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Regulation of the alternative pathway of complement by pH.

Paroxysmal nocturnal hemoglobinuria (PNH) is an acquired hemolytic anemia. The abnormal PNH erythrocytes are highly susceptible to complement-mediated lysis in vitro, especially at pH 6.4. Lysis has been shown to be due to alternative pathway activation. The purpose of this study was to determine why lysis of PNH erythrocytes is increased at acidic pH. The results presented demonstrate that at pH 6.4: binding of C5 and Factor B to C3b deposited on human erythrocytes is markedly enhanced; generation of the two C3 convertases, C3(H2O), Bb and C3b,Bb is increased; and control of C3b on human erythrocytes by CR1 and Factor I is diminished. In addition, it was found that rabbit erythrocytes, which activate the human alternative pathway, are also lysed much better at pH 6.4 than at pH 7.4. These results indicate that the optimal pH for the initiation and amplification of the alternative complement pathway, and probably also for the activation of the membrane attack complex, is 6.4.

Complement Activation↗

Synthesis and regulation of the two human complement C4 genes in stable transfected mouse fibroblasts.

The major histocompatibility complex-linked human complement C4 genes are highly homologous in primary structure but give rise to products which differ in complement-activating function. In order to examine the synthesis, function, and regulation of these two genes independently, cloned C4A and C4B genes were transfected into mouse fibroblast L-cells. In the stable transfected cell lines, C4A and C4B are synthesized, undergo a complex series of post-translational modifications, and each functions appropriately in activation of the classical complement pathway. A marked difference in the kinetics of complement component C1-mediated cleavage of the C4A- and C4B-alpha chains was demonstrated in the transfectants and may contribute to the differences in the intrinsic functional activity of the two C4 isotypes. In contrast to the expression of other complement genes which are affected during the hepatic "acute phase response" (factor B, C3), the expression of C4 was not regulated by interleukin-1 or tumor necrosis factor. Interferon-gamma, however, mediated a dose- and time-dependent increase in the expression of the C4 genes. Moreover, interferon had a significantly greater and longer-lasting effect on the synthesis of C4A than that of C4B. Differences in the expression and regulation of these two genes provide insight into the control of complement activation during inflammation.

Animals↗

[C-reactive protein: general review and role in the study of infections].

Known since 1930, C-reactive protein is, as serum amyloid P component its similar, part of acute phase response proteins. Its principals properties are short half-life (6-8 h), great (within 6 hours) and high (X500) rate after injury. It activates the classical complement pathway, leading further to bacterial opsonization. Different biological methods for measurement are described: both nephelometric laser method, most sensible, and agglutination-latex method, most simple and quickest, are chosen. Studies showed us that CRP value is interesting for diagnosis of bacterial infections: among them neonates infections, peri-partum infections, meningitis, pyelonephritis, pancreatitis or peritonitis. CRP value determination seems to be useful also to hold on with patients who keep infectious peril, as in post chirurgical following, neutropenic induced patients. It seemed to be no use for CRP measurement in grafts following. Its rate in inflammatory diseases or myocardial infarcts is just mentioned. The author precognize more determinations of CRP: in emergency laboratories for diagnosis of bacterial infections (agglutination latex method) and in "routine" to follow up the infectious peril.

Bacterial Infections↗

Interferon-gamma is a major regulator of C1-inhibitor synthesis by human blood monocytes.

C1 inhibitor (C1INH) is the major control factor for the activation of the classical pathway of complement and for contact system activation. Hepatocytes and blood monocytes are known to synthesize this protease inhibitor. We studied the regulation of monocyte C1INH production by mediators that are generated during inflammatory responses. Purified blood monocytes spontaneously synthesized and secreted C1INH only after prolonged culture. In the presence of interferon (IFN)-gamma, C1INH was detectable within 24 hr and continued to be released at high levels throughout an 8-day culture period. Monocyte C1INH was newly synthesized and was functionally active as determined by forming stable complex with C1s. Other monocyte stimuli were either less potent (IFN-alpha, IFN-beta) or not capable of increasing C1INH release (lipopolysaccharide, interleukin 1, and tumor necrosis factor). The second component of complement, C2, was induced by IFN-gamma to a similar extent as C1INH. These findings demonstrate that IFN-gamma is a major regulator of monocyte C1INH production and may warrant consideration of IFN-gamma in the treatment of C1INH deficiency states.

Cells, Cultured↗

Interactions of Mycobacterium lepraemurium with resident peritoneal macrophages; phagocytosis and stimulation of the oxidative burst.

Live Mycobacterium lepraemurium or 60Co-gamma-irradiated organisms stimulated a very weak oxidative burst compared with similar numbers of heat-killed organisms or with live M. microti. This was found to reflect the poor uptake of the living organisms rather than an absolute failure to stimulate an oxidative burst. It is possible, however, that phagocytosis of fewer than 3-4 bacteria may not trigger the respiratory burst. Pre-incubating live M. lepraemurium with sera from infected mice, but not with fresh normal mouse sera, resulted in enhanced phagocytosis with a concomitant increase in the oxidative burst. The level of opsonic activity correlated with the M. lepraemurium specific antibody titres. The opsonic activity appeared to be mediated by antigen-antibody activation of the classical complement pathway as heat-inactivation destroyed the activity.

Animals↗

Serum susceptibility of bovine pasteurellas.

In this study, the serum sensitivity of 23 P. haemolytica isolates and 18 P. multocida isolates was determined by incubating dilutions of bacteria with equal volumes of fresh or heat-inactivated bovine serum for one, two, or three hours. Clinical isolates of both Pasteurella species were resistant to serum, whereas isolates from asymptomatic cattle varied in serum susceptibility. The classical pathway of complement appeared to be the principal means of complement mediated killing as detected by incubation in the presence or absence of EGTA-MgCl2. Lyzozyme and iron saturation of serum did not greatly affect serum susceptibility with either of the Pasteurella species.

Animals↗

Restriction of cell lysis by homologous complement: I. An analysis of membrane attack complex formation on target membranes.

The hemolytic efficiency and binding of C9 to homologous and heterologous erythrocytes was evaluated by using a standardized passive sensitization procedure to prepare antigen- and antibody-coated erythrocytes (EA) and human serum for lysis. Heterologous bovine EA were readily lysed by human serum, whereas human EA were quite resistant to lysis. Human EA bound as many C8 and C9 molecules per cell as bovine EA when incubated under identical conditions, but four times as much bound C9 was required to lyse an equal number of human EA compared with bovine EA. The susceptibility of human erythrocytes did not increase when increased volumes of undiluted human serum were used although C9 binding increased to as much as 100,000 molecules per cell. Sodium dodecyl sulfate-resistant polymerized C9 (poly(C9)) was detected on both lysed ghosts and unlysed EA bearing complement proteins C1 through C9 (EAC1-9) after incubation with undiluted human serum; however, the ratio of poly(C9) to monomeric C9 was higher on unlysed cells than on ghosts. Although bovine and human EA bound equal amounts of human C9 at the end point, the rate of lysis and C9 uptake was slower on homologous cells. The rate-limiting step occurred before C9 binding and lysis because the rates of lysis and C9 binding were equal on homologous and heterologous EAC1-8 targets, but the extent of lysis of homologous cells was still lower than lysis of heterologous cells. Human erythrocytes lose restriction against homologous hemolysis during storage in autologous plasma or in isotonic buffers.

Animals↗

Restriction of cell lysis by homologous complement: II. Protection of erythrocytes against lysis by newly activated complement.

Our previous work revealed that homologous complement (C) was ineffective in lysing antibody-sensitized erythrocytes (EA) even at high concentrations. It was also shown that activation of complement on homologous EA resulted in the binding of C9 and the formation of EA bearing complement proteins C1 through C9 (EAC1-9), yet few hemolytic sites were formed. Instead, as shown here, the formation of homologous EAC1-9 caused the cells to become resistant to lysis even by heterologous complement during a second incubation. In contrast, when homologous EAC1-8 were produced by incubating EA with C9-depleted serum, such intermediates were not protected against lysis by heterologous complement during a second incubation. Furthermore, homologous C9 on EAC1-9 was able to reduce the hemolytic efficiency of heterologous complement without blocking C activation and the formation of new C5b-9 complexes. Protection was not modified when homologous EAC1-9 were produced in one step, by incubation of EA with serum, or sequentially by adding C9 to EAC1-8. The minimum number of 9-sites required to confer a protective effect on EAC1-9 was less than 200 per cell. Thus, in addition to its known effect in heterologous cell killing, homologous C9 is capable of protecting homologous cells against inadvertent complement lysis.

Ammonia↗