Detection of microgram quantities of carrier ampholytes in electrofocused proteins by thin-layer chromatography.
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Biomedical subjects
Publications and source records attributed to D W Watson.
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A case of severe head trauma resulting from dog bites is presented. The dog bites were inflected by the family pet and included depressed and elevated skull fractures. The patient was treated aggressively, stabilized, and transferred to a nearby medical center for definitive care. She ultimately did well.
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Group A streptococcal pyrogenic exotoxins (SPE) types A, B, and C are potent nonspecific lymphocyte mitogens. The mitogenicity of these exotoxins was inhibited by gangliosides and sialic acid, whereas concanavalin A was unaffected. The capacity of both concanavalin A and SPE-A to stimulate lymphocytes was suppressed by alpha-methyl-D-mannopyranoside. Galactose reduced the activity of SPE-C. The sugars, glucose, N-acetylglucosamine, alpha-methyl-D-glucopyranoside, and fucose, did not affect SPE mitogenicity.
Group A streptococcal pyrogenic exotoxins (SPEs) A, B, and C and alpha-amanitin enhance host susceptibility to lethal endotoxin shock. The capacity of SPE C and alpha-amanitin to prepare rabbits for the enhancement phenomenon required pretreatment of the animals 1 to 2 h before giving endotoxin. Endotoxin clearance from the circulation of rabbits pretreated with either SPE C or alpha-amanitin was reduced. Even at the time of death, significant amounts of endotoxin remained in the circulation. It is proposed that the SPE and alpha-amanitin inhibit ribonucleic acid synthesis in Kupffer cells with concomitant alteration in reticuloendothelial clearnace function, allowing endotoxin to persist in the circulation and produce host injury. All three SPE types and alpha-amanitin inhibited ribonucleic acid synthesis by 50% or greater in whole liver cells. Kupffer cells, liver cell nuclei, and liver nuclear extracts; inhibition was observed liver cells from both mice and rabbits. The inhibitory effect by SPEs was dose dependent and was observed after as little as 15 min of preincubation with liver cells. The content of ribonucleic acid in liver nuclei of mice pretreated with either SPE C or alpha-amanitan was reduced, whereas total deoxyribonucleic acid and protein content remained unaltered.
Production of group A streptococcal pyrogenic exotoxins (SPE) type A and C was transferred from toxigenic streptococcal strains to nontoxigenic strains by lysogeny. Lysogens were tested for SPE with Ouchterlony immunodiffusion on Todd-Hewitt agar plates; toxin diffusing from isolated colonies reacted with specific hyperimmune antisera to SPE. Phage prepared from strains T25(3) (T12gl) and 3GL16, both yielding SPE type A, formed plaques on T25(3) (NONLYSOGENIC) lawns. Over 90% of the colonies picked from the plaque centers yielded A toxin, suggesting SPE type A was transferred by lysogenic conversion. SPE type C formation was transferred to nontoxigenic strains T25(3) and K56 with supernatant fluids from mitomycin C-induced cultures of CS112, producing SPE types B and C. All lysogens tested were positive for SPE type C, indicating that C toxin induction also was transferred by lysogenic conversion. SPE type B formation was not transferable by lysogeny with the strains tested.
Several groups of streptococci were tested for production of pyrogenic exotoxins (SPE) with Ouchterlony immunodiffusion, a newly developed passive hemagglutination inhibition assay, and an assay for pyrogenicity and capacity to enhance lethal endotoxin shock. With use of these assays, 68 (91%) of 75 group A streptococcal strains were positive for one or more of SPE types A, B, and C; seven were negative for both the known SPE types and antigenically unrelated pyrogenic exotoxins. Group A strains producing both SPE B and C were the most common, and strains producing A alone or AB and AC together were the least common. All of 11 rheumatogenic group A streptococci elaborated SPE C either alone or together with one or both of SPE types A and B. The 10 nephritogenic strains tested were positive for SPE B; five were positive for B alone. In contrast to group A streptococci, non-group A strains (41 tested) did not produce the known SPE types, and 19 of 19 tested were negative for antigenically unrelated pyrogenic exotoxins. Group A strains from Holland, India, and Japan also elaborated SPE. Several group A streptococci used widely in laboratory experiments were tested for SPE types produced.
A staphylococcal pyrogenic exotoxin was purified and characterized biochemically and biologically. The organism producing the toxin was a group I Staphylococcus aureus strain which was isolated from a vaginal infection of a patient with mucocutaneous lymph node syndrome (Kawasaki's disease). The possible association of the toxin with the disease syndrome is discussed. The toxin was purified from cell-free culture supernatant fluids by means of differential precipitation with ethanol and resolubilization in pyrogen-free distilled water followed by preparative thin-layer isoelectric focusing. The pyrogenic exotoxin produced fevers in both rabbits and mice and enhanced host susceptibility to lethal shock and myocardial and liver damage by endotoxin. Also, the toxin was a potent nonspecific lymphocyte mitogen, stimulating rabbit spleen cells and human cord blood lymphocytes to proliferate. The toxin migrated as a homogeneous protein when tested with sodium dodecyl sulfate-polyacrylamide gel electrophoresis (molecular weight, 12,000) and reisoelectric focusing (pI 5.3). Hyperimmune antisera raised against the purified toxin reacted with ethanol-precipitated toxin, using immunodiffusion to form a single precipitin arc. The toxin was distinguished from other staphylococcal toxins by a variety of methods. The amino acid composition was determined.
Group A streptococcal pyrogenic exotoxins types A, B, and C and staphylococcal pyrogenic exotoxin were shown to be potent nonspecific T-lymphocyte mitogens. Adherent cell populations did not significantly affect the nonspecific mitogenicity.
Because of the association of the group A streptococcal pyrogenic exotoxins (SPEs) with erythrogenic toxin used in the classical Dick test, the involvement of the SPEs in production of erythematous skin reactions was assessed. Unless they had been presensitized, young adult rabbits failed to show skin reactions after intracutaneous challenged with SPEs. Rabbits presensitized to purified protein derivative exhibited enhanced skin reactivity when given purified protein derivative plus SPE C; the enhancement was neutralized by antiserum to SPE C. Rabbits sensitized to bovine serum albumin showed extensive red rash development resembling scarlet fever rashes when given bovine serum albumin containing SPE C. Desquamation occurred 5 to 10 days after injection. Animals sensitized to one SPE type showed enhanced skin reactivity to challenge with homologous or heterologous SPE types, indicating the presence of a cross-reactive determinant within the SPE molecules. Repeated challenge of SPE-sensitized animals with homologous toxin resulted in concomitant antitoxin production with reduction of the enhanced skin reactivities, until typical delayed-hypersensitivity skin reactions remained. The data indicate that, in addition to the toxic reaction previously described, SPEs enhance Arthus and delayed-hypersensitivity skin reactions. It follows that erythrogenic toxin represents the enhancement of acquired skin reactivity to streptococcal antigens by one or more SPE types. Therefore, the Dick test measures SPE-enhanced hypersensitivity to streptococcal products.
Group A streptococcal pyrogenic exotoxin (SPE) type C, produced by strain T18P grown in the presence of 32P, was separated from culture supernatant fluids by using alcohol precipitation. The resulting toxin (EtOH-1) contained 3 X 10(6) to 5 X 10(6) cpm of 32P per milligram of protein. The radiolabel migrated with SPE C during isoelectric focusing in polyacrylamide gels (pI 6.7) and double immunodiffusion, in which the toxin formed a line of identity with highly purified SPE C when reacted with hyperimmune antisera raised against SPE C. The EtOH-1 radiolabeled toxin was pyrogenic and had the capacity to enhance host susceptibility to lethal endotoxin shock. EtOH-1 toxin lost both radiolabel and biological activity after being treated with alkaline phosphatase. The nonspecific lymphocyte mitogenicity of purified unlabeled SPE C was stimulated by adenosine monophosphate but not adenosine, adenosine diphosphate, or adenosine triphosphate. Adenosine monophosphate may function as a cofactor of SPE C and contribute the phosphate group required for biological activity.
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Glycopyrrolate or cimetidine was administered before operation to patients undergoing elective surgery. After the induction of anaesthesia, the stomach contents were retrieved and the volume and pH measured. Neither drug diminished the volume of gastric contents compared with control. Glycopyrrolate produced little diminution in hydrogen ion concentration. Cimetidine caused a marked increase in pH with a mean [h+] 3.2 x 10(-3) g litre-1 compared with 1.4 x 10(-2) g litre-1 in the controls and 1.1 x 10(-2) g litre-1 in the glycopyrrolate group. Seventy-seven per cent of the patients receiving cimetidine had a pH greater than 2.5.
The effect of purified group A streptococcal pyrogenic exotoxin (SPE) type A on the processing of and antibody response to sheep erythrocytes (SRBC) was studied in BALB/cWat mice. The rate of clearance of 51Cr-labeled SRBC from the bloodstream was decreased 3 or 24 h following a single intravenous injection of 1 or 10 microgram of SPE. Delayed uptake of label was observed in both the livers and spleens of SPE-treated mice, suggesting an inhibitory effect of the toxin on phagocytic cells of the reticuloendothelial system. Three daily intravenous injections of 0.1 or 1 microgram of purified SPE type A suppressed the early immunoglobulin response to SRBC. The role of altered macrophage function in producing the immunosuppression was tested in macrophage transfer experiments. SPE treatment suppressed the antibody response to SRBC transferred by normal macrophages, indicating that the immunosuppressive effect of the toxin was not due solely to altered antigen processing by macrophages.
The effect of purified streptococcal pyrogenic exotoxins (SPE) on the antibody response to sheep erythrocytes was studied in cultures of mouse spleen cells. Purified SPE types A, B, and C shared the ability to suppress the day 4 direct plaque-forming cell response when added to cultures. SPE A and C were most suppressive at concentrations of 0.1 to 1 ng per culture, while SPE B was active at 1 microgram per culture. Pretreatment of mice with SPE A, 3 h before removal of their spleens for culture, also produced suppression. Cell populations were separated from spleens of normal and toxin-treated mice and recombined in culture to test the cellular site of action of SPE immunosuppression. When nonadherent cells (lymphocytes) and adherent cells (macrophages) from control and SPE-treated mice were separated and recombined, the plaque-forming cell response depended on the source of lymphocytes. Macrophages from toxin-treated mice functioned normally in the presence of control lymphocytes. In a further experiment, toxin pretreatment failed to suppress the plaque-forming cell response of spleen cells that were T-cell depleted and reconstituted with control thymocytes. When the T lymphocytes were removed from toxin-treated spleen cell suspensions, the remaining cells were able to respond normally to antigen if normal helper T cells were provided. The results suggest that the suppressive activity of SPE on antibody production is mediated by altered activity of T lymphocytes.
Streptococcal pyrogenic exotoxin type B purified from culture filtrates of either the NY-5 or T-19 strain of group A streptococcus was found to be heterogeneous in charge. Three protein fractions with isoelectric points of 8.0, 8.4, and 9.0 were isolated by differential solubility in ethanol and acetate-buffered saline followed by isoelectric focusing and shown to be antigenically identical to streptococcal pyrogenic exotoxin type B. The molecular weights of all three fractions were approximately 17,500, as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, with aggregates forming in the presence of hyaluronic acid. Only the pI 8.4 fraction showed the characteristic activities of streptococcal pyrogenic exotoxin in rabbits: pyrogenicity and ability to enhance susceptibility to lethal endotoxin shock. The pI 8.0 and pI 9.0 fractions were not pyrogenic, but could be used to immunize against pyrogenicity. These two fractions failed either to enhance lethal endotoxin shock or to immunize against enhancement activity. When the isolated fractions were electrofocused again they appeared heterogeneous, suggesting an instability of the B toxin molecular forms.
Group A streptococcal pyrogenic exotoxin type C (SPE C) was shown to produce fever by crossing the blood-brain barrier. The toxin directly stimulated the hypothalamic fever response control center, thus bypassing a requirement for endogenous pyrogen release. SPE C was detected in the cerebrospinal fluids of toxin-treated rabbits by pyrogen tests and a hemagglutination inhibition assay. The toxin altered the permeability of the blood-brain barrier to endotoxin, Streptococcus pneumoniae, and Haemophilus influenzae as well as to itself. SPE C did not alter the in vivo differential and total counts of peripheral blood leukocytes and did not elicit endogenous pyrogen release from leukocytes in vitro. In vivo, peripheral blood platelet counts remained unchanged after SPE treatment. Cycloheximide pretreatment of rabbits did not inhibit fever production by SP C. In contrast to the hypothermia observed in mice treated with endotoxin intravenously susceptibility to lethal endotoxin shock. The abilities of SPE C to produce fever and enhance lethal shock were shown to be separate functions of the molecule; fever results from stimulation of the hypothalamus, and enhancement appears not to involve the central nervous system.