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Biomedical subjects

G Parmentier

Publications and source records attributed to G Parmentier.

At least 55 records · Page 3Linked to original sources

Disturbances in bile acid metabolism of infants with the Zellweger (cerebro-hepato-renal) syndrome.

The bile acid pattern in bile and serum from two infants with the cerebro-hepato-renal syndrome of Zellweger was severely disturbed. An increased concentration particularly of trihydroxycoprostanic acid and also of dihydroxycoprostanic acid could be demonstrated. A generalized mitochondrial defect could explain these increased concentrations. This hypothesis is supported by the abnormal structure of the mitochondria in the liver biopsy of one of our patients. It is possible that the abnormal bile acids contribute to the liver damage of infants with Zellweger syndrome.

Bile Acids and Salts↗

[Heparin-induced thrombopenia. Vascular complications in six cases (author's transl)].

The most frequent complication during heparin treatment is hemorrhage from overdosage. Heparin-induced thrombopenia is more rarely observed but is a more serious disorder. Six such cases are reported, of which three were complicated by gangrene of the limbs. Clinical findings are described, together with the methods of detecting the presence of heparin-induced antiplatelet antibodies. The affection becomes evident on the 9th day of treatment by the presence of a thrombopenia and accompanying clinical signs. These may be those of a hemorrhagic syndrome directly related to the thrombopenia, or manifestations of thrombotic lesions. The latter can cause worsening of the condition for which heparin was prescribed, arterial thrombosis of a large vessel, venous thromboses disappearing after interruption of heparin treatment, of distal thrombosis of the microcirculation with a rapidly irreversible onset of gangrene requiring amputation. The lesions are provoked by an immune mechanism and heparin has to be discontinued.

Adult↗

Determination of double bond positions in fatty acids with conjugated double bonds.

The positions of the double bonds in fatty acids with conjugated double bonds may be determined by mass spectrometry of the methyl esters of their trimethylsilyl ether derivatives obtained by hydroxylation of the double bonds followed by silylation of the resulting polyols. The method has been applied to trans-9,trans-11- and trans-10, trans-12-octadecadienoic acid.

Chemical Phenomena↗

Synthesis and characteristics of the specific monosulfates of chenodeoxycholate, deoxycholate and their taurine or glycine conjugates.

The isomeric monosulfates of chenodeoxycholate, deoxycholate, and their taurine or glycine conjugates, were synthesized and characterized. Reaction with chlorosulfonic acid in pyridine for 2 minutes mainly afforded the 3-monosulfates. To prepare the 7- or the 12-monosulfates, the 3-hydroxyl group was protected by carbethoxylation prior to sulfation of the 7- or 12-hydroxyl group for 24 h to 5 days; after sulfation, the protecting 3-carbethoxy function was removed by mild alkaline hydrolysis. The crude bile salt monosulfates were purified by chromatography on silica gel and on Sephadex LH-20 and were crystallized from methanolethanol-ethyl acetate. The results of elemental analysis demonstrated that the compounds were disodium dihydroxy bile salt monosulfates. Thin layer chromatography of the sulfates, and gas-liquid chromatography after oxidation and solvolysis, showed that the substances were pure and that the sulfate group was at the expected position.

Bile Acids and Salts↗

Sulphated and unsulphated bile acids in serum, bile, and urine of patients with cholestasis.

Samples of serum, bile, and urine were collected simultaneously from patients with cholestasis of varying aetiology and from patients with cirrhosis; their bile acid composition was determined by gas/liquid chromatography and mass spectrometry. In cholestasis, the patterns in all three body fluids differed consistently and strikingly. In serum, cholic acid was the major bile acid and most bile acids (greater than 93%) were unsulphated, whereas, in urine, chenodeoxycholic was the major bile acid, and the majority of bile acids (greater than 60%) were sulphated. Secondary bile acids were virtually absent in bile, serum, and urine. The total amount of bile acids excreted for 24 hours correlated highly with the concentration of serum bile acids; in patients with complete obstruction, urinary excretion averaged 71-6 mg/24 h. In cirrhotic patients, serum bile acids were less raised, and chenodeoxycholic acid was the predominant acid. In healthy controls, serum bile acids were consistently richer in chenodeoxycholic acid than biliary bile acids, and no bile acids were present in urine. No unusual monohydroxy bile acids were present in patients with primary biliary cirrhosis, but, in several patients, there was a considerable amount of hyocholic acid present in the urinary bile acids. The analyses of individual bile acids in serum and urine did not appear to provide helpful information in the differential diagnosis of cholestasis. Thus, in cholestasis, conjugation of chenodeoxycholic acid with sulphate becomes a major biochemical pathway, urine becomes a major route of bile acid excretion, and abnormal bile acids are formed.

Bile↗

Synthesis of the specific monosulfates of cholic acid.

The three isomeric cholic acid-monosulfates were synthetized and characterized. Cholic acid-3-sulfate was obtained by reacting cholic acid for 2 min with chlorosulfonic acid in pyridine and chromatography of the resulting bile salt mixture on Sephadex LH-20. The 7- and the 12-monosulfate were prepared by sulfation of the corresponding monohydroxy-diacetates followed by removal of the acetyl groups by alkaline hydrolysis and purification by chromatography on Sephadex LH-20. On TLC in n-butanol-acetic acid-water (10:1:1, v/v) the Rf values were 0.59 for cholic acid-3-sulfate, 0.52 for cholic acid-7-sulfate and 0.48 for cholic acid-12-sulfate. The time required for complete solvolysis at 37 degrees C in acid methanol-acetone (1:9) was 3 h for cholic acid-3-sulfate, 12 h for the 12-monosulfate and 18 h for the 7-monosulfate.

Cholic Acids↗