Intensive plasmapheresis during pregnancy and spurious amniotic fluid bilirubin.
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Biomedical subjects
Publications and source records attributed to W Colli.
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Membrane vesicles can be obtained from epimastigote forms of Trypansoma cruzi by incubating cells with either cross-linking reagents or acid pH. Acetate, phtalate or citrate, at pH 4.0, but not at higher pH values, were able to induce plasma membrane vesiculation. Vesicles have been purified by sucrose density centrifugation and their membrane origin was demonstrated by the following criteria: (a) Vesicles are 5--10 times richer in protein-bound iodine when they are prepared from cells previously labeled with 131I by the lactoperoxidase catalyzed reaction. (b) Electron microscopy of vesiculating cells shows physical continuity between cell plasma membrane and vesicle membrane. (c) Antibodies prepared against purified vesicles are able to agglutinate epimastigote forms of T. cruzi with sera dilutions up to 1 : 256 to 1 : 512. (d) Freeze-fracture studies of the purified vesicles have shown images of faces P and E compatible with known images of the intact cell plasma membrane. Typical preparations of acetate vesicles present the following characteristics: total carbohydrate : protein=1.5--2.0; orcinol : protein-0.07 and absence of diphenylamine reaction. Vesicles contain 0.2--0.5% and 0.3--1.0% of the total homogenate protein and carbohydrate, respectively. The presence of 10 major protein bands and 30--50-fold enrichment of the four sugar-containing macromolecules present in epimastigote forms of T. cruzi have been demonstrated in these preparations.
A fraction containing plasma membrane fragments has been purified from epimastigote forms of Trypanosoma cruzi. Cells were broken by sonic vibration under well defined conditions and membranes were isolated by differential centrifugation and equilibrium centrifugation in sucrose gradients. The co-purification (approximately 10-fold) of adenylyl cyclase and plasma membrane-bound radioactive iodine is highly suggestive of the localization of this enzyme in the plasma membrane of T. cruzi. Determination of succinate cytochrome c reductase and glucose-6-phosphatase activities, as well as of total amounts of DNA and RNA in the purified fraction, indicates a negligible contamination from other cellular organelles. The co-purification of acid phosphatase activity with bound labeled iodine and adenylyl cyclase was taken as circumstantial evidence that part of this enzyme also belongs to the plasma membrane of T. cruzi. Conventional electron miscroscopy and freeze-fracture images of this fraction are consistent with a highly enriched plasma membrane preparation.
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Particulate preparations from epimastigote forms of Trypanosoma cruzi contain an adenylyl cyclase (ATP pyrophosphate-lyase (cyclizing), EC 4.6.1.1) which could be stored at --20 degree C and resisted 5 cycles of freezing and thawing over 10 days without significant loss of activity. The enzyme reaction strictly required Mn2+, had a pH optimum of 7.7 and was not inhibited or stimulated by NaF. Particles prepared in the presence of 10 mM Mn2+ or Mg2+ were 3--4 times more active than particles prepared in the absence of these cations. However, Mg2+ could not substitute for Mn2+ during enzyme assay nor did it enhance activity in the presence of saturating concentrations of Mn2+. The binary complex Mn - ATP2- was shown to be the true substrate for the adenylyl cyclase and free ATP was highly inhibitory. Plots of enzyme activity against equimolar concentrations of ATP - Mn gave sigmoid curves with n values in Hill plots ranging between 1.5 and 2.0. Excess Mn2+ activated the cyclase catalyzed reaction at low but not at high concentrations of ATP - Mn. In the presence of an excess of 1 mM Mn2+, which transforms 97% of the added ATP to productive Mn - ATP2- complex, the substrate saturation curve assumed a Michaelian pattern with an apparent Km =0.2 mM.
Lipopeptidophosphoglycan, extracted from whole cells of epimastigote forms of Trypanosoma cruzi, has now been shown to contain 12.6% of fatty acids in addition to the previously identified content of neutral sugars (60%), glucosamine (0.8%), peptide (9.5%) and acid-hydrolyzable phosphate (2%). The main fatty acids are palmitic (6.9%) and lignoceric (4.6%) acids. Stearic (0.55%), oleic (0.15%) and myristic (0.18%) acids were also found. One third of the fatty acids are bound in the lipopeptidophosphoglycan as esters (14 mmol%) and two thirds as amides (28 mmol%). Lignoceric acid was found to be bound only as amide. Two ninhydrin-positive compounds, obtained by chloroform extraction of a total acid hydrolysate of the lipopeptidophosphoglycan, were tentatively identified as sphingosine bases.
The analysis of the transcriptional mechanism of the ribosomal RNA genes in Bacillus subtilis was undertaken by a study of the rRNA chain elongation in the presence of rifampicin. The residual RNA synthesis after the addition of rifampicin and [3H] uridine to exponentially growing cells has shown that 56% of the radioactivity incorporated into total RNA belongs to the unstable fraction and 44% to the fraction containing mature rRNA and tRNA. Such study allowed an estimation of the half-life of messenger RNAs as being approximately 2 min. The analysis of the transcription pattern of the ribosomal RNA genes, as measured by the amount of radioactivity found in the ribosomal subunits, was complicated by a contamination of the 30 S subunits by 50 S subunits. A contamination of approximately 15% was estimated by polyacrylamide gel electrophoresis and competitive hybridization. The ratios of incorporated radioactivity at zero time when drug and label were concomitantly added ranged between 5.4-6.0, after correction for this contamination. The decay of the 23 S rRNA followed a straight line which became parabolic in its final portion. These results, and theoretical considerations on the lag of rifampicin action and on the variance of the specific activity of the nucleotide pool at the very early times of the experimental observation, favor the interpretation that the 16 and 23 S rRNA genes in B. subtilis belong to the same transcriptional unit, being cotranscribed, in that order, by the same molecule of RNA polymerase. The transcriptional times of the 16 and 23 S rRNA genes were estimated as being 30 and 60 s, respectively.
A lipopeptidophosphoglycan was extracted from epimastigote forms of Trypanosoma cruzi by phenol (44%) treatment of sonicated cells. The substance was purified from other glycoproteins and nucleic acid as follows: ethanol fractionation. Bio-Gell P-150 column chromatography in the presence of 0.1% sodium dodecyl sulfate, extraction with chloroform/methanol/water (10 : 10 : 3) and precipitation of the pure compound by methanol. The substance migrated as a single band in sodium dodecyl sulfate-polyacrylamide gel electrophoresis stained with periodic acid-Schiff and Coomassie blue. In the absence of sodium dodecyl sulfate very little or no migration was observef aggregates. In such gels a Sudan Black positive reaction coincident with the periodic acid-Schiff positive banc was obtained. Neutral sugars (60%, by phenol-sulfuric acid assay) were analysed by paper chromatography and gal-liquid chromatography. The following ratio was found: mannose : galactose : glucose = 35 : 22 : 1. Glucosamine, identified by paper chromatography, was colorimetrically estimated (0.8%). Sialic acid was not detected. Analysis by the biuret method gave 9.5% protein. All phosphorus present (2%) was released by hydrolysis, thus apparently excluding the possibility of an alkyl phosphonic acid as a structural component. Fatty acids were detected by thin layer chromatography in a hexane extract of the acid hydrolysate. Gas-liquid chromatography of the esterified mixture showed that the main component had the same retention time as palmitic acid methyl ester. The infrared spectrum was consistent with the general structure and indicated the presence of alpha-glycopyranosyl linkages. Low concentrations of the lipopeptidophosphoglycan were able to inhibit the concanavalin A-induced agglutination of epimastigotes.
The cellular DNAs of Acanthamoeba castellanii have been characterized by their behaviour in CsC1 density gradients, by their thermal denaturation and by their renaturation kinetics. Whole-cell DNA exhibits, on CsC1 density gradients, a major peak with a density of 1.717 g/cm3 (major component) and a minor peak with a density of 1.692 g/cm3 (minor component). The major component is nuclear and the minor component is of cytoplasmic origin. The latter contains mitochondrial DNA as well as an extramitochondrial DNA fraction. Reiterated sequences make up approximately 14% of the total and are mainly cytoplasmic. They are characterized by three families of nucleotide sequences. The mitochondrial DNA exhibits a complex renaturation pattern. The fast renaturing component has a calculated complexity of 4.107 daltons. The slower renaturing component has a kinetic complexity tentatively estimated as 1.1010 daltons. The melting profile of mitochondrial DNA suggests heterogeneity in base composition.
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The need for sophisticated ocmponent therapy has resulted in improved techniques for obtaining concentrates of platelets and granulocytes. The use of single donors as a source for these products is advisable to avoid multiple sensitizations. Obtaining concentrated granulocytes represents a problem because of the difficulty in separating granulocytes from red blood cells by differential centrifugation or sedimentation since the specific gravities are similar. Hydroxyethyl starch (HES) makes the separation more effective. A solution made of 250 ml of 6 per cent HES, 250 ml of distilled water, and 15 g of sodium citrate in 30 ml distilled water provided a satisfactory anticoagulant solution for this purpose. The granulocytes collected averaged 49 per cent of the total available in the processed blood; the platelets averages 82 per cent. A satisfactory yield could thus be obtained from a single donor, and this could be repeated several times in a month. The value of ABO, Rh, and HL-A compatibility between donor and recipient probably increases the viability and safety of this procedure. The Haemonetic No. 30 Cell Separator provided an easy and rapid method for this procedure.