in a "head to tail" configuration, the gamma region of one domain interacting with the B chain of the other domain, and conversely. No evidence is found of gamma-gamma or B-B interactions. Such a head to tail configuration, placed in the context of the model proposed for the C1s-C1r-C1r-C1s catalytic subunit of C1 [Colomb, M. G., Arlaud, G. J., & Villiers, C. L. (1984) Philos. Trans. R. Soc. London, B 306, 283-292], is compatible with autolytic activation of C1r through an intramolecular cross-mechanism and with subsequent activation of C1s by activated C1r.

Amino Acid Sequence↗

Serum levels of RHP and of unbound C1q in rheumatoid arthritis and systemic lupus erythematosus.

RHP is a recently described serum protein which inhibits a number of physiologic functions of C1q unbound to C1r2 x C1s2. In this report we show that sera from patients with rheumatoid arthritis contained elevated levels of RHP and of unbound C1q. Sera from patients with systemic lupus erythematosus contained normal levels of RHP and were characterized by deficits of C1q required to form C1 from existing levels of C1r and C1s.

Adult↗

Early complement components in Alzheimer's disease brains.

Activation products of the early complement components C1, C4 and C3 can be found colocalized with diffuse and fibrillar beta-amyloid (beta/A4) deposits in Alzheimer's disease (AD) brains. Immunohistochemically, C1-esterase inhibitor (C1-Inh) and the C1 subcomponents C1s and C1r can not, or only occasionally, be detected in plaques or in astrocytes. The present finding that C1q, C1s and C1-Inh mRNA are present in both AD and control brains suggests that the variable immunohistochemical staining results for C1r, C1s and C1-Inh are due to a rapid consumption, and that the inability to detect C1s, C1r or C1-Inh is probably due to the dissociation of C1s-C1-Inh and C1r-C1-Inh complexes from the activator-bound C1q into the fluid phase. Employing monoclonal antibodies specific for different forms of C1-Inh, no complexed C1-Inh could be found, whereas inactivated C1-Inh seems to be present in astrocytes surrounding beta/A4 plaques in AD brains. These findings, together with our finding (using reverse transcriptase-polymerase chain reaction) that C1-Inh is locally produced in the brain, suggest that in the brain complement activation at the C1 level is regulated by C1-Inh. Immunohistochemically, no evidence for the presence of the late complement components C5, C7 and C9, or of the membrane attack complex (MAC), was found in beta/A4 plaques. In contrast to the mRNA encoding the early components, that of the late complement components appears to be hardly detectable (C7) or absent (C9). Thus, without blood-brain-barrier impairment, the late complement components are probably present at too low a concentration to allow the formation of the MAC, which is generally believed to be responsible for at least some of the neurodegenerative effects observed in AD. Therefore, the present findings support the idea that in AD, complement does not function as an inflammatory mediator through MAC formation, but through the action of early component activation products.

Aged↗

C1 binding by murine IgM. The effect of a Pro-to-Ser exchange at residue 436 of the mu-chain.

We have examined a defect in complement activation in a mutant trinitrophenyl-binding pentameric murine monoclonal IgM which has serine replacing the proline normally found at position 436 in the protein. The mutant protein showed equivalent hapten binding but a 100-fold decreased ability to initiate complement-dependent lysis of trinitrophenyl-coupled erythrocytes at physiological ionic strength (mu = 0.15). C4b deposition mediated by the mutant protein was impaired to a similar degree. C1 bound by the mutant protein showed C1s to C1-s conversion, suggesting normal activation. When measured at reduced ionic strength (mu = 0.06), the C1 and C1q binding affinity of the mutant protein was approximately one-half that of the wild type. However, the C1 binding affinity of the mutant protein showed a greater dependence upon ionic strength such that at physiological ionic strength we estimate a 50-fold lower C1 binding affinity for the mutant molecule. Kinetic studies suggested that this difference in affinity was largely attributable to differences in association rates. In addition, a fixed proportion of the mutant molecules showed no C1 binding. We conclude that the defect in complement activation occurs at the level of C1 binding. Our data support a role for the C mu 3 domain (residues 340-440) in C1 binding by IgM.

Complement Activating Enzymes↗

[Complement-inhibiting acidic factors from the venom of Central Asian cobra Naja naja oxiana].

Two anticomplementic factors isolated from the venom of the Central Asian cobra Naja naja oxiana by chromatography on DEAE-Sepharose CL-6B and subsequent gel filtration on Sephacryl S-200 were studied. Of these, five factors (CFA-Ia, CFA-Ib, CFA-Ic, CFA-IIa and CFA-IIb), CFA-Ib had been characterized earlier, while CFA-Ia was assigned to a previously identified H-CoF factor. It was shown that CFA-Ic has a molecular mass of 3900 Da; its content in the venom amounts to 2.6 mg/g of dry venom. This factor inhibits the classical pathway of C3 convertase formation abrogating the C2 component activation by subcomponent C1s [Ki = (2.5 +/- 0.8).10(-7) M]. CFA-IIa and CFA-IIb are present in the venom in very low amounts (2 mg/g) and have Mr of 5700 and 3200 Da, respectively. The complement-inhibiting action was studied for a more active CFA-IIa. Factor CFA-IIa was shown to inactivate the native component of C2 with a rate constant, k, of (2.7 +/- 0.2).10(3) s-1M-1 (37 degrees C, pH 7.4). CFA-IIa had no effect on C2 and C2a within their complexes with C4b.

Chromatography, DEAE-Cellulose↗