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Biomedical subjects

E Ribi

Publications and source records attributed to E Ribi.

At least 91 records · Page 5Linked to original sources

Hybrid formation between bacterial endotoxins.

When endotoxins extracted from enteric bacteria were mixed in the presence of sodium deoxycholate, and the bile salt was subsequently removed by dialysis or by extraction with ethanol, a new type of endotoxin was formed. The latter material was as biologically active as the original endotoxins and possessed a combination of antigenic determinants that were previously unique to each of the individual endotoxins in the mixture. This hybrid formation between endotoxins was detected by immunodiffusion and radioautography and by quantitative precipitation procedures.

Endotoxins↗

Chemical, biological, and structural properties of stable Proteus L forms and their parent bacteria.

Proteus L forms were disrupted by osmotic shock, and the sedimentable material present in the homogenate was further fragmented in a Sorvall pressure cell. The pressure cell was also used for disrupting normal Proteus cells. The homogenates obtained were fractionated by differential centrifugation. Purified endotoxins were isolated from the major fractions by phenol extraction. Material extracted with phenol from the membrane fraction of the L forms was about as toxic and pyrogenic on a weight basis as the typical enterobacterial endotoxins isolated from cell walls of normal bacteria. The yield of extract from L forms was about one-third of that from an equal weight of normal bacteria. No differences in the gross chemical composition of the phenol extracts from the L forms and the normal cells could be ascertained. A close serological relationship existed between extracts obtained from two L forms and their respective parent bacteria, but no such relationship was found in the case of the third L form studied and its parent bacterium. Diaminopimelic acid was not detected in the membranes of the L forms, but these membranes contained most of the succinic dehydrogenase of the organisms. Only small amounts of this enzyme were present in the wall fraction of normal bacteria. The data obtained suggest that precursors of the Proteus endotoxins are formed either in the soluble protoplasm of normal cells and L forms or at sites on the membrane from which they are readily liberated into the protoplasm, whereas the final steps of the synthesis of these toxins take place at the cytoplasmic membrane. In normal cells, much endotoxin is transported to and concentrated in the walls.

Bacteria↗

Effects of oil-treated mycobacterial cell walls on the organs of mice.

Intravenous vaccination of mice with oil-treated mycobacterial cell walls resulted in a marked macrophage accumulation in the lungs and spleens of vaccinated animals. Injection of oil emulsion alone or of cell walls alone failed to elicit the macrophage response. Although a correlation existed between the magnitude of the macrophage response and the degree of immunity against aerosol challenge with H(37)Rv organisms, the findings presented here do not rule out the possibility that qualitative differences may be present in the macrophages of animals vaccinated against tuberculosis. The ability of oil-treated cell walls to elicit an immune response appeared to be a function of the physical association of cell wall fragments and the surface of oil droplets.

Aerosols↗

Effective nonliving vaccine against experimental tuberculosis in mice.

Ribi, Edgar (Rocky Mountain Laboratory, Hamilton, Mont.), Carl Larson, William Wicht, Robert List, and Granville Goode. Effective nonliving vaccine against experimental tuberculosis in mice. J. Bacteriol. 91:975-983. 1966.-Antituberculosis vaccines were prepared in one of three manners: lyophilized BCG suspended in light mineral oil was disrupted in a Sorvall pressure cell and the "oil disruption product" was collected by centrifugation; BCG was disrupted in water, lyophilized, and worked into a paste with a small amount of oil (about 0.16 ml per 50 mg); BCG was disrupted in water, and the cell wall fraction was isolated, lyophilized, and prepared in an oil paste. These vaccines were suspended in Tween-saline to a concentration of 5 mg/ml and heated at 65 C for 30 min. In protection tests based on pulmonary infection with Mycobacterium tuberculosis H37Rv, the median number of virulent organisms in lung tissue of mice immunized with a few hundred micrograms of these three vaccines was 3 to 4 logs lower than in unvaccinated control mice. A similar dose of viable BCG standard vaccine reduced the lung count 1 to 2 logs below the controls. Protection afforded by nonviable, whole BCG, with or without oil, was of only borderline significance. Since oil-treated fractions containing cell walls produced effective immunity, while the oil-treated protoplasm or whole cells were not active, the protective antigen appeared to be an inner component of the cell wall, exposed when the cell was disrupted, and activated by oil. Extraction of oil from immunogenic disruption products resulted in loss of ability of the products to confer protection against the aerosol challenge, whereas high protection against the conventional challenge by intravenous infection with up to 1.4 x 10(8) cells of M. tuberculosis H37Rv was retained. Retreatment with oil of these nonimmunogenic products restored the immunogenicity if the oil was applied to dried products. The consistent finding that moisture interferes with the enhancement of the vaccine potency by oil suggested that such enhancement may not be the same as that ordinarily produced by water-in-oil emulsions.

Aerosols↗

Frequency of occurrence of native hapten among enterobacterial species.

Anacker, R. L. (Rocky Mountain Laboratory, Hamilton, Mont.), W. D. Bickel, W. T. Haskins, K. C. Milner, E. Ribi, and J. A. Rudbach. Frequency of occurrence of native hapten among enterobacterial species. J. Bacteriol. 91:1427-1433. 1966.-Smooth cultures of representative Enterobacteriaceae were screened for the presence of native hapten, a substance previously extracted with trichloroacetic acid from the protoplasmic fraction of one strain each of Escherichia coli O111:B4 and O113. Trichloroacetic acid extracts of protoplasmic fractions of the cells were analyzed for chemical composition, for constituent sugars by paper chromatography, for immunochemical relationship to endotoxin purified by gel filtration, for sedimentation behavior, and for pyrogenicity in rabbits and lethal toxicity in chick embryos. Extracts from two of three additional strains of E. coli O113, all five additional strains of E. coli O111:B4, and one strain each of E. coli O26:B6 and O55:B5 were similar to previously described native hapten in chemical composition, sedimentation properties (S(20,w), 3.7 to 5.2), biological potency (usually less than 0.1% that of corresponding endotoxin), and immunochemical relationship to endotoxin. Extracts of one strain each of E. coli O127:B8, Serratia marcescens, Citrobacter freundii, Salmonella enteritidis, and of two lipopolysaccharide-deficient mutants of S. enteritidis differed from typical native hapten. The biosynthetic relationship of native hapten to endotoxin has not yet been revealed.

Chromatography, Gel↗

Factors influencing protection against experimental tuberculosis in mice by heat-stable cell wall vaccines.

Ribi, E. (Rocky Mountain Laboratory, Hamilton, Mont.), R. L. Anacker, W. Brehmer, G. Goode, C. L. Larson, R. H. List, K. C. Milner, and W. C. Wicht. Factors influencing protection against experimental tuberculosis in mice by heat-stable cell wall vaccines. J. Bacteriol. 92:869-879. 1966.-Studies of nonviable, heat-stable vaccines for active protection against experimental tuberculosis have been continued with a test involving aerosol challenge of intravenously vaccinated mice. The previously reported activating effect of light mineral oil on disrupted cells of the BCG strain was found to be shared by certain other mineral oils and a synthetic, 24-carbon hydrocarbon, but not by kerosene or any of several vegetable oils. Dry cell walls coated with a small amount of oil and dispersed in saline with aid of an emulsifier were suitable for intravenous administration and were effective in promoting resistance to challenge. Oil used in this manner, in contrast to water-in-oil emulsions of the Freund type which could not be administered intravenously, did not potentiate the tuberculin-sensitizing activity of the cell walls. Although the amount of oil required for full effect was small (< 0.5 ml/100 mg of dry antigen), there was a critical level below which optimal enhancement was not achieved. More stable suspensions than could be obtained with the other oils were readily prepared from cell walls treated with the synthetic hydrocarbon, 7-n-hexyloctadecane. Extended experience has shown that in this test system both the viable BCG standard vaccine and heated, oil-treated experimental vaccines gave highly reproducible results showing graded responses to graded doses.

Aerosols↗

Reaction of endotoxin and surfactants. I. Physical and biological properties of endotoxin treated with sodium deoxycholate.

Ribi, E. (Rocky Mountain Laboratory, Hamilton, Mont.), R. L. Anacker, R. Brown, W. T. Haskins, B. Malmgren, K. C. Milner, and J. A. Rudbach. Reaction of endotoxin and surfactants. I. Physical and biological properties of endotoxin treated with sodium desoxycholate. J. Bacteriol. 92:1493-1509. 1966.-Endotoxins from three species of gram-negative bacteria were shown to be dissociated by the bile salt sodium deoxycholate (NaD) into nontoxic subunits with molecular weights of about 20,000. When the bile salt was removed by dialysis, the subunits reaggregated in an orderly manner to form a relatively uniform population of biologically active endotoxin particles with average molecular weights of 500,000 to 1,000,000. If a small amount of human plasma was added to the dissociated endotoxin before removal of the NaD, reassociation apparently did not occur and the preparation remained nonpyrogenic. However, the plasma protein could subsequently be removed from the endotoxin subunits, and reaggregation to the toxic form would then occur. The studies on the physical nature of endotoxin performed with biophysical solution techniques were supplemented and confirmed by direct examination of the endotoxin polymers by electron microscopy. The results of these studies were consonant with the theory that the biologically active endotoxic elements are composed of micellar aggregates of linear lipopolysaccharide subunits.

Animals↗

Separation and characterization of toxic and nontoxic forms of lipid A.

Highly purified and well-characterized samples of precursors and derivatives of bacterial lipopolysaccharides (LPS) were used to study the relationship between the chemical structure of lipid A and its toxicity. These samples included lipids X and Y (monosaccharide precursors of lipid A) from Escherchia coli MN7; incomplete lipid A (a disaccharide precursor of lipid A) from Salmonella typhimurium i50; and monophosphoryl lipid A, TLC-3 (a derivative of LPS), from S. typhimurium G30/C21. In addition, a diphosphoryl lipid A, TLC-3, was prepared from LPS of S. typhimurium G30/C21 and characterized by positive fast atom bombardment mass spectrometry. The diphosphoryl lipid A, TLC-3 fraction, was determined to be very toxic by the chick embryo lethal-dose test (CELD50 = 0.0064 microgram). Lipids X and Y, incomplete lipid A, and monophosphoryl lipid A (TLC-3), were all nontoxic (CELD50 greater than 10 micrograms). These results suggest a multiple structural requirement for toxicity of lipid A. Toxic lipid A must contain all of the following components: a glucosamine disaccharide, a sugar-1-phosphate, and normal fatty acid(s).

Animals↗