Formation of a conformationally changed C1r, a subcomponent of the first component of human complement, as an intermediate of its autoactivation reaction.
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Genetic polymorphism of the C1R subcomponent of human complement component C1 has been investigated in neuraminidase treated EDTA plasma samples of 440 healthy Japanese individuals living in Tokyo by means of thin-layer polyacrylamide gel isoelectric focusing (PAGIEF) at pH 3.5-9.5 in the presence of 8.0 M urea followed by an electroblotting with enzyme immunoassay. Three common and three rare alleles were detected in the Japanese population. Of these, two common alleles were identical to C1R*1 and C1R*2 and other new alleles were tentatively designated C1R*3, C1R*4, C1R*5 and C1R*6, respectively. The results of the family studies suggested that the genetic model for C1R polymorphism assumed autosomal codominant Mendelian inheritance. The allele frequencies were estimated as C1R*1 = 0.4216, C1R*2 = 0.3602, C1R*3 = 0.2068, C1R*4 = 0.0091 and C1R*R(C1R*5 and C1R*6) = 0.0023, respectively. The distribution of allotypes fitted the Hardy-Weinberg equilibrium. The C1R system provides a useful genetic marker for human genetics, anthropologic studies and forensic science.
Property patterns were constructed, based on an alignment of related domains in human complement subcomponents C1r and C1s as well as in the sea urchin protein uEGF. This kind of consensus pattern was able to identify similar domains in a human bone morphogenic protein, in a Xenopus laevis embryonal protein involved in dorsoanterior development and in a calcium-dependent serine protease secreted from malignant hamster embryo fibroblast cells. Because of the high level of overall sequence homology this protease may be the hamsters' equivalent of the human complement subcomponent C1s. The resulting multiple alignment of all studied domains suggests functionally and structurally important regions.
Vitamin K-dependent bovine protein S has been shown to contain a posttranslationally hydroxylated asparagine within a conserved sequence in three of its epidermal growth factor (EGF)-like domains. In a review of amino acid sequences deduced from cDNA data, we have observed that a conserved sequence containing a potential asparagine hydroxylation site exists within EGF-like domains of a variety of functionally diverse proteins. We have studied a number of these and report the presence of erythro-beta-hydroxyasparagine (e-beta Hyn) in three non-vitamin K-dependent proteins: the plasma complement proteins C1r and C1s (where overbar indicates activated form) and the urinary protein uromodulin. For each protein, e-beta Hyn was identified in enzyme digests following the initial observation of erythro-beta-hydroxyaspartic acid (e-beta Hya) in acid hydrolysates of the proteins. e beta Hya and e-beta Hyn residues are detected by a postcolumn derivatization cation-exchange HPLC method herein described. HPLC isolation of the presumptive e-beta Hyn residue from enzyme digests of intact C1r allowed confirmation of its structure by GC/MS. Based upon available cDNA sequence data and observation of e-beta Hya in acid hydrolysates, we suggest other proteins in which e-beta Hyn may occur.
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We report a patient who developed recurrent urticaria and angioedema at age 2 years, severe hypocomplementemic glomerulonephritis at 11 years, and end-stage renal disease at 14 years. His disease resembled the hypocomplementemic vasculitis syndrome but was atypical in its early age of presentation, severe hypocomplementemia, and progression to end-stage renal disease. Serum C1q levels were extremely low, and C4, C2, C3, and C5 levels were significantly reduced. Serum C1 inhibitor (C1INH) levels were slightly low, presumably from consumption. Circulating C1INH-C1r-C1s complexes were evidenced by reduced ratios of functional to antigenic C1INH and antigenic C1r to C1s. Family members had normal functional and antigenic levels of all complement components studied. The patient's serum, erythrocytes, platelets, and mononuclear cells did not activate complement when mixed with normal target serum. Absence of a circulating complement activator and the low serum C3 and C5 levels suggested the presence of a solid-phase complement activator, possibly related to renal or systemic vascular endothelium. As in patients with homozygous deficiencies of classical pathway components, a severe, prolonged, acquired C1q deficiency may have predisposed this patient to the development of glomerulonephritis.
Spontaneous activation of C1r in the presence of EDTA was examined by a Western blot. Partially purified native C1r was prepared by ultracentrifugation of fresh serum in 10 to 30% sucrose gradient; final concentration of C1r was one-sixth of the original serum. C1(-)-INH was not detectable by a single radial immunodiffusion (less than 0.5% of serum). The results demonstrated that 1) the rate of spontaneous activation of C1r was slow (less than 10% in 30 min); 2) it was concentration-dependent; 3) it was enhanced by activated C1r; and 4) it was almost completely suppressed by serine protease inhibitors up to 1 h. These results were inconsistent with an intramolecular autoactivation model of C1r in the fluid phase and suggested intermolecular activation by contaminating protease or activated C1r.
The subcomponents C1r and C1s and their activated forms C-1r and C-1s were each found to have mol.wts. in dissociating solvents of about 83000. The amino acid compositions of each were similar, but there were significant differences in the monosaccharide analyses of subcomponents C1r and C1s, whether activated or not. Subcomponents C1r and C1s have only one polypeptide chain, but subcomponents C-1r and C-1s each contain two peptide chains of approx. mol.wts. 56000 ("a" chain) and 27000 ("b" chain). The amino acid analyses of the "a" chains from each activated subcomponent are similar, as are those of the "b" chains. The N-terminal amino acid sequence of 29 residues of the C-1s "a" chain was determined, but the C-1r "a" chain has blocked N-terminal amino acid. The 20 N-terminal residues of both "b" chains are similar, but not identical, and both show obvious homology with other serine proteinases. The difference in polysaccharide content of the subcomponents C-1r and C-1s is most marked in the 'b' chains. When tested on synthetic amino acid esters, subcomponent C-1r hydrolysed both lysine and tyrosine ester bonds, but subcomponent C-1r did not hydrolyse any amino acid esters tested nor any protein substrate except subcomponent C1s. The lysine esterase activity of subcomponent C1s provides a rapid and sensitive assay of the subcomponent.
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A case of angioedema due to acquired deficiency of the regulatory protein C1-esterase-inhibitor (C1-INH) is reported. The edematous attack occurred 3 1/2 weeks after initiation of successful therapy for autoimmune-hemolytic anemia in the course of long-standing non-Hodgkin's lymphoma. At the time of acute edema the complement profile was typical: virtual absence of C1-INH function was associated with diminished concentrations of the components of the classical pathway of complement (C1q, C1r, C1s, C2, C4) and reduced complement hemolytic activity (CH50). Anti-C1-INH-autoantibodies were not detected. The angioedema lasted for about one week, and no further attacks occurred during the five-months follow-up period. Although there was only a minor adjustment to the therapy, the C1q, C2, C4 and CH50 values gradually increased to levels close to the lower limit of the normal range, while C1r and C1s showed normal values. In contrast to most other reports, this case was characterized by angioedema which was precipitated only after initiation of appropriate treatment for the underlying disease rather than before therapy or even diagnosis of the underlying disease.
The assembly of C1, the first component of human complement, involves interactions between various domains of each of its three subcomponents, C1q, C1r, and C1s. The isolation, assignment of function, and structural characterization of the individual domains of C1r and C1s are critical for a thorough understanding of this complex assembly. The present study describes a 27-kDa plasmin-generated fragment derived from the NH2-terminal half of the heavy A chain of C1s-, the activated form of C1s. This fragment, C1s-alpha, was shown in the presence of Ca2+ to mimic the ability of whole C1s- to self-associate, bind to C1r-, and facilitate the binding of C1r to C1q. These results directly prove that the Ca2(+)-binding sites of C1s as well as all of the determinants necessary for binding of C1s- to C1r- and C1q are located in the NH2-terminal 27-kDa alpha region of the A chain.
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This paper presents a short review of our contribution to the knowledge of the structure and function of human C1r, the activation unit of C1, the first component of the classical pathway of complement. On the basis of the domain structure of C1r, a model accounting for its autolytic activation mechanism is proposed. We suggest that this represents the basic mechanism of C1 function.
The composition of complexes containing C1 inactivator (C1 IA), C1r and C1s was investigated in normal serum after activation of C1 under various conditions. Analyses were performed with PAGE of eluates from Sepharose beads coated with F(ab')2 fragments of anti C1s followed by immunoblotting with anti C1 IA, anti C1s or anti C1r. Eluates obtained from serum treated with aggregated IgG (AGG) contained C1 IA in complex with C1r and C1s with both subcomponents in activated form. Eluates from serum incubated at 37 degrees C for 1, 2 or 3 days without activators showed C1 IA complexed with activated C1r and with C1s in proenzyme state associated to the complex. On analysis of serum, treated as mentioned above, by a variant of the electroimmunoassay using an intermediate gel containing anti-C1 IA and with anti-C1s in the anodal gel the two types of C1r--C1s--C1 IA complexes could be distinguished. Investigation of fresh sera and synovial fluids from patients with rheumatoid arthritis in this assay showed complexes containing C1 IA and C1r-C1s in activated form in the synovial fluids, while C1 IA-activated C1r-proenzyme C1s complexes were found in the corresponding sera.
Activation of the C1 complex in the presence of C1 inactivator (C1 IA) is known to result in the formation of tetramer C1 IA-C1r-C1s-C1 IA complexes that are dissociated from C1q. Both C1r and C1s of the tetramers are present in their activated forms. The present investigation concerned the generation of trimer complexes containing C1 IA, activated C1r, and zymogen C1s (C1 IA-C1r-C1s). C1 IA-C1r-C1s were released from C1q and were formed in high concentration during prolonged incubation (1 to 3 days) of normal serum at 37 degrees C without addition of activators. By contrast, dissociation of C1 with formation of C1 IA-C1r-C1s-C1 IA was complete within 30 min at 37 degrees C, when the serum was treated with heat-aggregated IgG (1 g/liter). On size exclusion chromatography (TSK-4000), C1 IA-C1r-C1s and C1 IA-C1r-C1s-C1 IA emerged with apparent m.w. of 320,000 and 460,000, respectively. The composition of the complexes was examined by absorption of serum with F(ab')2 anti-C1s- or anti-C1r-coated Sepharose beads. Eluates were analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis combined with immunoblotting. Under nonreducing conditions, heat-aggregated IgG-treated serum showed high concentrations of C1 IA-C1r (m.w. 202,000) and C1 IA-C1s (m.w. 194,000), while serum incubated at 37 degrees C without activators showed high concentrations of C1 IA-C1r but no C1 IA-C1s. Under reducing conditions, heat-aggregated IgG-treated serum showed m.w. 120,000 and 110,000 complexes of C1 IA and the C1r and C1s light chains, respectively. Uncleaved C1s and the m.w. 120,000 complex was found in serum that was incubated at 37 degrees C without activators. Consistent with results obtained by size exclusion chromatography, analysis by crossed immunoelectrophoresis and by electroimmunoassay showed that C1s could be released from C1 IA-C1r-C1s in the presence of EDTA.
The esterase activity of the C1r subcomponent of the first component of complement has been investigated. C1r was found to hydrolyze two amino acid methyl esters; N-acetyl-L-arginine methyl ester and N-acetyl-glycyl-L-lysine methyl ester, and two amino acid p-nitrophenyl esters, N-carbobenzyloxy-L-tyrosine-p-nitrophenyl ester and N alpha-carbobenzyloxy-L-lysine-p-nitrophenyl ester. A detailed kinetic analysis of the hydrolysis of N-Z-L-Tyr-ONp by C1r revealed that the enzymatic activity per microgram of protein decreased as the C1r concentration was increased. The loss of activity suggested that above 0.5 micron C1r was undergoing aggregation with a loss of active sites. Similarly, when C1r was titrated with the active site titrant p-nitrophenyl-P'-guanidinobenzoate the number of titratable sites per milligram of protein decreased with increasing protein concentration. The hydrolysis of N-Z-L-Tyr-ONp by C1r was inhibited by several synthetic inhibitors including phenylmethanesulfonylfluoride, p-amidinophenylmethanesulfonylfluoride, diisopropylfluorophosphate, and p-tosyl-L-lysine-chloromethyl ketone. However, the peptide esterase inhibitors Trasylol, hirudin, leupeptin, and C1 esterase inhibitor had no effect on the esterase activity of C1r.