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Complement component C3 is not required for full expression of immune complex glomerulonephritis in MRL/lpr mice.

Complement activation and tissue deposition of complement fragments occur during disease progression in lupus nephritis. Genetic deficiency of some complement components (e.g., Factor B) and infusion of complement inhibitors (e.g., Crry, anti-C5 Ab) protect against inflammatory renal disease. Paradoxically, genetic deficiencies of early components of the classical complement pathway (e.g., C1q, C4, and C2) are associated with an increased incidence of lupus in humans and lupus-like disease in murine knockout strains. Complement protein C3 is the converging point for activation of all three complement pathways and thus plays a critical role in biologic processes mediated by complement activation. To define the role of C3 in lupus nephritis, mice rendered C3 deficient by targeted deletion were backcrossed for eight generations to MRL/lpr mice, a mouse strain that spontaneously develops lupus-like disease. We derived homozygous knockout (C3(-/-)), heterozygous (C3(+/-)), and C3 wild-type (C3(+/+)) MRL/lpr mice. Serum levels of autoantibodies and circulating immune complexes were similar among the three groups. However, there was earlier and significantly greater albuminuria in the C3(-/-) mice compared with the other two groups. Glomerular IgG deposition was also significantly greater in the C3(-/-) mice than in the other two groups, although overall pathologic renal scores were similar. These results indicate that C3 and/or activation of C3 is not required for full expression of immune complex renal disease in MRL/lpr mice and may in fact play a beneficial role via clearance of immune complexes.

Albuminuria↗

[Relationship between complement activation and reactive oxygen species generation in inflammatory response].

OBJECTIVE: To verify the proposed activation feedback mechanism between complement and polymorphonuclear leukocytes(PMN) derived reactive oxygen species(ROS). METHODS: In vitro tests were designed to identify the activation feedback process by alternative activations of complement by inulin or PMNs by 12-O-tetradecanoylphorbol-13-acetate(TPA) in the test medium in consisting serum complement and isolated PMNs, with chemiluminescence technique to determine the production of ROS and complement fixation trial for complement activations. RESULTS: Evidently that activated complement could activate PMNs to release ROS which further activated complement, so the activating feedback cycle was set. CONCLUSIONS: The complement and PMNs-ROS activation feedback cycle mechanism was recognized. It was expected to serve for delineating the regulation of inflammatory response.

Animals↗

Intermediate and long-acting insulin preparations without protamine sulphate are complement activators in vitro.

Recently, we have documented an abnormal in vivo complement metabolism in Type 1 diabetic children treated with monocomponent porcine insulin Monotard MC and its correction after switch-over to human insulin Protaphane HM. This prompted us to investigate the ability of different kinds of insulin preparations to induce complement activation in vitro. Freshly collected serum samples from healthy blood donors were incubated with commercial rapid and intermediate or long-acting (by protamine sulphate (PS) or zinc) insulin preparations for 2 hours at 37 degrees C. The C3d content of the supernatants was measured by turbidimetry as a marker of C3 complement fraction consumption. Only long-acting preparations of insulins without protamine sulphate were associated with highly significant increased levels of C3d, whatever the source of insulin, animal or human. Moreover, addition of exogenous protamine sulphate was able to inhibit the C3 conversion. This effect was dose-dependent and peaked at the concentration of commercial NPH insulin preparations. The mechanism by which protamine sulphate inhibits complement activation in vitro could be related to its ability to interfere with the physical nature of the solid surfaces presented by the insulin crystals. Indeed, insulin crystals were rapidly cleared (< 5 min) in the incubated serum when small doses of protamine sulphate were added. The complement activating capacity of long-acting insulin without protamine was dose dependent, equivalent to the known complement activator Zymosan, and abolished in the presence of EDTA. In conclusion, the present study has documented the ability of some protracted insulin preparations to activate the complement system in vitro if they are devoided of protamine sulphate. On the other hand, short-acting and NPH insulins are not complement activators.

Animals↗

Platelet-complement interactions in mesangial proliferative nephritis in the rat.

Complement has been reported to mediate mesangiolysis and glomerular hypercellularity in the rat in a model of glomerulonephritis (GN) induced with anti-Thy 1 antibody. To investigate the mechanism for the complement-mediated hypercellularity, the authors first determined if the effect of complement depletion was to inhibit cell proliferation or whether the effect was primarily to inhibit leukocyte infiltration. Rats depleted of complement with cobra venom factor (CVF) had 1) significantly less mesangiolysis than controls at day 5 (0.6 +/- 0.1 versus 3.4 +/- 0.4, scale 0-4+, P less than 0.001); 2) less cell proliferation, as assessed by immunostaining for the proliferating cell nuclear antigen (PCNA)/cyclin, a cell-cycle-dependent antigen (0.5 +/- 0.1 versus 2.4 +/- 0.7 cells/glomerular cross-section, P less than 0.01); and 3) less leukocyte infiltration as assessed by immunohistochemical labeling (0.6 +/- 0.1 versus 1.9 +/- 0.3 cells/glomerular cross-section, P less than 0.01). Because it was reported recently that platelets also mediate glomerular cell proliferation in this model, this study examined whether the mechanism for complement-mediated cell proliferation involved an effect on glomerular platelet localization. The glomerular uptake of 111In-labeled platelets was quantitated in normal and CVF-treated rats at 1, 4, 12, and 24 hours after induction of GN. Rats with anti-Thy 1 GN had substantial glomerular accumulation of platelets at all times studied, peaking at 4 hours (608 +/- 171 platelets per glomerulus). Complement depletion profoundly reduced glomerular platelet localization in anti-Thy 1 GN (mean less than 35 platelets per glomerulus at all times studied, P less than 0.05). Thus these studies demonstrate an important role for complement in mediating platelet localization in anti-Thy 1 GN, an effect that may account for the complement-dependent, neutrophil-independent glomerular hypercellularity in this model.

Animals↗

Complement activation induces the expression of decay-accelerating factor on human mesangial cells.

In the present study we evaluated the effect of complement activation by immune complexes (IC) on the expression of decay-accelerating factor (DAF) on human mesangial cells (MC). MC in culture were incubated with an Ag (DNP-Gelatin) that binds to fibronectin present in the MC matrix. Subsequently, MC were incubated with anti-DNP antibodies in the presence of human serum. By immunoperoxidase staining we showed that these incubations resulted in IC formation and deposition of human C3 and terminal complement components (C5b-9) on the mesangial matrix and on the surface of MC. By immunoperoxidase staining and by RIA we showed that IC formation and complement activation significantly increased DAF expression on the MC plasma membrane. The induction of DAF expression was a consequence of deposition of terminal complement components on the MC because, zymosan-activated serum and IC formation in the presence of C5- or C8-deficient serum failed to increase MC DAF expression. Furthermore, the observed increased DAF expression was the consequence of increased DAF synthesis by MC. Thus, both cycloheximide and actinomycin D blocked the increase on MC DAF observed after incubation with IC and serum. MC DAF had biophysical and functional characteristics similar to DAF in other cells. Thus, 1) MC DAF was resistant to trypsin but was removed from the MC membrane by pronase; 2) phosphatidylinositol-specific phospholipase C removed 48 +/- 4% of MC DAF indicating that MC DAF is anchored in the cell membrane by phosphatidylinositol groups; 3) DAF isolated from MC-inhibited complement-mediated hemolysis and demonstrated a molecular mass of 83 kDa. In conclusion, deposition of terminal complement components on human MC trigger new synthesis and membrane expression of DAF. Because DAF protects cells against complement-mediated lysis, we postulate that DAF may protect glomerular cells during IC and complement-mediated glomerulonephritis.

CD55 Antigens↗

Mononuclear phagocyte system function in BALB/c mice: kinetic analysis of antibody-sensitized erythrocyte clearance in complement-depleted animals.

The mechanisms of immune clearance in normal BALB/c mice were studied by kinetic analysis of the clearance of immunoglobulin-sensitized red blood cells. A rate equation, derived from a model for the clearance of sensitized cells, was used to quantitate four rate constants regulating the individual rate-determining steps in the overall clearance process. A linear relationship was demonstrated between the level of antibody sensitization and constants regulating complement-dependent sequestration (k1), deactivation and release of cells back into the circulation (k2), complement-dependent phagocytosis (k4), and Fc-mediated sequestration and phagocytosis (k3). Clearance rate constants did not change with age in either female or male mice; nor was there a significant difference between the mean values in female versus male mice. The validity of the model was tested by altering serum complement levels to determine whether the predicted changes in complement-dependent rate constants k1, k2, and k4 would occur. Depletion of serum complement by cobra venom factor resulted in a significant decrease in complement-dependent sequestration (k1) and phagocytosis (k4) (p less than 0.001) but had no significant effect on Fc-mediated clearance function (k3). As serum complement was replenished, a greater-than-normal percentage of red blood cells sequestered by the complement clearance pathway underwent phagocytosis (k4) rather than being deactivated and released back into the circulation (k2). Demonstration that the derived rate constants are predictably sensitive to manipulation of a major clearance factor increases the confidence in using this technique and model to study immune clearance in experimental and naturally occurring disease states.

Age Factors↗

[Lysis of leukemia cells with a monoclonal antibody-cocktail (e.g. VIP-pool) and human complement].

During the lysis of leukemic cells with a monoclonal antibody cocktail (the so-called VIB pool) and complement the attempt was made to replace rabbit serum as a complement source by human serum. For identifying the lysis of leukemic cells the complement-dependent in vitro cytotoxicity test was used and for excluding stem cell toxicity the CFU-c test according to PIKE and ROBINSON. In combination with the applied monoclonal antibody pool against B and c-ALL the human complement could be shown to be suitable to produce a lysis in the same manner as rabbit complement. Similarly to the pretested rabbit serum the treatment with the human complement had no impact on stem cell recovery. An optimal cytotoxic activity (95% against ALL blasts of patients, 100% against NALM) could be identified up to an antibody dilution of 1:32 with a volume percentage of 50% of human complement, an incubation temperature of at least 37 degrees C and an incubation time of 30 mins. With proved high reactivity against leukemic cells and lacking impairment of the haemopoietic power of the bone-marrow, this method can be recommended for "purging" protocol with the possibility of using human serum as a source of complement having advantages as far as clinical application is concerned.

Animals↗

Complement-mediated, antibody-dependent enhancement of HIV-1 infection in vitro is characterized by increased protein and RNA syntheses and infectious virus release.

Antibody-dependent enhancement (ADE) of human immunodeficiency virus type 1 (HIV-1) infection in vitro has been described recently and was shown to occur by two mechanisms: either participation of the alternative pathway of complement or to involve an Fc receptor-mediated, complement-independent mechanism. Complement-mediated ADE results in an accelerated cytopathic effect in target cells that can abrogate the protective properties of neutralizing antibodies. This study characterizes the surface antigens of MT-2 cells using flow cytometric analysis and shows that these cells express high levels of both CD4 and complement receptor type 2 (CR2) while several CD4+ cell lines that do not demonstrate complement-mediated ADE lack high levels of complement receptors. Further, utilizing MT-2 cell cultures, it is demonstrated that complement-mediated ADE of HIV-1 infection is conferred by the sera from more than 80% of HIV-1 antibody-positive individuals (N = 85). Complement-mediated ADE of HIV-1 infection causes an acceleration of several parameters indicative of HIV-1 infection in vitro including increased HIV-1 antigen synthesis as detected by indirect immunofluorescence, RNA accumulation as measured by a solution hybridization protocol, reverse transcriptase release, and progeny virus production.

Cell Line↗

Doxorubicin enhances complement susceptibility of human melanoma cells by extracellular oxygen radical formation.

In two recent publications we showed that rapid inactivation of cell-bound C3b is a protective mechanism of human melanoma cells against killing by the R24 monoclonal antibody and human complement (Panneerselvam, M., Welt, S., Old, L.J., and Vogel, C.-W. (1986) J. Immunol. 136, 2534-2541) and that this protective mechanism can be inhibited by both the free and immobilized anthracycline glycoside doxorubicin (adriamycin) resulting in an enhanced complement susceptibility (Panneerselvam, M., Bredehorst, R., and Vogel, C.-W. (1986) Proc. Natl. Acad. Sci. U.S.A. 83, 9144-9148). In this paper we show that the complement enhancing effect of both free and immobilized doxorubicin is caused by the generation of reactive oxygen species including superoxide anion radical, hydrogen peroxide, and hydroxyl radical. The complement-enhancing effect of the anthracyclines can be completely inhibited by the reactive oxygen scavengers superoxide dismutase, catalase, and dimethyl sulfoxide. Consistent with this observation, 5-iminodaunorubicin, an anthracycline glycoside with an imine-substituted quinone moiety and, therefore, with a significantly reduced ability to form oxygen radicals, did not cause an enhanced-complement susceptibility. The complement-enhancing effect of the anthracycline glycosides could also be inhibited by bivalent metal chelators but was unaffected by sulfhydryl-blocking reagents or glutathione. Our results suggest that the anthracycline glycosides generate in a metal- (most probably iron) dependent reaction superoxide anion radicals with subsequent formation of hydrogen peroxide and hydroxyl radicals. These reactive oxygen species then cause alterations in the melanoma cells resulting in the enhanced complement susceptibility. While the target molecule(s) of the reactive oxygen species responsible for the enhanced complement susceptibility is not known, the data obtained with immobilized doxorubicin suggest that the target molecule(s) is located in the cell membrane.

Catalase↗

Genetic polymorphisms of animal complement components.

This review summarizes current knowledge of complement polymorphisms in non-human vertebrate species. The information presented is intended to be representative of animal complement genetics in general; it is not therefore exhaustively detailed about any one specialized area. Although the majority of the genes for the human complement components have been cloned, most of the genetic data on animal complement component variation have been produced by protein studies, consequently the emphasis on the protein rather than DNA is reflected in the present discussion. The objectives of undertaking comparative genetic studies of complement are divided into two broad areas. The first concerns the evolution, the structure and regulation of the genes and gene clusters together with data relevant to their chromosomal organization in different species. The second goal is the practical one; since many complement components are highly polymorphic they have considerable intrinsic value as genetic markers. In addition, there are biomedical and veterinary aspects to be considered which draw on the knowledge of the structural and functional properties of the components in relation to physiological considerations. This review discusses the practical approaches employed in the study of animal complement variation. The data on animal complement component polymorphisms are summarized in tabular form and some of the evolutionary implications of these data are discussed. The review concludes by examining the scope for future comparative studies.

Animals↗

[Heterogeneity of antinuclear antibodies (ANA), immunoglobulin- and complement levels in sera of patients with rheumatoid arthritis (RA) (author's transl)].

ANA typing of RA patients according to the heavy- and light chains, complement fixing ability and immunofluorescent staining pattern was performed by the immunofluorescence technique and partially by qualitative immunoelectrophoresis. In the corresponding sera the immunoglobulins and complement components were quantiatively determined. Dependent on the ANA-immunoglobulin classes we found the following distribution: IgG-ANA; 40/93 (43%), IgM-ANA: 19/93 (20%), IgA-ANA: 2/93 (2%), and Ig-comb.-ANA:17/93 (18%). ANA only positive for polyspecific antimmunoglobulin serum: 15/93 (16%). After L-chain typing we found within a given ANA-Ig-class positivity for both L-chain subclasses (kappa and lambda): IgG-ANA: 19/40 (48%), IgM-ANA: 3/19 (16%), IgA-ANA:1/1 and Ig-comb.-ANA: 14/17 (82%). ANA cases within a given Ig-class only positive for the L-chain/type kappa:IgM-ANA:6/19 (32%), IgG-ANA: 9/40 (23%), Ig-comb.-ANA:2/12 (12%). ANA cases within a given Ig-class only positive for the L-chain type lambda: IgM-ANA: 7/19 (37%), IgG-ANA: 3/40 (8%), Ig-comb.-ANA:1/17 (6%) and IgA-ANA:1/1. In all cases of restricted ANA-positivity (only positive by use of polyspecific anti-immunoglobulin serum) no light chains were detected. In total we found approximatively 25% of complement fixing ANA, predominantly IgG-ANA (70%). Concerning the immunofluorescent nuclear staining we stated the following patterns: homogenous: 34/93 (36.6%), speckled: 29/93 (31.2%), mixed pattern : 22/93 (23.6%) peripheral: 5/93 (5.4%) and nucleolar: 3/93 (3.2%). The quantitative Ig-determination reveals a significant increase of IgG in ANA (single type) positive sera. IgG + IGM + IGA-ANA and IgG + IgM-ANA are found together with a significantly increased IgG- and IgM-serum levels, in the case of IgG + IgM-ANA we could demonstrate an additional relative decrease of the complement component C4. Sera with positive complement fixing ANA compared with non complement fixing ANA are characterized by an absolute increase of IgG and relative decrease of the complement component C4. No differences in serum-immunoglobulin- and -complement concentrations were registered dependent on ANA-immunofluorescent staining patterns.

Antibodies, Antinuclear↗

[Chinese hamster cells mutant at the hypoxanthine-guanine phosphoribosyltransferase (GPRT) locus. V. Complementation analysis of ts mutants].

Four temperature-sensitive HPRT clones were used for hybridological analysis, which led to increase in complementation rate about 5 times. The probability of complementation, in respect of the HPRT locus proved to be rather high: 14 of 45 hybridization-tested mutants had complementation ability (including 3 ts mutants). Analysis of the complementation rate among mutants revealed clear-cut dependence on the selection conditions: clones grown in a medium with 8-azaguanine showed most frequent complementation. The use of mutants with a new phenotype in hybridization analysis revealed four additional complementation groups, three of which are made of temperature-sensitive clones. Biochemical analysis revealed the presence of hybrid forms of the HPRT enzyme in all hybrids tested. This confirms the intragenic character of complementation. At present, the functional map of the HPRT locus is represented by 9 groups, including a group of mutants with no complementation ability.

Animals↗

Complement activation in peritonitis. Association with hepatic and renal perfusion abnormalities. First place winner: Conrad Jobst award.

The authors have shown that systemic activation of the complement system with either zymosan or cobra venom factor produces some of the hemodynamic changes characteristic of sepsis, specifically, a reduction in hepatic perfusion despite a normal or hyperdynamic systemic circulation. This study was undertaken to determine whether complement activation accompanied reductions in effective hepatic and renal blood flow (EHBF and ERBF, respectively) in a septic murine model previously demonstrated to be associated with flow redistribution. Rats underwent either cecal ligation and puncture (CLP) or sham laparotomy after a baseline blood sample was collected for complement assay. Eighteen hours later, thermodilution cardiac output, mean arterial pressure, heart rate, hematocrit, EHBF by galactose clearance, and ERBF by p-aminohippurate (PAH) clearance were determined. A second blood sample was collected for measurement of total hemolytic complement (CH50) by immune hemolysis of sheep erythrocytes and was compared to the t = 0 sample for calculation of per cent change in CH50. The cardiac output and hematocrit were normal in the CLP group relative to sham. The septic animals were tachycardic and slightly hypotensive, suggesting a diminished systemic vascular resistance. EHBF and ERBF fell dramatically in the septic group despite the normal cardiac output. Residual hemolytic complement activity was reduced to less than 40% of preseptic levels in the CLP group while sham values were no different than baseline, indicating massive complement activation in the septic animals. This study demonstrates an association between complement activation and hepatic and renal perfusion abnormalities in murine peritonitis. Work is underway to establish the temporal relationship between complement activation and visceral flow changes.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Complement-fixing antibodies to dsDNA detected by the immunofluorescence technique on Crithidia luciliae. A critical appraisal.

Studies using an adapted immunofluorescence technique (IFT) on Crithidia luciliae to determine the complement fixing ability of antibodies to dsDNA in relation to disease manifestations, i.e., nephritis, have yielded conflicting results. To establish the relevance of these determinations, we studied sera containing antibodies to dsDNA from 64 patients with systemic lupus erythematosus (SLE), and found that anti-dsDNA of 52% of these sera had the ability to fix complement. SLE patients with nephritis demonstrated a much higher incidence of complement fixing anti-dsDNA (83%) than patients without nephritis (17%, p less than 0.01). On the other hand, patients with nephritis also had higher titers of anti-dsDNA (mean 1:400) than patients without nephritis (mean titer 1:75; p less than 0.01). A clearcut correlation between anti-dsDNA titer and complement fixing anti-dsDNA titer (p less than 0.01) was observed which obviously disturbs the correlation between nephritis and complement fixing anti-dsDNA. Comparing matched sera from patients with nephritis and patients without nephritis with the same antidsDNA titer, we found no difference in complement fixing anti-dsDNA. In the IFT used to measure complement fixing anti-dsDNA, incubation of the Crithidia slides with patients' serum was followed by an incubation with fresh normal serum which served as a source of complement. We observed that this incubation with fresh normal serum resulted in elution of anti-dsDNA antibodies from kinetoplast DNA. This elution was caused by IgG present in normal serum.

Antibodies↗

Complement-mediated alteration of antibody specificity in vivo.

The simultaneous injection of heterologous anti-EL4 lymphoma serum and complement results in the rapid disappearance of such antibody from the periphery of non-tumor bearing mice. However, this phenomenon is only observed when a complement source capable of mediating the lysis of EL4 cells sensitized with such heterologous antibody is used. This complement mediated enhancement of anti-tumor antibody absorption was observed in vivo for three strains of mice. Omission of complement or the use of genetically deficient complement sources resulted in no effect on circulating antibody titer when compared to the titer of heterologous anti-tumor antibody observed in the periphery when injected alone. Exogenous complement did not enhance the clearance of heterologous anti-tetanus toxin serum, thereby suggesting that the increased absorption of anti-EL4 in vivo is not related simply to the enhanced clearance of foreign gamma-globulin. Confirmatory evidence of the role of complement in altering anti-tumor antibody specificity in vivo was obtained in a guinea pig tumor model as well. The data suggest that anti-tumor serum shown to be relatively specific for the tumor cell gains additional specificity in the presence of functional complement and consequently manifests avidity for cross-reactive determinants previously thought to be unrelated.

Absorption↗

Inactivation of complement by Loxosceles reclusa spider venom.

Zymosan depletion of serum complement in guinea pigs rendered them highly resistant to lesion by Loxosceles reclusa spider venom. Guinea pigs deficient in C4 of the complement system are as sensitive to the venom as normal guinea pigs. The injection of 35 micrograms of whole recluse venom intradermally into guinea pigs lowered their complement level by 35.7%. Brown recluse spider venom in concentrations as slight as 0.02 micrograms protein/ml can totally inactivate one CH50 of guinea pig complement in vitro. Bee, scorpion, and other spider venoms had no influence on the hemolytic titer of complement. Fractionation of recluse spider venom by Sephadex G-200 filtration separated the complement-inactivating property of the venom into three major regions which could be distinguished on the basis of heat stability as well as size. None was neutralized by antivenom. Polyacrylamide gel electrophoresis of venom resolved the complement inactivators into five fractions. Complement inactivated by whole venom or the Sephadex fractions could be restored to hemolytic activity by supplements of fresh serum but not by heat-inactivated serum, pure C3, pure C5, or C3 and C5 in combination.

Animals↗

Effect of anti-P1A1 antibody on human platelets. I. The role of complement.

We studied the interaction of complement with human platelets. Complement was activated by IgG anti-P1A1 antibody obtained from 3 patients with the post-transfusion purpura syndrome. We used a heparin-plasma buffer system that permits complement activation and also preserves platelet function. With this system complement activation was efficient, and platelet immune alteration was extensive. Anti-P1A1 antibody was effective only in the presence of complement, in which case both platelet lysis and serotonin release (release reaction) in the absence of lysis were observed. Platelet lysis, as assessed by 51Cr loss, required 10-fold more antibody than was necessary to induce platelet aggregation and release of 14C-serotonin. This platelet release reaction required an intact classic complement sequence through C6. The extent of platelet serotonin release parallelled the depletion of C1 and C4 from platelet-rich plasma. Concentrations of antibody insufficient to induce platelet aggregation and serotonin release could still activate C1 and deposit increased C3 on the platelet surface. These studies demonstrated that complement activation by anti-P1A1 antibody can alter human platelets in a nonlytic system. Several phases of complement-mediated human platelet alteration are possible, depending on the concentration of anti-P1A1 antibody.

Animals↗

Serum complement levels in canine endotoxin shock: relation to survival and to corticosteroid therapy.

Recent studies suggest prominent roles of the complement system in endotoxin shock and steroid-complement interactions in its treatment. To assess further the potential importance of the complement system in this condition, we measured serum total complement levels in dogs after an IV bolus of 1.5 mg/kg DIFCO E coli endotoxin. Dogs were assigned to control (C), dextran40 (LMD), or LMD + steroid groups. Corticosteroids, given IV 15 min after endotoxin, were 1) methylprednisolone sodium succinate (MPSS), 30 mg/kg; 2) dexamethasone sodium phosphate (DSP), 6 mg/kg; 3) hydrocortisone sodium succinate (HSS), 150 mg/kg; or 4) hydrocortisone sodium phosphate (HSP), 150 mg/kg. LMD was infused to maintain BP greater than 60% of preshock levels during the 4 h of monitoring. Survival rates at 48 h were C--7/24 (29%); LMD--3/12 (25%), MPSS--11/19 (59%) (P less than 0.1); DSP--9/14 (64%) (P less than 0.05); HSS--3/10 (30%) HSP--5/10 (50%). Within 15 min of endotoxin administration, serum complement titers fell at least 48% in all groups. Complement levels returned to the preshock range in only the LMD group. Mean complement levels of all survivors and nonsurvivors were nearly identical throughout the acute experiment. The results indicate that survival in canine endotoxin shock, with or without corticosteroid therapy, is not related to normalization of serum total complement titers during the first few hours after endotoxin injection.

Adrenal Cortex Hormones↗