Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Complement C8”

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 721 records · Page 40Linked to original sources

How complement kills E. coli. II. The apparent two-hit nature of the lethal event.

We have studied the nature of complement (C) action on red blood cells and E. coli with respect to the number of "hits" required for membrane damage. Our method of analysis involves adding various amounts of purified C7 or C8 to serum preparations immunochemically depleted of C7 or C8, respectively, in order to construct dose-response curves for the action of C's terminal complex. The shape of the dose-response curves reflects the single or multiple-hit nature of C action. Our method confirms that C acts on red cells by a 1-hit mechanism, whether measured by lysis or by the permeation of a small molecule. In contrast, we find with E. coli that C-mediated outer membrane damage, inner membrane damage, and killing all appear to require more than 1 hit. We have also discovered a property of E. coli that displays a nonlethal 1-hit response to C that is particularly useful in the analysis of multiple-hit dose-response curves. Simultaneous measurements of this single-hit phenomenon and the multiple-hit killing of E. coli allow us to make direct comparisons of the amount of C needed for each response. On the basis of the midpoints of the single and multiple-hit curves, C-mediated membrane damage and killing of E. coli appear to be a 2-hit process.

Animals↗

Time course studies on the initiation of complement activation in acute myocardial infarction induced by coronary artery ligation in rats.

This study attempted to probe the role of complement activation in promoting acute myocardial infarction (AMI) induced by coronary artery ligation (CAL) in rats. The surgical technique used in this study significantly reduced early mortality (95% survival rate) and also reduced the variation in infarct size (33+/-1.87%) at 32 h after surgery. Time course studies on the initiation of AMI at various time points were carried out using physiological, biochemical, histopathological and electron microscopical techniques. Serum markers and activities of lysosomal hydrolases were found to be significantly elevated at the 8th hour post ligation. Histological studies showed polymorphonuclear cells emigration and total coagulation necrosis. Transmission electron micrograph exhibited mild distortion of muscle fibres and mitochondrial rupture with disrupted cristae. Immunoblotting studies confirmed the presence of alpha2-macroglobulin which supported the inflammatory response at 8th h of post ligation. The initiation of the complement (C) activation was observed by the increase in the level of the soluble form of the membrane attack complex (sC5b-9) in serum and left ventricle. Immunoexpression studies confirmed the initiation of the terminal C activation as shown by the expression of C5, C6, C7, C8, C9 and sC5b-9 complex at the 8th h of AMI. This study conclusively demonstrated that initiation of the C activation was observed to be significant at the 8th h of AMI induced by CAL in rats.

Animals↗

The bovine complement system.

Methods were developed for titrating bovine C3b-inactivator, C2, C3 and C4 by non-hemolytic means, and for assaying by hemolysis all the components of the bovine classical complement system except C2. All components were detected at serum dilutions above 1:1000, and some at dilutions above 1:100,000. C1, C4, C5, C7 and C9 titers were very high in adult bovine serum, and C2 and C8 were relatively low. C1, C2, and C8 were quite heat-labile at 56 degrees C, and C7 was moderately so, while C3 amd C6 titers increased after heating due to inactivation of a heat-labile inhibitor. Fetal bovine serum contained approximately 1-3% of adult levels of conglutinin, C1 and C6, and 5-50% of adult levels of the remaining components except C3. C3 antigen was found, but C3 functional activity was undetectable in most fetal bovine sera, though present at low levels in a few.

Animals↗

Bacterial killing by complement. C9-mediated killing in the absence of C5b-8.

The ability of serum complement to kill Gram-negative bacteria requires assembly of the membrane attack complex (MAC) on the cell surface. The molecular events that lead to cell killing after MAC assembly are unknown. We have investigated the effect of C9 on bacterial survival in the presence and absence of its receptor, the C5b-8 complex, on the outer membrane. A fluorescence assay of the membrane potential across the inner bacterial membrane revealed that addition of C9 to cells bearing the performed C5b-8 complex caused a rapid and complete dissipation of the membrane potential. No fluorescence change was observed in serum-resistant strains of Escherichia coli. Addition of trypsin, after C9 was bound to C5b-8, did not rescue the cells from the lethal effects of C9. Furthermore, assays of cell killing kinetics and C9 binding indicate that formation of tubular poly(C9) is not required for killing. When C9 was introduced into the periplasmic space in the absence of its receptor by means of an osmotic shock procedure, cell killing occurred. Other proteins, such as C8 or serum albumin, were not toxic, and C9 was ineffective against two resistant strains. The results presented here and previously [Dankert & Esser (1986) Biochemistry 25, 1094-1100], when considered together, indicate that the 'lethal unit' in complement killing of some Gram-negative bacteria is a C9-derived product that acts by dissipation of cellular energy.

Blood Bactericidal Activity↗

[Hybrids of human and monkey adenoviruses (adeno-adeno hybrids) that can reproduce in monkey cells: biological and molecular genetic peculiarities].

A highly oncogenic monkey adenovirus SA7(C8) facilitates the reproduction of human adenovirus type 2 (Ad2) in monkey cells. Upon mixed infection of monkey cells with both viruses, these viruses recombine producing defective adeno-adeno hybrids Ad2C8 serologically identical to Ad2 and capable of assisting Ad2 to reproduce in monkey cells. Ad2C8 and Ad2 form an intercomplementary pair inseparable in monkey cells. Unlike oncogenic SA7(C8), Ad2C8 is a nononcogenic virus for hamsters but is able to induce tumor antigens of this virus (T and TSTA). Molecular genetic analysis of 68 clones of adeno-adeno hybrids revealed that the left part of their genome consists of Ad2 DNA, and the right part contains no less than 40% of the viral SA7(C8) genome where E2A, E3, and E4 genes are located. Apparently, the products of these genes contribute to the composition of adenoviral tumor antigens, while the E4 gene is involved in complementation of monkey and human adenoviruses and makes a contribution to host range determination of these viruses.

Adenoviridae Infections↗

Molecular composition of the tubular structure of the membrane attack complex of complement.

The composition of the tubular structure of the membrane attack complex of complement (MAC) which migrates as a high molecular weight band (Mr approximately 1.2- 1.3 X 10(6) upon sodium dodecyl sulfate, polyacrylamide gel electrophoresis under reducing conditions was analyzed and compared to the high molecular weight band (Mr approximately 1.1 X 10(6] of tubular poly(C9). The sodium dodecyl sulfate-resistant band of the MAC, designated MAC-poly(C9), is composed of C6, C7, C8 alpha-gamma, and poly(C9), in approximate molar ratios of the protomers of 1:1:1:10-18. This conclusion is based 1) on the results of the incorporation of labeled proteins into MAC-poly(C9); 2) on the immunostaining of MAC-poly(C9) with anti-C6, anti-C7, anti-C8 alpha-gamma, and anti-C9 and its lack of immunostaining with anti-C5 and anti-C8 beta; and 3) on the dissociation of MAC-poly(C9) to 1 mol of C6, C7, C8 alpha-gamma and 10 to 18 mol of C9 upon treatment with 8 M guanidine isothiocyanate. Ultrastructurally the sodium dodecyl sulfate-resistant poly(C9) tubule and MAC-poly(C9) tubule are indistinguishable, suggesting a similar ultrastructure of the C6, C7, C8 alpha-gamma, and C9 subunits in the MAC-poly(C9) tubule. Further analogies among these four proteins are their tendency to form disulfide-linked dimers. It is concluded that the transmembrane channel of the MAC is formed by a tubule in which C6, C7, C8 alpha-gamma are copolymerized with poly(C9), whereas the C5b and C8 beta subunits are not part of the tubule structure and may form the 170-A long appendage of the MAC. This appendage is dissociated upon boiling in sodium dodecyl sulfate whereas the tubule remains stable.

Complement Membrane Attack Complex↗

Mammalian X ray sensitive mutants: a tool for the elucidation of the cellular response to ionizing radiation.

The complexity of the cellular response to ionizing radiation is indicated by many complementation groups identified among mammalian cells sensitive to ionizing radiation. Genetic complementation analysis of these mutants has been based on cell fusion and complementation of cell killing by X ray, whereas complementation of RDS after gamma rays has led to false results among AT cell lines and could not also be used in rodent cells. Studies on the relationship between cell killing and RDS following gamma irradiation have indicated that (a) RDS is not responsible for cell killing and (b) DNA replication in response to gamma rays is controlled by several genes. Complementation groups established in rodent cell mutants have led to the identification of the gene function in several mutants, and remarkable progress has been made in the understanding of DSB repair and its involvement in V(D)J recombination. The remaining complementation groups of X ray sensitive mutants await the determination of the role of the defective genes in the pathways operating in mammalian cells against ionizing radiation. One group of rodent mutants seems to be defective in the gene homologous to the ATM gene, and so far no more human counterparts have been found among rodent mutants. Newly characterized mutants, V-C8 and UV40, showed combined features of several human disorders, suggesting that their defective gene products could be involved in several pathways handling the response to DNA damage.

Animals↗

The killer molecule of complement.

Cell injury by complement occurs as a consequence of activation of either the classical or the alternative pathway on the surface of a cell. It is accomplished by the membrane attack complex (MAC). Its precursor proteins, C5, C6, C7, C8, and C9, are hydrophilic glycoproteins with Mr ranging from 70,000-180,000. When C5 is cleaved by the serine protease C5 convertase which covalently attaches to target cells, nascent C5b is produced and forms together with C6 a soluble and stable bimolecular complex (C5b,6). Upon binding of C5b,6 to C7 a trimolecular complex (C5b-7) is formed which expresses a metastable membrane-binding site. Membrane-bound C5b-7 constitutes the receptor for C8 and the tetramolecular C5b-8 complex binds and polymerizes C9. During the assembly process the proteins undergo hydrophilic-amphiphilic transition and the end product consists of C5b-8 (Mr approximately 550,000) and of tubular poly C9 (Mr approximately 1,100,000). The functional channel size varies but its maximal diameter is approximately 100 A. C9 polymerization appears to involve initial reversible association of several C9 molecules which is followed by temperature-dependent, constrained unfolding. Unfolded C9 monomers then associate laterally with each other and polymerization terminates with closure of the circular structure which consists of 12-18 C9 monomers. Amino acid composition and sequence indicate that the N-terminal half of the single chain C9 molecule is hydrophilic and the C-terminal half rather hydrophobic. Phospholipid-binding and insertion into membranes are functions of the C-terminal portion of the molecule. Control of the MAC is exerted by the S-protein (Mr 80,000) which binds to the forming complex and prevents its attachment to the cell membrane. Control is also exerted by certain species-specific membrane proteins which interfere with C5 convertase and C9 function.

Binding Sites↗

Suppression of the anti-erythrocyte immune response in mice by the C5b--9 complex of complement.

The C5b--9 complex of complement associated with sheep erythrocyte membranes suppresses the immune response of mice to sheep erythrocytes as measured with the Jerne plaque technique. This type of immune suppression is independent of early complement components and antibody, and is mediated by both human and guinea-pig complement components. The degree of immune suppression correlates with the number of C5b--9 complexes per cell used for immunization: 21,000 C5b--9 complexes per erythrocyte lead to a 97% inhibition of the immune response in comparison to untreated erythrocytes. Inhibition requires the full assembly of the C5b--9 complex including C8 and C9. Virtually no inhibition was observed by the C5b--7 complex. C5b--9 and IgG-mediated immune suppression do not function additively. From dose-response experiments it is concluded that separate and mutually independent sites mediate suppression by C5b--9 and IgG, respectively.

Animals↗

Differential induction of hematopoiesis and immune suppressor cells in the bone marrow versus in the spleen by Lewis lung carcinoma variants.

Mice bearing large (greater than or equal to 3 g) metastatic and nonmetastatic Lewis lung carcinoma (LLC) tumors were studied to determine if the tumor variants differentially induced bone marrow versus splenic hematopoiesis and the appearance of hematopoiesis-associated immune suppressor cells. The metastatic LLC-C3 and nonmetastatic LLC-C8 tumors were equal in their stimulatory effects in vivo on both the number of bone marrow myeloid progenitor cells (CFU) and the appearance of bone marrow immune suppressor cells. In contrast, the tumor variants differed in their effects on the spleen, with the metastatic tumors causing a more pronounced increase in the number of nucleated cells and CFU, a reduced blastogenic responsiveness to concanavalin (Con-A), and an increased suppressor cell activity than nonmetastatic LLC-C8 tumors. The splenic suppressor cells of mice bearing large LLC-C3 tumors resembled the bone marrow suppressor cells which we previously described (Young et al.: Cancer Res. 47, 100, 1987) in that they were nonadherent to nylon wool, sensitive to treatment with L-leucine methyl ester, insensitive to treatment with complement and Thy-1.2, MG-1.2, asialo-GM1, or anti-IgM antibodies, and mediated their suppression through a mechanism which was only partially indomethacin sensitive. The stimulatory effects on hematopoiesis and suppressor cells by the LLC variant tumors may have been mediated by the tumor-derived colony stimulating factor (CSF) activities. Bone marrow cell proliferation and colony formation were stimulated in vitro by culture supernatants of metastatic LLC-C3 cells and, to a lesser degree, of nonmetastatic LLC-C8 cells. These colony-stimulating factor (CSF)-containing supernatants also induced normal bone marrow cells to become immune suppressive. In contrast, supernatants of only LLC-C3 cells, and not of LLC-C8 cells, stimulated in vitro growth of splenic CFU from LLC-C3-bearing mice; spleen cells from normal mice and from LLC-C8 bearers were unresponsive to supernatants of the LLC variants. These results suggest that CSF produced by either the metastatic LLC-C3 or the nonmetastatic LLC-C8 tumors could concurrently stimulate bone marrow hematopoiesis and the appearance of bone marrow suppressor cells. However, the metastatic LLC-C3 tumor cells, and not the nonmetastatic LLC-C8 cells, could also cause expansion of progenitor cells and hematopoiesis to the spleen and, consequently, induce the appearance in the spleen of hematopoiesis-associated immune suppressor cells.

Animals↗

Regulatory control of complement on blood platelets. Modulation of platelet procoagulant responses by a membrane inhibitor of the C5b-9 complex.

Antibody against a membrane inhibitor of the C5b-9 complex has been used to investigate regulatory control of the terminal complement proteins on blood platelets. Monospecific rabbit antibody (alpha-P18) was raised against the purified 18-kDa erythrocyte membrane inhibitor of C5b-9 (Sugita, Y., Nakano, Y., and Tomita, M. (1988) J. Biochem. (Tokyo) 104, 633-637). In addition to its interaction with erythrocytes, this antibody (and its Fab) bound specifically to platelet membranes. In immunoblots of cell membrane proteins prepared under non-reducing conditions, alpha-P18 bound specifically to an 18-kDa erythrocyte membrane protein and to a 37-kDa platelet membrane protein. Absorption of this antibody by platelet membranes competed its binding to the purified 18-kDa erythrocyte protein, suggesting that epitopes expressed by the erythrocyte 18-kDa C5b-9 inhibitor are common to the platelet. When bound to the platelet surface, the Fab of alpha-P18 increased C9 activation by membrane C5b-8, monitored by exposure of a complex-dependent C9 neo-epitope. Although alpha-P18 caused little increase in the cytolysis of platelets treated with C5b-9 (total release of lactate dehydrogenase less than 5%), it markedly increased the cell stimulatory responses induced by these complement proteins, including, secretion from platelet alpha- and dense granules, conformational activation of cell surface GP IIb-IIIa, release of membrane microparticles from the platelet surface, and exposure of new membrane binding sites for components of the prothrombinase enzyme complex. Prior incubation of C5b67 platelets with 100 micrograms/ml alpha-P18 (Fab) lowered by approximately 10-fold the half-maximal concentration of C8 required to elicit each of these responses (in the presence of excess C9). Incubation with alpha-P18 (Fab) alone did not activate platelets, nor did incubation with this antibody potentiate the stimulatory responses of platelets exposed to other agonists. These data indicate that a membrane inhibitor of the C5b-9 complex normally serves to attenuate the procoagulant responses of blood platelets exposed to activated complement proteins, and suggest the mechanism by which a deletion or inactivation of this cell surface component would increase the risk of vascular thrombosis.

Blood Platelets↗

gp72, the 72 kilodalton glycoprotein, is the membrane acceptor site for C3 on Trypanosoma cruzi epimastigotes.

We examined the interaction of complement component C3 with surface molecules on Trypanosoma cruzi. Five- to six-fold more C3 was bound to epimastigotes (Epi) than to metacyclic trypomastigotes (CMT) of strain M88. Epi and CMT were surface iodinated, then incubated in C8-deficient serum, and detergent lysates were applied to anti-C3 antibody that had been coupled to Sepharose. We found that 9.20-10.24% of applied 125I-Epi protein bound to anti-C3-sepharose, compared to 2.64% binding of 125I-CMT protein. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis showed that C3 was attached to 125I-Epi protein by a covalent bond. Samples eluted from anti-C3-sepharose with hydroxylamine revealed a single, major, 72 kD band, suggesting that C3b attaches almost exclusively to the 72 kD glycoprotein of Epi by a hydroxylamine-susceptible ester bond. An antiserum was prepared from lysates of serum-treated Epi that had been affinity-purified on anti-C3-sepharose. This antiserum immunoprecipitated a single 72 kD component (gp72) from surface-iodinated Epi, and specifically recognized only gp72 from Epi in immunoblots. In contrast to the results with Epi, gp72 on CMT was not found to be an efficient acceptor molecule for C3 deposition. The results are the first to evaluate the acceptor site for C3 deposition on a parasite, and they show that gp72 on Epi, but not gp72 on CMT, serves as the preferential acceptor for C3 during antibody-independent alternative complement pathway activation.

Adult↗

Complement lysis of U937, a nucleated mammalian cell line in the absence of C9: effect of C9 on C5b-8 mediated cell lysis.

Previous studies have demonstrated that in general, nucleated cells are more resistant to killing by serum complement than are erythrocytes. During studies aimed at defining the mechanisms of nucleated cell resistance, we found that the human histiocytic cell line U937 was easily lysed by homologous serum. U937 cells were also killed by serum depleted of C9, but not by serum depleted of C8, implying that the C5b-8 complex was sufficient to cause lysis of these cells. Enumeration of complexes on the cell surface demonstrated that approximately 40-fold more complexes were required to lyse U937 cells in the absence of C9 than in the presence of an excess of C9. Examination of the effects of small amounts of C9 on lysis of U937 cells by the C5b-8 complex demonstrated that at very low doses, C9 inhibited C5b-8 mediated lysis. The use of radiolabeled anti-C8 antibody showed that C5b-8 complexes were eliminated from the surface of U937 cells at 37 degrees C, and C9 at the dose causing inhibition of lysis accelerated the elimination of complexes. These results suggest that the increased lytic potential resulting from binding of small amounts of C9 to C5b-8 complexes is outweighed by enhanced elimination of complexes resulting in decreased cell death.

Cell Line↗

Resistance of cytolytic lymphocytes to perforin-mediated killing. Lack of correlation with complement-associated homologous species restriction.

CTL and NK cells resist self-mediated killing and lysis by their own pore-forming protein (PFP; perforin). Perforin, like C, lyses RBC. Efficient C-mediated lysis of RBC occurs when both C and RBC are from different species (homologous species restriction). A protective surface protein (C8-binding protein, homologous restriction factor) has been reported to mediate both homologous species restriction in C-dependent cytolysis and protection of some target cells against perforin-induced lysis. We show here that perforin, unlike C, lyses target cells across a variety of species, including the homologous one, while the same target cell populations resist the attack by homologous C. Perforin-containing extracts of CTL and LAK/NK cells from three species (rat, mouse, and human) and purified mouse perforin were tested against RBC from 10 different species, several nucleated target cell lines, and one primary cell population (thymocytes). While resisting lysis by homologous C, most of these cell types were lysed effectively by perforin without any homologous restriction pattern. CTL and NK cells, like other nucleated targets, are resistant to lysis by homologous but not heterologous C; however, these cell types are resistant to both homologous and heterologous perforin. Together, our results suggest that the protective mechanisms associated with C- and perforin-mediated lysis are distinct.

Animals↗

Nonimmunologic complement activation in normal human serum induced by radiographic contrast media.

Two different radiographic contrast media (RCM), iothalamate and iodipamide, induced the activation of several complement (C) components in normal, genetically C2-deficient and agammaglobulinemic human sera in vitro. This activation was dose dependent and demonstrable by a reduction in whole C as well as C4, C2, C3, and C5 hemolytic activities. C6, C8, and C9 hemolytic activities were unaffected. Concommitant with the loss of C3 hemolytic activity was the appearance of C3 proteolytic cleavage products that were identified by immunoelectrophoresis. Both the loss of C3 hemolytic activity and the production of C3 fragments occurred in the presence of 10 mM EDTA, indicating RCM-induced C3 cleavage occurred without participation of the multicomponent C3/C5 convertases of either the classical or alternative C pathways. Furthermore, loss of C3 hemolytic activity was not due to the direct alteration of the C3 molecule by RCM because purified C3 was unaffected upon incubation with RCM at a concentration that induced 80% reduction in the C3 hemolytic activity in normal human serum. Serum samples obtained from 40 patients, before and 30 min after undergoing i.v. pyelography, revealed no significant change in total hemolytic C activity; 34 patients received sodium and methylglucamine diatrizoate and six received sodium iothalamate. Hemolytic C3 levels were also determined for the six patients before and 30 min after administration of sodium iothalamate and no significant change in activity was detectable.

Agammaglobulinemia↗

On the mechanism of membrane damage by C: exposure of hydrophobic sites on activated C proteins.

In previous papers we have presented evidence that peptides from C proteins C5b, C7, C8, and C9 become inserted in the lipid bilayer membranes and form a transmembrane channel. Presumably, this insertion follows exposure of hydrophobic domains by C activation. In the present experiments liposomes were made with 14C-phosphatidyl choline (PC) and Forssman antigen in the bilayer, and with 86Rb+ in the aqueous compartments. When such liposomes were incubated with anti-Forssman antibody (A) and guinea pig serum (GPS) as a source of C, substantially more 14C-PC and 86Rb+ were released than from liposomes treated with A and C4-deficient GPS, or with A and heated C, or with C alone, or with A alone. The specific release of PC was dependent on the dose of C. Prior treatment of GPS with cobra venom factor abolished its capacity to release PC. The release of PC by A and C7-deficient human serum (C7D-HS) was the same as that of GPS alone, i.e., there was no specific release. A and C8D-HS produced much less specific release than A and GPS; addition of purified guinea pig C7 or C8 to C7D-HS or C8D-HS, respectively, restored the PC release to its full extent. Hence, part of the PC removal is mediated by C5b,6,7; the remainder is attributable to C8 and/or C9.

Animals↗

Synergistic inhibition of human cell-mediated cytotoxicity by complement component antisera indicates that target cell lysis may result from an enzymatic cascade involving granzymes and perforin.

A widely accepted theory of lymphocyte-mediated cytotoxicity (CMC) proposes that upon effector cell (EC) and target cell (TC) interaction, release of perforin, serine proteases and other lytic moieties contained within cytoplasmic granules results in TC lysis. Complement activation and the activation of the various enzymatic activities associated with cytotoxic granules have strikingly similar modes of action and both lead to pore formation in their respective targets. We report here that by using antisera to early and late complement components we were able to inhibit CTL, NK and ADCC cytotoxicity up to 100%, even though binding of EC to TC was unaffected. Furthermore, we showed that addition of C1q or C1s (two serine proteases) antisera to C9 antisera, at titers too low to inhibit separately, resulted in synergistic inhibition of CMC. Anti-C1s together with anti-C1q (or anti-C8 with anti-C9) did not result in synergy. This finding supports a cascade model of activation for lytic molecules released from EC. In addition, we demonstrated that anti-C1q and anti-C1s bind to proteins in the 30-kD region and anti-C9 binds to proteins in the 70-kD region, coinciding with published molecular weights of granzymes and perforin, respectively. Finally, lytic ability of purified granules was also inhibited by complement antisera, further suggesting that activation occurs outside of TC. Taken as a whole, these data indicate that TC lysis may be the result of a cascade of events involving granzymes and perforin, analogous to that seen with the complement system.

Antibodies, Monoclonal↗

The membrane attack mechanism of complement. Isolation and subunit composition of the C5b-9 complex.

Isolation of the C5b-9 complex from inulin-activated whole human serum was effected by molecular sieve column chromatography employing Biogel A-15 M, preparative Pevikon block electrophoresis, and removal of low density beta-lipoproteins by flotation in CsCl. The final product was homogeneous upon cellulose acetate strip electrophoresis and analytical ultracentrifugation. Ouchterlony analyses indicated that the complex reacted with antisera to C5, C6, C7, C8, and C9 to form a continuous, circular precipitin line without spurs. The C5b-9 complex was dissociated by sodium dodecyl sulfate (SDS) in the absence of reducing agents, and analytical SDS-polyacrylamide gel electrophoresis revealed seven protein bands after straining with Coomassie Blue. Bands 1, 2, 3, and 6 were identified as C5b, C7, C6, and C9, respectively. Bands 4 and 7 were identified as two noncovalently bound subunits of C8. Molar ratios among C5b, C6, C7, C8, and C9 dissociated from the complex by SDS were estimated to be 1:1:1:1:3. Band 5 protein, which had an estimated mol wt of 88,000 and was found to occur with a molar ratio of 3, has not yet been identified. Its nature and possible biological functions are discussed.

Animals↗