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Role of C1q and C1q receptors in the pathogenesis of systemic lupus erythematosus.

The association between C1q and autoimmune diseases such as rheumatoid arthritis and systemic lupus erythematosus (SLE) is well established. Deficiency in C1q is considered to be a strong susceptibility factor and is corroborated by the fact that > or = 92% of the known cases of hereditary deficiency in C1q develop rheumatic disease. Furthermore, the observation of the presence of high-affinity autoantibodies against C1q antibodies in patients with SLE provides a strong correlation between these antibodies and the inflammatory processes that occur in this disease. Recent evidence using C1q-deficient mice has shown the presence of glomerulonephritis with immune deposits and a large number of apoptotic bodies in the diseased glomeruli suggesting a defect in the clearance of apoptotic cell by macrophages and dendritic cells (DCs). Although these data are consistent with the hypothesis that C1q deficiency may induce a generalized failure to clear immune complexes and apoptotic cells, this concept alone cannot wholly explain why individuals with C1q deficiency are prone to develop SLE. Therefore, C1q alone or in conjunction with other surface molecules must play a much more fundamental role in immunoregulation, especially those processes that regulate T cell function and tolerance. In support of this hypothesis is the finding that C1q causes inhibition of mitrogen-induced T cell-proliferative response by interaction with C1q receptors. Furthermore, macrophages and possibly DCs not only synthesize but also display C1q as a type II cell surface molecule, especially at sites of inflammation. Although it is not yet known what role the surface-expressed C1q plays, it is tempting to assume that it plays a role in the priming of naïve T cells by DCs. This work will review the current concepts of the role of C1q and C1q receptors in autoimmunity.

Animals↗

Serum complement components in patients with trachoma.

Serum C1q, C3, C4, and C5 components of complement levels were measured in 56 healthy subjects and 98 patients with trachoma. Serum C1q and C3 levels were found to be significantly low in stages II and III. There was no change in serum C4 and C5 levels in any of the stages. The levels of C1q and C3 complement components in serum in stages II and III returned to normal as the disease resolved following the medical treatment.

Adult↗

Characterization of the binding of purified human C1q to heart mitochondrial membranes.

The binding of purified, radioiodinated human C1q to baboon heart mitochondrial membranes was investigated. The interaction of C1q with heart mitochondrial membranes was shown to be readily saturable, specific for C1q, and reversible upon addition of unlabeled C1q or increasing salt concentrations. Scatchard plots of the binding data were biphasic and yielded association constants on the order of 1 X 10(10) and 1 X 10(9) M-1 and binding capacities of approximately 0.16 and 0.24 nmol of C1q/mg of mitochondrial protein. The binding of C1q to isolated cardiac-derived mitochondrial membranes is implicated in the antibody-independent activation of the classical complement pathway by cellular membranes.

Animals↗

Atypical structured glomerular deposits: an immunohistochemical study.

Atypical structured glomerular deposits were identified in sub-epithelial, sub-endothelial and mesangial areas in biopsy tissue from a female, aged 33, who presented with anaemia and was found to have proteinuria and microscopic haematuria. Histological examination showed that the deposits were periodic acid Schiff positive and silver negative whilst stains for amyloid were negative. Immunofluorescent staining for all immunoglobulins was negative, and only C3 showed moderate labelling. Conventional electron microscopy revealed that all deposits contained microtubular structures of variable length but with an average diameter of 25 nm and a periodicity of approximately 16 nm. The glomerular basement membrane was interrupted in many areas by deposits, and also contained 'myelin-like' structures. Free microtubular structures were also seen in the urinary space. Immunoelectron microscopy using protein-A-gold confirmed the immunofluorescent findings with immunoglobulins and fibrinogen, showed marked positive labelling of deposits with C1s and C3d and also intense labelling of coiled microtubular structures with C9. Other complement components C1q, C1r, C3c, C4 and C5 showed weak or negative results. Although these organised glomerular deposits contain complement components, their pathogenesis remains uncertain.

Adult↗

Adherence of monocytes and polymorphonuclear cells to infective larvae of Strongyloides stercoralis after complement activation.

The activation of the complement system by living Strongyloides stercoralis filariform larvae and their antigenic preparation was demonstrated in vitro through both classical and alternative pathways. This activation does not require the presence of specific antibodies but promotes the adhesion of peripheral blood monocytes (MNC) and polymorphonuclear cells (PMNC) to the larval surface. Larvae, totally coated by PMNC, showed a visible loss of motility after 2 hr incubation. Ethylenediamine tetraacetic acid, in contrast to ethylene glycol-bis beta-aminoethylether N,N,N,N-tetraacetic acid, abolished the adherence activity, suggesting the involvement of the alternative pathway in this process. Deposition of complement components C1q, C3, C4, C8, and properdin on the larval surface was demonstrated by immunofluorescence assays. In addition, complement activation by the larvae was demonstrated through C3 conversion and C4 cleavage assays, both depending on the number of larvae. On the other hand, complement activation by S. stercoralis antigen was determined by factor B and C4 cleavage, as well as C3 conversion assays. Our results suggest that the complement system as a first line of defense, in association with the effector cells, plays an important role in the nonspecific immune response of the host to S. stercoralis infection, especially considering the constant parasite recycling through the host tissues.

Animals↗

The C1q receptor.

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Amino Acids↗

Monoclonal antibodies to complement components without the need of their prior purification. I. Antibodies to mouse C1q.

Rat monoclonal antibodies (MAbs) reactive with mouse complement subcomponent C1q were raised applying a principle that requires minute amounts of serum and circumvents purification of serum-derived C1q. The principle involves a) using the high affinity of certain cell-bound antibody isotypes for intercalating C1q from serum of various species, b) selecting such antibodies as are syngeneic to the immunized animal species, thus avoiding the production of antibodies against the intercalating antibodies and c) screening for the anti-C1q MAb in microtiter plates coated with C1q-intercalating MAb isotypes that are heterogeneic to the immunized animal species. We could establish 3 MAbs of IgM subclass, whose reactivity to mouse C1q was shown by ELISA techniques. One of them (RmC13C9) crossreacted with human C1q and was shown by SDS-PAGE and subsequent immunoblotting to recognize the C-chain of mouse and human C1q. The other two MAbs are directed against SDS-sensitive epitopes on mouse C1q and were, therefore, further characterized by native agarose gel electrophoresis and immunohistochemical studies.

Animals↗

The C1q-binding cell membrane proteins cC1q-R and gC1q-R are released from activated cells: subcellular distribution and immunochemical characterization.

Two types of widely coexpressed cell surface C1q-binding proteins (C1q-R): a 60-kDa calreticulin-homolog which binds to the collagen-like "stalk" of C1q and a 33-kDa protein with affinity for the globular "heads" of the molecule, have been described. In this report, we show that the two molecules are also secreted by Raji cells and peripheral blood lymphocytes and can be isolated in soluble form from serum-free culture supernatant by HPLC purification using a Mono-Q column. The two purified soluble proteins had immunochemical and physical characteristics similar to their membrane counterparts in that both bound to intact C1q and to their respective C1q ligands, cC1q and gC1q. In addition, N-terminal amino acid sequence analyses of the soluble cC1q-R and gC1q-R were found to be identical to the reported sequences of the respective membrane-isolated proteins. Ligand blot analyses using biotinylated membrane or soluble cC1q-R and gC1q-R showed that both bind to the denatured and nondenatured A-chain and moderately to the C-chain of C1q. Moreover, like their membrane counterparts, the soluble proteins were found to inhibit serum C1q hemolytic activity. Although cC1q-R was released when both peripheral blood lymphocytes and Raji cells were incubated in phosphate-buffered saline for 1 hr under tissue culture conditions, gC1q-R was releasable only from Raji cells, suggesting that perhaps activation or transformation leading to immortalization is required for gC1q-R release. Subcellular fractionation of Raji cells and analyses by enzyme-linked immunosorbent assay and Western blotting showed that the two molecules are present in the cytosolic fractions as well as on the membrane. The data suggest that soluble forms of both C1q-binding molecules are released from cells and that these molecules may play important roles in vivo as regulators of complement activation.

Amino Acid Sequence↗

Immunologic alterations associated with chronic hemodialysis.

Parameters of humoral immunity were studied in 18 patients with chronic renal failure undergoing hemodialysis. IgG, IgA and IgM serum levels presented no differences compared with healthy donors. High immunoglobulins levels were found in 40 patients with chronic renal failure and conservative treatment. Complement components C1q, C4, C9, were normal, but C3 and C3A were significantly low prior to dialysis. During hemodialysis, the complement system showed an activation by the alternative pathway (AP). The cuprophan membrane was proved to be an important factor in this activation. The circulating immune complexes (CIC) were also high. Seven patients presented autoantibodies, 2 against smooth muscle and 5 against gastric parietal cells. Our results suggested a certain humoral immune alteration during chronic hemodialysis.

Antibody Formation↗

Isolation and characterization of C1q, a subcomponent of the first component of complement, from human and rabbit sera.

1. C1q, a subcomponent of the first component of complement, has been isolated, in a haemolytically active and soluble form, by ion-exchange chromatography and gel filtration, from human and rabbit sera. Yields ranged from 10 to 25mg/litre of serum and the activity of final preparations was consistently in the range 5x10(3)-15x10(3) C1qH(50) units/mg. 2. The molecular weights of human and rabbit subcomponent C1q were 409600 and 417600, as determined by sedimentation equilibrium studies. 3. Subcomponent C1q from both species was shown to be composed of non-covalently linked subunits of approximately 57000 molecular weight as determined by gel-filtration or sedimentation equilibrium studies in 5.3m-guanidinium chloride. Reduction or oxidation of human and rabbit subcomponent C1q yielded three chains each having a molecular weight of approximately 23000 and which differed slightly in amino acid composition but markedly in carbohydrate content. The oxidized chains were separated, on a preparative scale, by ion-exchange chromatography in 8m-urea on DEAE-cellulose. 4. Both human and rabbit subcomponent C1q contained hydroxyproline, hydroxylysine, a high percentage of glycine and approximately 8% carbohydrate. Glutamic acid and aspartic acid were the free N-terminal amino acids of human subcomponent C1q whereas only serine was found in rabbit subcomponent C1q. 5. Collagenase digestion of human or rabbit subcomponent C1q caused a rapid loss of haemolytic activity which correlated with the breakdown of collagenous regions in the molecule.

Amino Acids↗

Herpes simplex virus type 1 and 2 glycoprotein C prevents complement-mediated neutralization induced by natural immunoglobulin M antibody.

Glycoprotein C (gC) of herpes simplex virus type 1 (HSV-1) and type 2 (HSV-2) binds complement component C3b and protects virus from complement-mediated neutralization. Differences in complement interacting domains exist between gC of HSV-1 (gC1) and HSV-2 (gC2), since the amino terminus of gC1 blocks complement C5 from binding to C3b, while gC2 fails to interfere with this activity. We previously reported that neutralization of HSV-1 gC-null virus by HSV antibody-negative human serum requires activation of C5 but not of downstream components of the classical complement pathway. In this report, we evaluated whether activation of C5 is sufficient to neutralize HSV-2 gC-null virus, or whether formation of the membrane attack complex by C6 to C9 is required for neutralization. We found that activation of the classical complement pathway up to C5 was sufficient to neutralize HSV-2 gC-null virus by HSV antibody-negative human serum. We evaluated the mechanisms by which complement activation occurred in seronegative human serum. Interestingly, natural immunoglobulin M antibodies bound to virus, which triggered activation of C1q and the classical complement pathway. HSV antibody-negative sera obtained from four individuals differed over an approximately 10-fold range in their potency for complement-mediated virus neutralization. These findings indicate that humans differ in the ability of their innate immune systems to neutralize HSV-1 or HSV-2 gC-null virus and that a critical function of gC1 and gC2 is to prevent C5 activation.

Animals↗