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K J Goodrum

Publications and source records attributed to K J Goodrum.

12 recordsLinked to original sources

Opsonin-independent phagocytosis of group B streptococci: role of complement receptor type three.

The role of complement receptor type 3 (CR3) in nonopsonic recognition of group B streptococci (GBS) by macrophages was investigated. Monoclonal anti-CR3 (anti-Mac-1) inhibited phagocytosis of GBS strains by as much as 50% in serum-free cultures of both mouse peritoneal macrophages and the macrophage cell line PU5-1.8. GBS uptake was unaffected by the presence of anti-C3 or salicylhydroxamate, an inhibitor of the covalent binding reaction of C3. Soluble antibodies to LFA-1 or to the common beta-chain (CD18) of the LFA-1/CR3/p150,95 family of cell adhesion molecules did not inhibit GBS uptake. Down-modulation of surface Mac-1 on macrophages following adherence to anti-Mac-1- or anti-CD18-coated surfaces also inhibited uptake of GBS. Further evidence for GBS interaction with CR3 was demonstrated by reduction of EC3bi rosette formation in macrophages adherent to GBS-coated plates. These studies suggest that GBS can interact with macrophage CR3, promoting phagocytosis in a C3-independent fashion. In the absence of specific immunity in neonates, this recognition mechanism may be a significant virulence determinant for GBS which poorly activate the alternate complement pathway.

Animals

Complement component C3 secretion by mouse macrophage-like cell lines.

Secretion of complement component C3 by the mouse macrophage-like cell lines PU5-1.8, J774A.1, RAW264.7, and P388D1 was measured using an enzyme-linked immunosorbent assay for mouse C3. All cell lines secreted antigenically detectable C3 with the relative secreted C3/10(6) cells/24 h ranked as J774A.1 greater than P388D1 greater than or equal to PU5-1.8 much greater than RAW264.7. C3 secretion was enhanced two- to fourfold in cultures of all cell lines when treated with lipopolysaccharide, streptococcal cell walls, or lymphokine-containing supernatant fluids of mitogen-stimulated spleen cells. A differential induction of C3 synthesis and secretion was indicated since secreted lysozyme and total cellular protein were not elevated in a manner comparable to C3. The relative inducibility of cell lines for C3 secretion in either lipopolysaccharide- or cell wall-treated cells could be ranked as PU5-1.8 greater than P388D1 greater than J774A.1 greater than RAW264.7. C3 secretion was inhibited by cycloheximide or hydrocortisone. Mouse macrophage-like cell lines retain baseline and inducible C3 synthetic activities as do normal macrophages and can serve as homogeneous cultures in which to study regulation of complement biosynthesis.

Animals

Stimulation of complement component C3 synthesis in macrophagelike cell lines by group B streptococci.

Complement levels and complement activation are key determinants in streptococcus-induced inflammatory responses. Activation of macrophage functions, such as complement synthesis, by group B streptococci (GBS) was examined as a possible component of GBS-induced chronic inflammation. Using an enzyme-linked immunosorbent assay, secreted C3 from mouse macrophagelike cell lines (PU5-1.8 and J774A.1) was monitored after cultivation with GBS. Whole, heat-killed GBS (1 to 10 CFU per macrophage) of both type Ia and III strains induced 25 to 300% increases in secreted C3 in both cell lines after a 24-h cultivation. GBS-treated cell lines exhibited increases in secreted lysozyme (10%) and in cellular protein (25 to 50%). Inhibition of macrophage phagocytosis by cytochalasin B inhibited GBS stimulation of C3. Purified cell walls of GBS type III strain 603-79 (1 to 10 micrograms/ml) also enhanced C3 synthesis. Local enhancement of macrophage C3 production by ingested streptococci or by persistent cell wall antigens may serve to promote chronic inflammatory responses.

Animals

Modulation of complement fixation and the phlogistic capacity of group A, B, and D streptococci by human lysozyme acting on their cell walls.

Streptococci and streptococcal cell wall fragments induce arthritis in rats, with the severity and duration depending on the capacity of the cells or cell fragments to resist degradation by tissue enzymes. Their phlogogenic effects are apparently related to their ability to activate the alternate complement pathway (ACP). The in vitro activation of the ACP by lysozyme-treated cells and cell walls of group A, B, and D streptococci suggests that both rat and human lysozyme can modulate this activity, i.e., increasing it, decreasing it, or doing both in that order. The effects of the lysozymes also correlated with the degree to which they can unmask the aminosugar-reducing groups detectable in a given amount of cell wall, which suggests that partial depolymerization of the cell wall is critical for ACP activation. The effects of mutanolysin and C phage lysin on ACP activation were found to be correlated with their action on streptococcal cell walls. Neuraminidase had relatively little effect on ACP activation by most streptococcal strains tested. We conclude that the participation of tissue enzymes, including but not necessarily limited to lysozyme, is an important determinant for the clinical arthritis induced by group A, B, or D streptococci. Experimental arthritis induced in rats with whole (or disrupted) streptococci may depend both on the capacities of the cell walls to activate the ACP and on the capacities of the host tissue enzymes to modulate this activation. Great severity and long durations of the disease were determined by the capacity of the enzymes to degrade cell wall antigens to a degree sufficient to ensure efficient activation of the ACP without completely degrading the material so that it no longer activates complement. In this model, the limited resistance of group B peptidoglycan to lysozyme was a critical pathogenic factor.

Animals

Toxicity of group B Streptococcus agalactiae in adult rats.

Several strains of group B Streptococcus agalactiae were found to be lethal for young adult rats. When bacteria were heat killed and then injected intraperitoneally into rats, rapid death (14 to 18 h) of the rats occurred, characterized by labored breathing, hemolyzed serum, hemoglobinuria, and subungual hemorrhages. Sections of tissues from these rats failed to reveal the cause of death. Rats injected with toxic or nontoxic strains of group B S. agalactiae had reduced numbers of circulating leukocytes and low serum C3 levels in comparison with those in control rats. The toxic strains of group B S. agalactiae induced dramatic decreases in platelet numbers, and in plasma fibrinogen levels as well, suggesting that the toxicity was due to disruption of the coagulation system. Rapid death in the absence of infection suggests that group B S. agalactiae may have a cell-associated toxin that induces these changes. Such a toxin may be a contributory factor in the high mortality rate associated with group B streptococcal infections of the human neonate.

Animals

The use of Reuber hepatoma cells for the study of a lipopolysaccharide-induced macrophage factor: glucocorticoid-antagonizing factor.

Endotoxin-stimulated glucocorticoid-antagonizing factor (GAF) was assayed by its specific inhibition of hydrocortisone-induced synthesis of phosphoenolpyruvate carboxykinase. Defined induction of phosphoenolpyruvate carboxykinase synthesis in hydrocortisone-treated rat hepatoma cells permitted reliable quantitation of GAF and analysis of the mechanism of cortisol antagonism. GAF was present maximally in serum 2 hours after endotoxin challenge in mice; however, GAF production could be suppressed by pretreating mice with indomethacin or cortisol. Endotoxin-tolerant mice were also nonresponsive to endotoxin-stimulated GAF production. Gel filtration on Sephadex G-200 resolved four regions of glucocorticoid-antagonizing activity in serum from endotoxin-poisoned mice, two of which were not present in normal serum. Cortisol antagonism by GAF resembled that of insulin; however, insulin differed from GAF in its ability to antagonize dibutyryl cyclic AMP. Unlike insulin, endotoxin-induced serum glucocorticoid-antagonizing activity was heat-labile at 70 degrees C. GAF antagonism of hydrocortisone was partially reversible but did not act in a competitive manner. Production of hepatoma growth inhibitory activity and glucocorticoid-antagonizing activity in serum were closely associated, indicating a common methanism for their generation.

Animals

Elicitation of endotoxemic effects in C3H/HeJ mice with glucocorticoid antagonizing factor and partial characterization of the factor.

C3H/HeJ mice were used to study the origin and nature of endotoxin-induced glucocorticoid antagonizing factor (GAF). In conventional mice GAF is believed to be responsible for a variety of effects that occur as a result of an injection of endotoxin, including the inhibition of hormonal induction of hepatic phosphoenolpyruvate carboxykinase and of glyconeogenesis. Responses in such animals are seen whether the endotoxin is extracted with phenol-water or with trichloroacetic acid. C3H/HeJ mice do not respond (or produce GAF?) after an intravenous injection of phenol-water lipopolysaccharide, but they react normally (produce GAF?) when given a trichloroacetic acid preparation. They also behave the same as conventional animals when injected with serum from poisoned normal mice, especially when the reticuloendothelial system of the donors has been activated by prior injections of Zymosan or heat-killed tubercle bacilli. The C3H/HeJ mice have been used, therefore, as assay animals to establish that peak levels of GAF appear in donor serum about 2 h after an injection of lipopolysaccharide, and it is produced intraperitoneally in C3H/HeJ mice given a mixture of endotoxin and peritoneal exudate cells derived from responder mice. GAF elutes from Sephadex G-200 along with markers of known molecular weight in the region of 100,000 to 200,000. It is inactivated by trypsin and by heating at 75 degrees C for 1 h.

Animals