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Cytolytic effects of the complement cleavage product, C3a.

Purified C3a, a cleavage product of the third component of complement,was incubated with various cell types of human and mouse origin. All the tumour cell types tested were lysed by low concentrations of C3a, whereas normal human lymphocytes were relatively resistant. No lysis was produced by C3 or C3b. The possible role of C3a in immunity against tumours is discussed.

Animals

Macrophage secretion and the complement cleavage product C3a in the pathogenesis of infections by mycoplasmas and L-forms of bacteria and in immunity to these organisms.

Mouse peritoneal macrophages in culture exposed to Mycoplasma pulmonis show marked biochemical changes. This micro-organism induces the release of hydrolytic enzymes from macrophages. The release is time- and dose-dependent and is not associated with loss of the cytoplasmic enzyme lactate dehydrogenase or any other sign of cell death. Secretory products of macrophages may play a role in the pathogenesis of chronic inflammatory responses elicited by mycoplasma infections. One of the products of activated macrophages is the complement cleavage product C3a. Purified C3a was incubated with M. hominis, M. pulmonis, Proteus mirabilis and an L-phase variant of this organism. All mycoplasmas and the L-phase variant were lysed by low concentrations of C3a, whereas the bacterial form of Pr. mirabilis was resistant.

Animals

Human anaphylatoxin (C3a) from the third component of complement. Primary structure.

C3a anaphylatoxin is derived from the third component (C3) of the blood complement system. Selective proteolysis of C3 by activated proenzymes indigenous to blood generates the C3a fragment. Human C3a was isolated from inulin-activated serum containing 6-aminohexanoic acid, according to recently published procedures (Hugli, T. E., Vallota, E., and Müller-Eberhard, H. J. (1975) J. Biol. Chem. 250, 1472-1498). The human C3a fragment is a highly cationic molecule exhibiting an approximate molecular weight of 9000 and composed of 77 amino acid residues. It consists of a single polypeptide chain containing 8% cysteine and lacks both tryptophan and carbohydrate. A tentative primary structure for the human C3a molecule, deduced from overlapping peptides obtained after cyanogen bromide cleavage, tryptic and chymotryptic digestion, is: See article. Two cystelhylcysteine sequences were established at positions 22, 23 and 56, 57 in human C3a. The 6 half-cystine residues in C3a are all interconnected through three disulfide linkages intersecting in a disulfide knot. The functionally amino acid residues distributed among 14 residues at the COOH-terminal end of C3a. This unusually cationic COOH-terminal region of C3a is presumed to play an important role in the interaction of this protein molecule with cellular receptors. A comparison between the linear sequence of human C3a and the NH2-terminal sequences of light and heavy chains of human immunoglobulin indicates that limited identity exists.

Amino Acid Sequence

Synergism between inflammatory mediators in vivo. Induction of airway hyperresponsiveness to C3a in the guinea pig.

The complement anaphylatoxin C3a causes acute bronchoconstriction after intravenous infusion in guinea pigs. At doses of 6 to 600 micrograms/kg, the peptide causes significant and dose-dependent increases in resistance (RL) and decreases in dynamic compliance (Cdyn). Inhibition of serum carboxypeptidase N, the enzyme thought to be responsible for control of C3a activity in blood, by pretreating animals with DL-2-mercaptomethyl-3-guanidinoethylthiopropanoic acid (MGPA), resulted in a 4-fold potentiation of the response to 200 micrograms/kg C3a. Responses to lower C3a doses were not significantly affected. Pretreating animals intravenously with histamine prior to administration of C3a resulted in potentiation of C3a-induced bronchoconstriction at all doses tested, decreasing the amount of C3a required to double RL by 15-fold, from 110 to 7 micrograms/kg. The effect appears to be relatively specific for C3a since histamine pretreatment did not alter airway responsiveness to methacholine. Similarly, pretreatment with methacholine at a dose that caused an increase in RL comparable to histamine did not alter subsequent responses to C3a. Administration of capsaicin, under conditions that elicit acute release of endogenous substance P, also resulted in potentiation of C3a responses, to an extent similar to that observed for histamine. These data are consistent with an increase in pulmonary vascular permeability facilitating accessibility of C3a for its receptor to cause bronchoconstriction before it is inactivated by serum carboxypeptidase N. Further, when C3a is generated in the presence of histamine-and/or substance-P-releasing agents, it may be responsible for a greater fraction of altered pulmonary mechanics than has previously been appreciated.

Airway Resistance

Leukocyte aggregation response to quantitative plasma levels of C3a and C5a.

Granulocyte aggregation (GA) response has previously been described as a sensitive assay for complement activation in sepsis. Complement component C5a has been implicated as the plasma factor responsible for GA. The quantitative interaction of complement components C3a and C5a with GA, however, is not clearly defined. This study evaluates the relationship of GA responses to plasma levels of C5a and C3a in zymosan-activated plasma (ZAP). The C3a and C5a levels were measured by radioimmunoassay in serial dilutions of ZAP. Granulocyte aggregation responses of normal human leukocytes were determined for each ZAP dilution. The C5a levels in a 1:16 dilution of ZAP were higher than in normal plasma (22 +/- 7 vs 9 +/- 3 ng/mL), as were GA responses (24 +/- 1 vs 11 +/- 2 percentage of maximum light transmission). The C3a levels in a 1:8 dilution of ZAP are elevated above those of normal plasma (656 +/- 167 vs 411 +/- 29 ng/mL). Correlation coefficients were .9809 for C3a vs GA, .9788 for C5a vs G, and .9860 for C3a vs C5a. Complement components C3a and C5a are involved in GA in vitro. Granulocyte aggregometry can detect low levels of activated complement in ZAP but may not be specific for C5a. The relative contribution of C3a and C5a to observed GA is not clear from the data.

Cell Aggregation

Anaphylatoxin C3a peptide contracts human pulmonary vasculature.

Complement anaphylatoxin C3a C-terminus octapeptide Ala-Ala-Ala-Leu-Gly-Leu-Ala-Arg (C3apep) contracted both pulmonary artery (PA) and pulmonary vein (PV) in a dose-dependent manner over the concentration range of 0.1 micrograms/ml to 100 micrograms/ml with the latter having maximal contractile activity. Removal of the terminal arginine caused complete loss of activity of C3apep. Contractions consisted of an early and a sustained component with the latter component being much greater in PV than PA. The early component was inhibited by pretreatment of tissues with the cyclooxygenase inhibitor indomethacin, or the thromboxane synthase inhibitors dazoxiben or U63,557A. The sustained contractile component was inhibited by the leukotriene antagonist FPL55712 or the 5-lipoxygenase inhibitors U60,257 (Piriprost) or nordihydroguaiiararetic (NDGA). C3apep challenge of both PA and PV resulted in the generation of leukotriene C4. These results suggest that C3apep causes contraction of human pulmonary arteries and veins by the production of thromboxane A2 and leukotrienes.

Amino Acid Sequence

Prostaglandin and complement interaction in clinical acute respiratory failure.

This study investigated the interaction of plasma levels of circulating prostaglandins and activated complement in clinical acute respiratory failure (ARDS). Fifty patients at risk for ARDS were followed up for up to ten days. Arterial blood gases and plasma levels of complement components C3a and C5a, thromboxane B2 (TxB), and prostaglandin 6-keto-F1 alpha (PGI) and granulocyte aggregation (GA) were measured daily. Seventeen patients (34%) developed ARDS, with mortality of 41% vs 23% for patients without ARDS. Compared with patients without ARDS, the ARDS group had significantly increased plasma C3a (1,130 +/- 750 vs 636 +/- 368 ng/mL) and granulocyte aggregation (48 +/- 10 vs 17 +/- 4 percentage of the maximum light transmission [% max T]). Plasma C5a, TxB, or PGI did not change significantly with or without ARDS. No measured variable was significantly associated with mortality. Regression analysis revealed significant correlations between GA, TxB, PGI, and arterial oxygenation. Plasma C3a and GA are increased in ARDS, suggesting systemic complement activation. A complex series of interactions between the prostaglandins, complement, and GA appears to be involved in ARDS.

Acute Disease

The relationship of the chemotactic behavior of the complement-derived factors, C3a, C5a, and C567, and a bacterial chemotactic factor to their ability to activate the proesterase 1 of rabbit polymorphonuclear leukocytes.

The inhibition profiles obtained when a series of p-nitrophenyl ethyl alkylphosphonates and of p-nitrophenyl ethyl chloroalkylphosphonates were used to interfere with the chemotactic activity of polymorphonuclear leukocytes stimulated by C3a, C5a, and bacterial factor were the same as found previously when C567 was the chemotactic agent. This indicates that as in the chemotactic activity induced by C567, an obligatory step in the chemotaxis caused by C3a, C5a, and bacterial factor is the activation of proesterase 1 of the rabbit polymorphonuclear leukocyte. C5a and C3a activate proesterase 1 of peripheral blood polymophonuclear leukocytes as measured by the increase of acetyl DL-phenylalanine beta-naphthyl esterase activity. Attempts to detect in a like manner the proesterase 1 of the same leukocytes using bacterial factor under varying circumstances have consistently failed. It is concluded that bacterial factor, for unknown reasons, is unable to activate proesterase 1 to the same extent as the complement-derived chemotactic factors. The hypothesis of there being a quantitative difference in the ability of bacterial factor to activate proesterase 1 compared with the complement-derived factors explains the previous observations that bacterial factor can not deactivate to itself or to the complement-derived factors, although these latter factors can deactivate to themselves, to each other, and to the bacterial factor. The quantitative difference in the ability of bacterial factor to activate proesterase 1 compared to the complement-derived factors is also associated with and explains the finding that the maximal chemotactic activity attainable when bacterial factor is the chemotactic agent is distinctly less than that obtained using either C3a, C5a, or C567. These results indicate that the activation of proesterase 1 is a general requirement for the chemotactic activity of rabbit polymorphonuclear leukocytes with known macromolecular chemotactic agents and suggest that under several different circumstances the level of chemotactic activity attained is related to the degree of such activation.

Animals

Production of the complement cleavage product, C3a, by activated macrophages and its tumorolytic effects.

Mouse peritoneal macrophages were activated in serum-free culture with lipopolysaccharide, dextran sulphate or C3b. They were found to liberate into the culture medium a cytolytic factor and a factor which was pharmacologically indistinguishable from C3a. The cytolytic activity was neutralized by antiserum against C3a. These results suggest that macrophages can be activated by C3b (or agents that generate C3b) to cleave C3, which they themselves produce. In this way the activated macrophages form C3a, which appears to be a major factor in macrophage-mediated cytolysis. These findings have implications in tumour immunity and in the pathogenesis of inflammatory reactions.

Animals

Activation of the third complement component (C3) and C3a generation in cardiac anaphylaxis: histamine release and associated inotropic and chronotropic effects.

Activation of the complement system with generation of C3a and C5a anaphylatoxins occurs during immediate hypersensitivity reactions; furthermore, the administration of C3a and/or C5a into isolated hearts causes a dysfunction that closely resembles cardiac anaphylaxis. To determine whether complement is activated and anaphylatoxins are generated in the course of immediate hypersensitivity reactions of the heart, we have challenged presensitized isolated guinea pig atria and papillary muscles with the specific antigen in the presence of a source of complement. We have found that the anaphylactic reaction of these cardiac preparations is characterized by complement activation and C3a generation, as well as by histamine release and positive inotropic and chronotropic effects. The amounts of C3a generated and histamine released directly correlated with the extent of C3 consumption. Furthermore, when C3a and C5a inactivation by serum carboxypeptidase N was prevented by DL-2-mercapto-methyl-3-guanidino-ethylthiopropanoic acid, anaphylactic histamine release was enhanced, and chronotropic and inotropic responses were potentiated and prolonged. Notably, the administration of C3a to nonsensitized guinea pig atria and papillary muscles caused positive chronotropic and inotropic effects, which were associated with histamine release and were antagonized by the H2 receptor blocker cimetidine, thereby mimicking the effects of anaphylaxis. Our findings indicate that complement activation and anaphylatoxin generation are typical of cardiac anaphylaxis and suggest that anaphylatoxins function as mediator-modulators of immediate hypersensitivity reactions of the heart.

Anaphylaxis

Increase of glucose and lactate output and decrease of flow by human anaphylatoxin C3a but not C5a in perfused rat liver.

The complement fragments C3a and C5a were purified from zymosan-activated human serum by column chromatographic procedures after the bulk of the proteins had been removed by acidic polyethylene glycol precipitation. In the isolated in situ perfused rat liver C3a increased glucose and lactate output and reduced flow. Its effects were enhanced in the presence of the carboxypeptidase inhibitor DL-mercaptomethyl-3-guanidinoethylthio-propanoic acid (MERGETPA) and abolished by preincubation of the anaphylatoxin with carboxypeptidase B or with Fab fragments of an anti-C3a monoclonal antibody. The C3a effects were partially inhibited by the thromboxane antagonist BM13505. C5a had no effect. It is concluded that locally but not systemically produced C3a may play an important role in the regulation of local metabolism and hemodynamics during inflammatory processes in the liver.

Anaphylatoxins

Activation of complement by hemodialysis membranes: polyacrylonitrile binds more C3a than cuprophan.

Conventionally, complement activation by hemodialysis membranes has been determined by measuring fluid phase C3a. Based on such measurements, polyacrylonitrile (PAN) membranes have been classified as weak activators compared to cuprophan. Previous studies have demonstrated, however, that PAN adsorb fluid phase C3a. Based on that observation, we hypothesized that complement activation by PAN might be artifactually underestimated if relatively large amounts of C3a remained membrane bound. In the present study, a method that allows the simultaneous quantification of both fluid phase and membrane bound C3a was used to assess complement activation by PAN and cuprophan. Pieces of membrane were incubated with C3-depleted serum that had been repleted with radiolabeled C3. Subsequently, the supernates and membranes were subjected to SDS-PAGE, and complement activation was quantified by determining the radioactivity of the C3a bands in the gel. The results showed that while the serum exposed to cuprophan membranes contained almost five times more C3a than that exposed to PAN, approximately 80 times more C3a was bound to the PAN membranes. Consequently, the total amount of C3a generated in the presence of PAN was higher than that generated in the presence of cuprophan. We conclude that assessment of complement activation by hemodialysis membranes using fluid phase C3a measurements alone may be misleading.

Acrylic Resins

Demonstration of anaphylatoxins C3a, C4a and C5a in the scales of psoriasis and inflammatory pustular dermatoses.

Complement components C3a, C4a and C5a were assayed in corneal scale extracts from psoriasis and other dermatoses characterized by sterile subcorneal pustules, using radioimmunoassay. Larger amounts were detected in psoriasis and related pustular dermatoses than in extracts of non-inflammatory stratum corneum. It is concluded that complement is activated via the classical pathway and releases the neutrophil chemotactic fragment C5a.

Anaphylatoxins

Determination of the epitope specificities of monoclonal antibodies using unprocessed supernatants of hybridoma cultures.

A double monoclonal antibody (mAb) ELISA has been developed to determine the epitope specificities of murine monoclonal (mAbs). It permits the mAbs which bind to the same or adjacent epitopes to be distinguished from those which bind to separate epitopes on soluble monomeric proteins. The assay is designed for the early evaluation of mAbs in hybridoma culture supernatants when purified or labeled mAbs are not available. It does not rely on chemical or enzymatic fragmentation of the antigen and does not generate results which may be due to differences in the affinities of the mAbs. Moreover the characteristic multiple binding of polyclonal antibodies to the same epitope is also avoided. A further advantage is the accessibility of epitopes on a given antigen since the antigen is presented by a solid-phase mAb, in contrast to assays in which the antigen itself is adsorbed onto the solid phase. The test was evaluated using culture supernatants from hybridomas which produced mAbs against the complement proteins C3a, C6 or C7.

Animals

Functional analysis and quantification of the complement C3 derived anaphylatoxin C3a with a monoclonal antibody.

The C3 fragment C3a belongs to the anaphylatoxins. It has immune regulatory activity and contributes to the pathogenesis of the adult respiratory distress syndrome (ARDS). The low molecular weight (9 kD) of C3a complicates the production of antibodies to C3a. We obtained a monoclonal antibody (designated H13) to human C3a. It reacts with C3a or C3a-desArg and with native C3 but not with C5 or C5a. In immunoblot analysis it reacts with the alpha- but not with beta-chain of C3 and binds to a protein with a mol. wt of about 10 kD present in zymosan-activated sera which is only marginally detectable in nonactivated serum and absent in plasma. H13 crossreacts with the analogous proteins of rabbit, guinea pig and sheep. H13 has the capacity to bind 125I-radiolabelled C3a efficiently but fails totally to react with 125I-C5a or with other C3 alpha-chain fragments. H13 blocks C3a functional activity. It markedly inhibits C3a-induced 3H-serotonin release from platelets in vitro and similarly inhibits the C3a-induced extravasation of Evans blue into the skin in vivo. H13 does not interfere with the haemolytic activity of C3. An ELISA system was established using H13 which permits quantification of C3a in sera of polytrauma patients. The antibody H13 should facilitate further functional analysis of C3a in experimental systems. It should be useful for quantification of C3a in diagnostic assays and also for application in immunopathology.

Animals

Role of the N-terminal regions of hog C3a, C5a and C5a-desArg in their biological activities.

The N-terminal regions of the complement peptides C3a, C5a and C5a-desArg (purified from yeast-activated hog serum) were gradually shortened by incubation with leucine amino peptidase. This treatment led to the following changes in the biological activities of these peptides: the potencies of C5a and C5a-desArg in aggregation of human polymorphonuclear leukocytes and of guinea-pig platelets, and their ability to deactivate these cells were gradually diminished; the chemotactic effect of C5a-desArg on human leukocytes was similarly lowered, while the chemotactic potency of C5a was even increased up to the loss of the first 12 N-terminal amino acids. However, after removal of the whole N-terminal region (i.e. 20 amino acids distal of the first disulfide bridge) the potency of both peptides was decreased to a few percent. In contrast, C3a totally lost its platelet-aggregating as well as deactivating activity already after cleavage of 10-15 N-terminal amino acids by LAP. On leukocytes, on the other hand, C3a retained some activity even after the loss of the whole N-terminal region. These results indicate that the N-terminal regions play an important role for biological activities of the three complement peptides, possibly by stabilizing the optimal conformation of their C-terminal regions which contain the receptor-activating domains.

Animals

Interaction of prostaglandins, activated complement, and granulocytes in clinical sepsis and hypotension.

Activated complement, thromboxane A2, prostacyclin, and activated granulocytes have been implicated in hemodynamic dysfunction after trauma, in sepsis, and in hypovolemic and septic shock. This study evaluated the interaction of plasma concentrations of complement components C3a and C5a, thromboxane B2 (TxB), prostaglandin 6-keto-F1 alpha (PGI), and granulocyte aggregation in clinical sepsis and hypotension. Forty-eight critically ill patients were followed clinically for as long as 10 days. Plasma C3a, C5a, TxB, and PGI were measured daily by the radioimmunoassay method. Granulocyte aggregation, the percentage of maximum aggregation of zymosan-activated plasma standard curves, was performed with patient plasma and normal human leukocytes. Patients were studied in four groups: group I, nonseptic, normotensive; group II, hypovolemic shock, group III, normotensive severe sepsis; and group IV, septic shock. Plasma from 12 normal adults was the control value. PGI, TxB, C3a, C5a, and granulocyte aggregation in patients were greater than that in the control subjects. Granulocyte aggregation was increased in groups III and IV versus groups I and II. C3a was increased in group IV versus groups II and III. C5a and TxB did not vary between groups. PGI was greatly increased in group IV compared with groups I through III. C3a and C5a decreased in nonsurvivors. PaO2/FiO2 ratios correlated directly with PGI and inversely with C3a and TxB/PGI. Plasma PGI and C3a are increased in septic shock. C3a and TxB/PGI imbalances are involved in hypovolemic and septic shock.

Adolescent