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Biomedical subjects

B Samuelsson

Publications and source records attributed to B Samuelsson.

At least 235 records · Page 13Linked to original sources

Impaired platelet response to thromboxane-A2 and defective calcium mobilization in a patient with a bleeding disorder.

Platelet aggregation, secretion, and thromboxane formation induced by various agonists, including arachidonate, prostaglandin-G2 (PGG2), and thromboxane-A2 (TxA2), were examined in a patient with a bleeding disorder who was previously reported to have a TxA2-related defect. Aggregation and 14C-5HT secretion were decreased, and no TxB2 formation occurred in response to adenosine diphosphate (ADP), epinephrine, or collagen. Arachidonate-induced aggregation and TxB2 formation, and PGG2-induced aggregation (but not TxB2 formation) were impaired at low agonist concentrations. The patient's platelets did not aggregate in response to TxA2 generated from arachidonate in normal platelets, but were capable of synthesizing TxA2 from both arachidonate and PGG2. In addition, aggregation and secretion induced by low concentrations of the ionophore A23187 were impaired in platelet-rich plasma (PRP) and in gel-filtered platelets in the absence of extracellular calcium; these responses became normal at higher A23187 concentrations or, in GFP, at low A23187 concentrations in the presence of exogenous calcium. These findings indicate that the TxA2 defect in this patient does not result from a thromboxane synthetase deficiency, but may be due to impaired mobilization of platelet calcium, and thus are consistent with the possibility that TxA2 may act as a calcium ionophore.

Arachidonic Acids↗

Leukotriene A. Isolation from human polymorphonuclear leukocytes.

Leukotriene A, an unstable intermediate in the conversion of arachidonic acid to stable leukotrienes, was isolated from human polymorphonuclear leukocytes. The allylic epoxide intermediate is rapidly hydrolyzed under acidic conditions. A method was therefore developed for esterification and extraction of the intermediate as the methyl ester from an alkaline aqueous phase, into an aprotic solvent. This was achieved by addition of methanol and an excess of diazomethane in ether to the incubatio mixture, followed by addition of water, and phase separation. The identity of the isolated compound with the previously synthesized methyl ester of 5 (S)-trans-5,6-oxido-7,9-trans-11,14-cis-eicostatetraenoic acid (leukotriene A), was established by comparing chromatographic and chemical properties of the isolated compound and synthetic leukotriene A.

Arachidonic Acids↗

Leukotrienes are potent constrictors of human bronchi.

Slow reacting substance of anaphylaxis (SRS-A) is released by various stimuli, including immunological challenge, and has long been considered an important mediator of immediate hypersensitivity reactions, such as bronchoconstriction in allergic asthma. Recently, slow reacting substances from several tissues have been identified and characterized as members of a newly discovered group of substances, the leukotrienes. Leukotrienes are generated from arachidonic acid and other polyunsaturated fatty acids in a pathway initially involving a lipoxygenase-catalysed oxygenation at C-5 (Fig. 1). This differs from the synthesis of prostaglandins and thromboxanes, where the initial transformation of arachidonic acid is catalysed by a cyclo oxygenase (Fig. 1). Recently, leukotriene C4(LTC4:5(S)-hydroxy,6(R)-S-glutathionyl-7,9-trans, 11,14-cis-eicosatetraenoic acid) and D4(LTD4:5(S)-hydroxy,6(R)-S-cysteinyl-glycyl-7,9-trans,11,14-cis-eicosatetraenoic acid) were found to have biological effects in several bioassay systems, which are strikingly similar to those previously reported for impure extracts of SRS-A. Here we report the remarkable contractile activity of both LTC4 and LTD4 on isolated human bronchi, which further emphasizes the possibility that leukotrienes are potent mediators of bronchoconstriction in man.

Arachidonic Acids↗

Stereochemistry in the formation of 9-hydroxy-10,12-octadecadienoic acid and 13-hydroxy-9,11-octadecadienoic acid from linoleic acid by fatty acid cyclooxygenase.

9-Hydroxy-10,12-octadecadienoic acid and 13-hydroxy-9,11-octadecadienoic acid are formed from linoleic acid upon incubation with the microsomal fraction of homogenates of the sheep vesicular gland (Hamberg, M. and Samuelsson, B. (1967) J. Biol. Chem. 242, 5344-5354. This communication is concerned with the stereochemical aspects of the conversion. The ratio between the 9- and 13-hydroxy isomers was 77:23. Steric analysis of the individual isomers showed that the hydroxyl group of both isomers had mainly the L configuration, i.e. 9L:9D, 79:21 and 13L:13D, 9- and 13-hydroxyoctadecadienoates which had largely lost the tritium label (6% and 7% retention of tritium relative to precursor, respectively) showing that the hydrogen which is removed from C-11 during the conversion has the L (pro-S) configuration.

Animals↗

Nomenclature for leukotrienes.

A previously introduced nomenclature for leukotrienes is extended on the basis of the nature of the cysteine substituent and the total number of double bonds in new and earlier described compounds.

Animals↗

Leukotriene D: a slow reacting substance from rat basophilic leukemia cells.

A slow reacting substance produced by rat basophilic leukemia cells, treated with ionophore A23187, was characterized by spectroscopic methods, enzymatic conversions, and chemical degradations as 5-hydroxy-6-S-cysteinylglycyl 7,9,11,14-eicosatetraenoic acid (leukotriene D). gamma-Glutamyltranspeptidase [gamma-glutamyltransferase; (5-glutamyl)-peptide: amino-acid 5-glutamyltransferase, EC 2.3.2.2] converted leukotriene C to a product identical to leukotriene D. This suggests that the stereochemistry of the arachidonyl moiety of leukotrienes C and D is the same [5(S)-6(R)-7,9-trans-11,14-cis]. Leukotriene D induces a faster contraction and, on a molar basis, is more potent than leukotriene C in the isolated guinea pig ileum bioassay.

Amino Acids↗

Interactions of prostaglandin H2 and thromboxane A2 with human serum albumin.

The present report describes the interactions of human plasma proteins with the unstable endoperoxide, prostaglandin H2 and thromboxane A2, generated by incubation of platelets with prostaglandin H2 or arachidonic acid. It was found that both compounds reacted very rapidly with plasma proteins to form covalently bound derivatives. The major reacting plasma protein was human serum albumin. Depending on conditions, 20-40% of added prostaglandin H2 and 50-80% of generated thromboxane were bound to proteins. This reaction of both prostaglandin H2 and thromboxane A2 prevents their detection by classical analytical methods. The protein binding of thromboxane was more pH-sensitive than the binding of prostaglandin H2. The reactions cause reduced levels of both endoperoxide and thromboxane B2 in suspensions of washed platelets using human serum albumin as compared to buffer. It was also shown that the half-life of prostaglandin H2 was considerably reduced in the presence of albumin.

Arachidonic Acids↗

Identification of leukotriene C-1 as a major component of slow-reacting substance from rat mononuclear cells.

Slow-reacting substance (SRS) was produced by rat peritoneal mononuclear cells after stimulation with the ionophore A23187. The SRS consisted of two main components as judged by high-pressure liquid chromatography (HPLC) on Florisil. The larger and more polar component consisted mainly of leukotriene (LT) C-1 as judged by ultraviolet spectroscopy, mass spectrometry (after desulfurization), amino acid analysis, and conversion by soybean lipoxygenase. Comparisons with authentic LTC-1 showed identity on reverse phase HPLC and guinea pig ileum bioassay. The latter methods are known to distinguish between LTC-1 and stereoisomers of LTC-1.

Amino Acids↗