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Reaction mechanisms of beta1H globulin.

The reaction mechanisms of beta1H were studied. The generation of alternative pathway C3 and C5 convertases on the cell surface as well as in the fluid phase was inhibited by beta1H globulin. The cell preparation bearing the C3b site could bind beta1H with little effect on the C3b hemolytic activity. Bound beta1H was dissociated by the action of C3bINA and C3bINA-treated C3b bearing cell did not bind beta1H anymore. Cell-bound beta1H was also dissociated by the action of B (or Bb). From these and other results, the following conclusions were obtained. The C3b site-bearing cell could bind beta1H on the C3c region of C3b molecules facilitating the C3bINA action on C3b, and beta1H shared the same binding site with B (or Bb) inhibiting the generation of the alternative pathway convertases competitively.

Beta-Globulins

Modulation of the classical pathway C3 convertase by plasma proteins C4 binding protein and C3b inactivator.

We recently described the isolation from human serum of a serum protein (C4 binding protein) that functions as an essential cofactor for C3b inactivator in the proteolysis of fluid-phase C4b and to a much lesser extent, C3b. We show here the role of C4 binding protein in the formation and function of the classical pathway C3 convertase (C42). C4 binding protein interferes with the assembly of the membrane-bound C3 convertase of the classical pathway and accelerates the decay of C42 in a dose-dependent fashion. Its removal from serum by means of specific immune absorption promotes the vigorous consumption of C3 after addition of C1; this effect is abolished by reconstitution with purified C4 binding protein. Although C4 binding protein inhibits the hemolytic function of cell-bound C4b, we did not detect any change in the structure of C4b even after prolonged incubations of EAC14 with C4 binding protein. For this reason, and on the basis of studies of the time required for maximal reactivity (Tmax) of cellular intermediates generated in the presence of C4 binding protein and limited amounts of C2, we conclude that the effects of C4 binding protein are probably mediated by displacing C2a from specific binding sites on C4b. In addition, C4 binding protein enhances the cleavage by C3b inactivator of the alpha' chain of cell-bound C4b. When EAC14 cells were incubated with both control proteins, the Tmax of the cells was prolonged and the lysis was markedly diminished. We conclude that C4 binding protein and C3b inactivator control the C3 convertase of the classical pathway in a fashion similar to that described for beta 1H and C3b inactivator in the alternative pathway.

Animals

Initiation of the alternative pathway of complement: recognition of activators by bound C3b and assembly of the entire pathway from six isolated proteins.

An intact alternative pathway of complement activation was assembled from six isolated proteins present at their respective physiological concentrations (C3, 1200 microgram/ml: factor B, 200 microgram/ml; factor D, 2 microgram/ml; beta1H, 560 microgram/ml; C3b inactivator, 34 microgram/ml; and native properdin, 20 microgram/ml). Initiation of the pathway required the presence of five of these proteins not including properdin. The initial C3 convertase of the system was shown to be a fluid-phase rather than a surface-bound enzyme. The ability of the pathway to discriminate between activator and nonactivator was found to reside in the bound C3b molecule. When bound to the surface of an activator through its labile binding site, C3b interacts with surface structures of the activator through another site on the molecule. This interaction results in diminished beta1H binding to C3b and thereby allows the bound C3b molecule to escape control and participate in C3 convertase formation. Thus, initiation of the alternative pathway is a two-step process, the first being non-specific and the second being discriminatory.

Binding Sites

Regulation of the amplification C3 convertase of human complement by an inhibitory protein isolated from human erythrocyte membrane.

An activity that is inhibitory to the properdin-stabilized amplification C3 convertase (C3b,Bb,P) was solubilized from human erythrocyte (E(hu)) membranes by Nonidet P-40 and purified to homogeneity. The inhibitory membrane glycoprotein had an apparent M(r) of 1-1.2x10(6) on gel filtration in the presence of Nonidet P-40. On sodium dodecyl sulfate/polyacrylamide gel electrophoresis it presented a single stained band with an apparent M(r) of 205,000, with or without prior reduction of disulfides. The inhibitory protein of the E(hu) membrane produced a dose-related, first-order decay of C3b,Bb,P function on sheep erythrocytes (E(s)) and released (125)I-labeled Bb from these sites, indicating a mechanism of inhibition by decay-dissociation of the amplification C3 convertase. The 50% inhibitory dose of the E(hu) membrane protein was not altered by removal of sialic acid from the E(s) bearing C3b,Bb,P sites. E(hu) membrane protein also serves as a cofactor for C3b inactivator-induced cleavage of the alpha polypeptide chain of C3b. Thus, the inhibitory membrane protein can abrogate the activity of amplification convertase sites that have formed and also can prevent generation of such sites by augmenting irreversible inactivation of C3b.Discrimination between cells by the alternative complement pathway occurs after initial deposition of C3b and is related to the modulation by surface constituents of the capacity of bound C3b to function as a subunit of the amplification C3 convertase. The existence in the E(hu) membrane of a protein that can impair the functions of membrane-bound C3b and C3b,Bb,P could represent a molecular basis for preventing inappropriate self-recognition.

Binding Sites

Regulation by membrane sialic acid of beta1H-dependent decay-dissociation of amplification C3 convertase of the alternative complement pathway.

Sheep erythrocytes in their native state did not activate the alternative complement pathway, as measured by lysis in dilutions of normal human serum containing [ethylenebis(oxyethylenenitrilo)] tetraacetic acid but acquired this capacity after membrane sialic acid residues had been removed (by sialidase) or modified (by NaIO(4)). Activation of the alternative pathway by sheep erythrocytes required removal or modification of at least 40% of the membrane sialic acid to reach threshold, and it increased proportionately when larger amounts of sialic acid had been affected. Studies with isolated proteins of the alternative pathway demonstrated that the altered erythrocyte membranes resembled natural activators in protecting bound C3b from inactivation by C3b inactivator and beta1H and protecting bound amplification C3 convertase (C3b,Bb) from decay-dissociation by beta1H. A 1% decrease in intact sialic acid was associated with a 1% decrease in beta1H activity in decay-dissociation of membrane bound C3b,Bb. Because removal of the C8 and C9 carbon atoms from the polyhydroxylated side chain of sialic acid by oxidation with NaIO(4) was functionally equivalent to removal of the entire sialic acid moiety, secondary effects of the latter reaction, such as diminution of the negative charge of the membrane or exposure of penultimate galactose residues, were not considered to be responsible for the altered activity of beta1H. These studies suggest that facilitation, by membrane sialic acid residues, of the interaction between bound C3b and beta1H is essential to prevent the particle from effectively activating the alternative pathway.

Animals

Temperature dependent activation of the alternate complement pathway by an IgG cryoglobulin.

A patient with chronic membranoproliferative glomerulonephritis is presented whose serum contains a monoclonal IgG3 cryoglobulin. The presence of persistent hypocomplementemia suggested the possibility that the cryoglobulin, upon cold-induced precipitation, was capable of activating the complement system. Because visible cryoprecipitation commenced in vitro at 30 degrees C, the patient's serum and normal serum had been added the isolated cryoglobulin were repeatedly cooled to 30 degrees C and rewarmed to 37 degrees C. This reproduction of the in vivo counterpart of blood circulating through an extremity exposed to the cold resulted in activation of C3-proactivator (properdin factor B), C3 cleavage, and a 78% reduction in total hemolytic complement. This study demonstrates that IgG is capable of activating complement via the alternate pathway and reveals a mechanism through which this can occur in vivo; namely, by means of temperature dependent polymerization. In addition, we postulate that episodic complement activation initiated by the cryoglobulin contributed to the development of glomerulonephritis in this patient.

Aged

Complement C3 convertase: cell surface restriction of beta1H control and generation of restriction on neuraminidase-treated cells.

The alternative or properdin pathway of complement is primarily controlled by the endopeptidase C3b inactivator (C3bINA) and the nonproteolytic glycoprotein beta1H. The molecular mechanisms of control were investigated by performing binding studies of radiolabeled complement proteins to C3b bearing sheep erythrocytes (E(S)C3b). C3b was found to have distinct binding sites for beta1H, C3bINA, Factor B, and properdin. beta1H binding increased C3bINA binding 30-fold, while Factor B binding prevented C3bINA action on C3b and was competitive with beta1H binding. Properdin binding, which facilitates Factor B interaction with C3b, had no effect on the beta1H and C3bINA sites. Activators such as rabbit erythrocytes (E(R)) have previously been shown to interfere with the effectiveness of the control by C3bINA and beta1H, thereby allowing unrestricted formation of C3 convertase. Such restriction of control does not occur on the surface of E(S), a nonactivator of the alternative pathway. On the basis of comparative binding studies, restriction of control is explained entirely by reduced binding of beta1H to E(R)C3b relative to E(S)C3b. Access of properdin, Factor B, C3bINA, and the Fab fragment of anti-C3 to the two cell types was unrestricted. Restriction of beta1H control could be generated on the surface of E(S) by removal of cell-surface sialic acid with neuraminidase (acylneuraminyl hydrolase; EC 3.2.1.18). This enzymatic treatment converted E(S) from a nonactivator to an activator of the alternative pathway.

Binding Sites

The properdin system: composition and function.

This article summarized the physicohemical data on the factors which compose the properdin system in guinea pig and man. The following other topics are discussed: (1) Activation of the properdin system; (2) Formation of the initiating and amplification C3 convertases; (3) Formation of the C5 convertase, and (4) Regulatory control mechanisms of the properdin system.

Animals

Further evidence for the antibody nature of C3 nephritic factor (C3NeF).

C3 nephritic factor (C3NeF), found in the sera of some patients with membranoproliferative glomerulonephritis, has been shown to be composed of two heavy and two light chains, like IgG; in addition it shares antigenic determinants with IgG. Purified C3NeF binds to the amplification convertase of complement, C3b,Bb, and thereby prevents decay of its C3-cleaving potential. The capability of C3NeF to bind to C3b,Bb was used as a means for purifying C3NeF to homogeneity. The investigation described in this report suggests that binding of C3NeF to C3b,Bb occurs via the Fab portion of the molecule. Pepsin treatment of eight C3NeF preparations resulted in an average loss of 76% of C3NeF functional activity. Papain treatment induced a loss of approximately 90%. The decrease in functional activity could be attributed to the accelerated rate of dissociation of 125I-F(ab')2 and 125I-Fab fragments from stabilized cell-bound C3b,Bb. The dissociation rate of 125I-F(ab')2 from C3b,Bb was comparable with the decay of the functional activity of C3b,Bb stabilized by F(ab')2 or Fab fragments of C3NeF. Although these results suggest that the stabilizing activity of C3NeF is mediated by the Fab portion of the molecule, it was found that the Fc portion also contributes to its functional activity.

Antibodies