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Neutron scattering study of the (gamma-B) catalytic domains of complement proteases activated C1r and C1s.

The catalytic domains of activated C1r and C1s, comprising the C-terminal region of the A chain (gamma), disulphide-linked to the B chain, were obtained by limited proteolysis of the native proteases with chymotrypsin and plasmin, respectively, and studied by small angle neutron scattering. For activated C1s (gamma-B), a molar mass of 45,000 +/- 5000 g/mol, and a relatively large radius of gyration (Rg) of 28 +/- 1 A were determined, excluding a single globular domain. The corresponding values for activated C1r (gamma-B)2 (90,000 g/mol, Rg = 34 +/- 1 A) are consistent with a dimer involving the loose packing of two (gamma-B) subunits. Various models of the dimer are discussed in the light of neutron scattering and other data.

Chymotrypsin↗

Baculovirus-mediated trans-epithelial transport of proteins in infected caterpillars.

Baculovirus-mediated abnormal protein trafficking was studied in infected caterpillars by using heterologous proteins. The gene for human complement C1r was expressed in larvae of Mamestra brassicae by a recombinant Autographa californica nuclear polyhedrosis virus (AcMNPV) vector. By following the time-course of recombinant C1r distribution among various tissues, cell types and cell organelles, we concluded that the dominant site of recombinant protein synthesis was the fat body, although some production in the haemocytes and midgut was also observed. Only about 4% of the cells of the infected organs expressed recombinant C1r, which was then secreted into the haemolymph. The tracheal and integumental cuticle was rich in recombinant protein from the fourth day after infection although epidermal cells did not synthesize recombinant C1r. The morphological picture suggested that the accumulation was a consequence of a trans-epithelial transport. This transport process was checked by following the fate of the 49 kDa haemolymph protein and injected ovalbumin in AcMNPV-infected Mamestra brassicae and in Lymantria dispar nuclear polyhedrosis virus-infected Lymantria dispar larvae. Both proteins were able to pass the basal membrane of the epidermis and accumulated in the cuticle, while in control larvae neither was transported. The observed trans-epithelial transport points to the role of baculoviruses in directing recombinant, endo- and exo-genous proteins to cuticulated tissues. Based on these results we conclude that the permeability of basal membranes undergoes a characteristic change during the course of baculovirus infection.

Animals↗

Lack of activation of C1, despite circulating immune complexes detected by two C1q methods, in patients with rheumatoid arthritis.

The activation of C1 by circulating immune complexes in patients with rheumatoid arthritis was investigated. C1rC1s(C1-In)2 complexes in EDTA-plasma, reflecting C1 activation in vivo, were slightly raised in 35 of 57 patients with rheumatoid arthritis, though most patients had elevated levels of circulating immune complexes as measured with either the 125I-C1q binding test or the C1q solid phase assay. The activation of C1 by circulating immune complexes in vitro was investigated by measuring the generation of C1rC1s(C1-In)2 complexes during 60 minutes at 37 degrees C in diluted recalcified EDTA-plasma. In 16 of the 57 patients, a slightly increased C1 activation in vitro was observed. These patients tended to have high levels of circulating immune complexes. However, the majority of the patients with high levels of circulating immune complexes showed a normal C1 activation in vitro. Therefore, it was concluded that measurement of circulating immune complexes by either of the two C1q methods in patients with rheumatoid arthritis does not imply that these circulating immune complexes are able to activate C1.

Aged↗

Antibody density on rat red cells determines the rate of activation of the complement component C1.

It is a common observation that there is variability in the rate of activation of C1, the first component of complement, when bound to immune complexes. The cause of this variation has been investigated with experiments designed to assess separately the effect of antibody, antigen and C1 density. Using 125I-labeled C1 and a rat monoclonal antibody specific for the class I antigen, it has been found that the rate of activation is primarily dependent on antibody density on the cell surface and not on antigen or C1 density. This finding supports the suggestion that direct contact between the C1r2C1s2 subcomponent of C1 and antibody may be required for potentiation of C1 activation.

Animals↗

Improved method for measuring C1-r-C1-s-(C1 inh)2 complexes by an enzyme-linked immunosorbent assay.

Measurement of C1-r-C1-s-(C1 inh)2 complexes in serum or plasma by enzyme-linked immunosorbent assay (ELISA) has been proposed as a relatively convenient and sensitive means for assessing C1 activation. However, interference by unactivated C1q (r-s)2 at low serum or plasma dilutions has resulted in estimates that vary widely with the degree of serum or plasma dilution. Precipitating the interfering C1q (r-s)2 with 6% polyethylene glycol has been proposed to resolve this problem, but here it is shown that this procedure also precipitates or coprecipitates some of the C1-r-C1-s-(C1 inh)2 complexes. Satisfactory results have been achieved without PEG precipitation by testing high plasma dilutions under conditions where there is a sufficient excess of anti-C1s coating the microtitration plate wells that removal of C1q (r-s)2 is not necessary. Optimizing conditions for quantitating these complexes at high dilution have been investigated. The mean normal EDTA plasma C1-r-C1-s-(C1 inh)2 complex measurement was 36.6 +/- 7.0 (S.D.) ELISA units with a 95% confidence interval of 19.5-47.6u. Besides providing a sensitive assay for C1 activation, measuring C1-r-C1-s-(C1 inh)2 complexes may help to clarify the pathophysiologic mechanisms resulting from C1 inh deficiency under various conditions.

Adult↗

A newly discovered function for C1 inhibitor, removal of the entire C1qr2s2 complex from immobilized human IgG subclasses.

A new function for C1 inhibitor (C1 INH) is reported. C1 inhibitor dislodged the entire activated C1 complex (C1qr2s2) from immobilized human IgG. C1 binding to doses of immobilized human IgG3, IgG1, or IgG2 was quantified as a function of time. When human serum, as a source of C1qr2s2, was added to relatively low doses of immobilized IgG, C1q binding peaked at 1.0 min then gradually decreased. However when purified C1q was applied to immobilized IgG, C1q binding did not diminish with time. The removal of C1q was duplicated by adding purified C1 INH to C1qr2s2 which had been bound to immobilized IgG. The dislodgement of C1q from immobilized IgG required the presence of intact C1qr2s2 and of C1 INH. This removal of C1q by purified C1 INH was prevented when activated C1s was used to neutralize C1 INH function or when relatively high levels of IgG were immobilized.

Binding, Competitive↗

The first component of human complement (C1): activation and control.

The first component of human complement (C1) is a 750 000 dalton glycoprotein that requires calcium or other specific metal ions to maintain its native structure and function. Under physiologic conditions, C1 comprises two weakly interacting subunits, C1q and C1r2s2, with C1q containing the binding site(s) for activators and C1r2s2 possessing enzymatic potential. C1 circulates in a precursor state and only after "activation" does it acquire functional activity, manifested as enzymatic activity specific for its natural substrates C2 and C4. C1 activation, which is accompanied by limited proteolysis and conformational changes, can be induced by immune complexes or certain nonimmune substances. With C1 binding to an immune complex, the strength of interaction between C1q and C1r2s2 increases. C1 also spontaneously activates at 37 degrees C by an intramolecular autocatalytic mechanism although at a slower rate than that induced by activators. C1 functions are controlled by the serum glycoprotein C1-inhibitor (C1-In) which blocks the enzymatic activities of activated C1 (C1). Under physiologic conditions, C1 has a half-life of only 13 seconds in the presence of C1-In. C1 is efficiently disassembled by C1-In, thereby releasing two inactive C1rC1s(C1-In)2 complexes per C1 molecule, leaving C1q activator-bound with biologically reactive sites uncovered that are not expressed in macromolecular C1. The most recently recognized function of C1-In is that of controlling the C1 activation process itself. While having only limited effect on immune complex-induced C1 activation, C1-In effectively controls certain nonimmune-induced as well as spontaneous C1 activation. Thus C1-In plays an important role in regulating nonspecific complement activation. The latter observation is relevant for the understanding of the human disease hereditary angioedema. An overabundance of spontaneous C1 autoactivation, due to low C1-In levels, might underlie the abnormal activation of complement via the classical pathway detected in the sera of these patients. Finally, recent studies indicate that C1 may have other important biologic functions in addition to initiating the complement cascade.

Angioedema↗

Subunit interactions in the first component of complement, C1.

Interactions between C1q and other subunits of C1 were analyzed by sucrose gradient ultracentrifugation. A zone of dilute, radioiodine labelled C1q was sedimented through uniform concentrations of either C1r2C1s2, C1r2, C1r2 or C1s(2). The dissociation constants were found to be 3 x 10(-9) M and 6 x 10(-9) M for C1r2C1s2 and C1r2 binding respectively. Hill coefficients of 1 indicated no cooperativity in these bindings. Positive cooperativity was found in binding of C1s to C1q. Dissociation constants of 2 x 10(-6) M and 5 x 10(-8) M were obtained form computer modelling of a two step binding mechanism. No interaction was detected between C1q and activated C1r2. The data indicate that most of the interactions between C1q and C1r2C1s2 originates from a strong binding to the C1r2 moiety of the zymogen complex. This interaction is lost upon activation of C1r2.

Binding Sites↗

Neutron scattering studies of subcomponent C1q of first component C1 of human complement and its association with subunit C1r2C1s2 within C1.

Neutron scattering studies are reported on subcomponent C1q of component C1 of human complement, and on C1, the complex of C1q with subunit C1r2C1s2. For C1q, the molecular weight was determined as 460,000. The radius of gyration at infinite contrast RC is 12.8 nm. The RC values for the proteolytically cleaved forms of C1q, namely the heads and the stalks, are 1.5 to 2 nm and 11 nm, respectively, and thus the axis-to-arm angle of C1q is estimated at 45 degrees. Neutron data for subunit C1r2C1s2 are published elsewhere. The neutron data on C1 lead to an RC value of 12.6 nm for proenzymic C1 and a molecular weight of 820,000. The wide-angle scattering curve of C1q exhibits a minimum at Q = 0.28 nm-1 and a maximum at 0.39 nm-1; on the addition of C1r2C1s2, this minimum disappears. The neutron data on C1 indicate that C1q and C1r2C1s2 have complexed with a large conformational change in one or both parts. No conformational changes can be detected on the activation of C1 by this method.

Complement Activating Enzymes↗

Complement activation occurs through both classical and alternative pathways prior to onset and resolution of adult respiratory distress syndrome.

We have previously reported that plasma concentrations of the terminal complement (C) complex (TCC), C5b-9, increased significantly 2 days prior to onset of adult respiratory distress syndrome (ARDS) and also 1 day preceding its resolution. To determine the pathway of complement activation that preceded development and resolution of this acute inflammatory lung injury in septic patients, we quantified the C1rC1s-C1 inhibitor complex and the C3bP complex, which are generated following activation of classical and alternative complement pathways, respectively. Two days prior to diagnosis of ARDS, the plasma C1rC1s-C1 inhibitor complex and C3bP complex levels increased 22 and 14%, respectively. Furthermore, significant correlations were identified between concentrations of the TCC and C1rC1s-C1 inhibitor complex (r = 0.73, P = 0.003) and also with the levels of the TCC and C3bP complex (r = 0.81, P = 0.002) before onset of ARDS. Equally of interest, the C1rC1s-C1 inhibitor complex and C3bP complex concentrations increased 68 and 35%, respectively, 1 day before resolution of ARDS. Similarly, significant elevations of TCC concentrations preceding resolution of ARDS correlated with C1rC1s-C1 inhibitor complex (r = 0.66, P = 0.02) and also with C3bP complex (r = 0.72, P = 0.002) levels. Our results indicate that both the classical and alternative complement pathways are activated prior to onset of ARDS and also before its resolution in septic patients.

Complement Activating Enzymes↗