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Biomedical subjects

T Terano

Publications and source records attributed to T Terano.

At least 73 records · Page 4Linked to original sources

Comparative effect of leukotriene B4 and leukotriene B5 on calcium mobilization in human neutrophils.

Leukotriene B4 (LTB4) is reported to exert its biological activity in neutrophils through the increase in cytosolic free calcium that follows binding to its specific receptor. Leukotriene B5 has been shown to be far less active than LTB4. Therefore we compared the capacity of LTB4 and LTB5 to stimulate the rise in cytosolic free calcium using fura-2-loaded human neutrophils, to assess the relationship between the calcium mobilizing activity and biological potency of LTB4 and LTB5. At any concentration tested, LTB5 was less active than LTB4 in increasing cytosolic free calcium. ED50 for LTB4 and LTB5 were 5 X 10(-10) M and 5 X 10(-9) M, respectively. The difference in the binding affinities of LTB4 and LTB5 to the LTB4 receptor has been reported to explain the difference in their biological activities. In the present study we further demonstrated that the calcium mobilizing activity of LTB4 and LTB5 also correlates the different biological activity of the two compounds.

Calcium↗

In vitro effect of trichosanic acid, a major component of Trichosanthes japonica on platelet aggregation and arachidonic acid metabolism in human platelets.

The in vitro effect of trichosanic acid (TCA; C18:3, omega-5), a major component of Trichosanthes japonica, on platelet aggregation and arachidonic acid (AA) metabolism in human platelets was studied. TCA dose-dependently suppressed platelet aggregation of platelet rich plasma and washed platelets. TCA decreased collagen (50 micrograms/ml)-stimulated production of thromboxane B2 (TXB2) and 12-hydroxyhepta-decatrienoic acid (HHT) in a dose-dependent manner, while that of 12-hydroxyeicosatetraenoic acid (12-HETE) was rather enhanced. The conversion of exogenously added [14C]AA to [14C]TXB2 and [14C]HHT in washed platelets was dose-dependently reduced by the addition of TCA, while that to [14C]12-HETE was increased. Similar observations were obtained when linolenic acid (LNA; C18:3, omega-3) was used. These results suggest that TCA may decrease TXA2 formation in platelets, probably due to the inhibition of cyclooxygenase pathway, and thereby reduce platelet aggregation.

12-Hydroxy-5,8,10,14-eicosatetraenoic Acid↗

In vitro effect of cinnamic aldehyde, a main component of Cinnamomi Cortex, on human platelet aggregation and arachidonic acid metabolism.

The in vitro effect of cinnamic aldehyde, a main component of Cinnamomi Cortex, on platelet aggregation and arachidonic acid (AA) metabolism in human platelets was studied. Cinnamic aldehyde reduced platelet aggregation of both platelet rich plasma and washed platelets, dose-dependently. This compound also decreased the formation of the metabolites of AA such as thromboxane B2 (TXB2), 12-hydroxy heptadecatrienoic acid and 12-hydroxyeicosatetraenoic acid in collagen-stimulated washed platelets. The conversion of exogenous [14C]AA to cyclooxygenase metabolites or 12-lipoxygenase metabolite was not altered significantly by the addition of cinnamic aldehyde. On the other hand, collagen-induced release of [14C]AA and its metabolites from washed platelets prelabeled with [14C]AA was markedly reduced by the addition of cinnamic aldehyde. These results suggested that cinnamic aldehyde suppressed the release of AA from platelet membrane phospholipids and then reduced the formation of thromboxane A2. This inhibitory effect of cinnamic aldehyde on AA release and TXB2 formation may contribute to reduced platelet aggregation.

Acrolein↗

Anti-thrombotic and anti-atherogenic action of eicosapentaenoic acid.

Effects of dietary supplementation with highly purified EPA (1.8-2.7 g/day) for 16 weeks on platelet and red blood cell function and serum lipids concentration were investigated in patients with various thrombotic diseases. Decreases in platelet aggregation, thromboxane formation in platelets, platelet retention and whole blood viscosity, increased red blood cell deformation and prolongation of bleeding time were observed in the present study. In addition a reduction in serum cholesterol and triglyceride concentrations was noted in patients with hyperlipidemia after EPA ingestion. Some clinical improvements such as improvement of diabetic gangrene or peripheral vascular occlusive disease were observed. These results indicate that dietary supplementation of purified EPA may be beneficial for prevention and treatment of cerebro- and cardiovascular diseases.

Arteriosclerosis↗

High-performance liquid chromatographic analysis of arachidonic acid metabolites by pre-column derivatization using 9-anthryldiazomethane.

Arachidonic acid (AA) metabolites produced by washed human platelets and rat macrophages were analyzed by high-performance liquid chromatography (HPLC) using a pre-column derivatization method. The reagent, 9-anthryldiazomethane, used in this study and AA metabolites derivatized by the reagent were purified by gel permeation chromatography (PG-pak C column), prior to normal-phase HPLC analysis. A sample containing eleven derivatives (12-, 15- and 5-hydroxyeicosatetetraenoic acid, 12-L-heptadecatrienoic acid, leukotriene B4, prostaglandins B2, D2, E2 and F2 alpha, thromboxane B2 and 6-keto-prostaglandin F1 alpha) was separated on a normal-phase column (PG-pak B); the detection limit is better than 100 pg for all components.

Animals↗

Eicosapentaenoic acid as a modulator of inflammation. Effect on prostaglandin and leukotriene synthesis.

Products derived from arachidonic acid (AA) via both the cyclo-oxygenase and lipoxygenase pathways play a role in inflammation: prostaglandins (PGs), particularly PGE2, contribute to the formation of oedema, erythema and hyperalgesia whereas leukotriene B4 (LTB4), a product of the 5' lipoxygenase, may modulate the recruitment of leukocytes. We have previously reported that supplementation of a standard rat diet with eicosapentaenoic acid (EPA) caused a significant increase in the formation of LTB5, which is less active biologically than LTB4, and a decrease in the synthesis of LTB4 by stimulated leukocytes. Now we have assessed the effects of administration of highly purified EPA ethyl ester (79% pure), in two models of acute inflammation. Supplementation of a standard rat diet with 240 mg/kg/day EPA for 4 weeks significantly decreased the concentration of PGE2 and TXB2 in inflammatory exudate derived from implantation of carrageenin impregnated sponges: neither the concentration of LTB4 nor the cell number were reduced significantly. Triene prostaglandins were not detected in the exudate, however, significant levels of LTB5 were present. In the second model, oedema induced by injection of carrageenin into rat paws was significantly reduced in animals fed an EPA-rich diet. Supplementation of the diet with EPA could, by mainly reducing the synthesis of prostaglandins, offer a novel and non-toxic approach to the modulation of an inflammatory response.

Animals↗

Comparison of the in vitro effect of eicosapentaenoic acid (EPA)-derived lipoxygenase metabolites on human platelet function with those of arachidonic acid.

Eicosapentaenoic acid (EPA) has been reported to have a potent anti-aggregatory activity and to be efficiently metabolized by 12-lipoxygenase, not by cyclooxygenase in platelets. In vitro effect of 12-lipoxygenase metabolites of EPA on platelet function was studied and compared with those of arachidonic acid (AA). The 12-lipoxygenase metabolites of AA and EPA; 12-hydroperoxyeicosatetraenoic acid (12-HPETE) and 12-hydroperoxyeicosapentaenoic acid (12-HPEPE), and their hydroxy derivatives, 12-hydroxyeicosatetraenoic acid (12-HETE) and 12-hydroxyeicosapentaenoic acid (12-HEPE) were prepared enzymatically using human platelet lysate. These compounds were purified by high performance liquid chromatography and identified by gas chromatography mass spectrometry. 12-HPETE and 12-HPEPE inhibited dose-dependently washed human platelet aggregation and serotonin (5-HT) release induced by AA and collagen. The potency of 12-HPEPE was almost equal to that of 12-HPETE. Their hydroxy derivatives, 12-HETE and 12-HEPE were less potent. 12-hydroperoxy derivatives of AA and EPA were the most potent in inhibiting platelet aggregation and 5-HT release among 5-, 12- and 15-hydroperoxy isomers of AA and EPA. The inhibitory effects of 12-HPETE and 12-HPEPE on platelet aggregation were additive.

12-Hydroxy-5,8,10,14-eicosatetraenoic Acid↗

Clinical and epidemiological studies of eicosapentaenoic acid (EPA) in Japan.

From 1950 to 1980, the gross alteration in dietary habit in Japan was noted. Intake of total calories has markedly increased. This could be most likely due to a remarkable increase in intake of fat, especially animal fat, egg and milk products. A marked decrease of mortality rate due to cerebral hemorrhage and in contrast a marked increase of mortality rate due to cerebral infarction and ischemic heart disease were noted. An epidemiological study of the intake of fish meat (EPA intake) and the mortality rate of adult diseases was performed in a fishing area and in a farming area in Chiba Prefecture. Intake of fish meat (EPA) by the residents of the fishing area was 2-3 times higher than by the residents of the farming area. The mortality rate due to ischemic heart disease and cerebral vascular diseases tended to be lower in the fishing area than in the farming area. EPA manufactured from sardine oil was orally given to normal subjects and to patients with cerebro- and cardiovascular diseases for 4-16 weeks. Significantly decreased platelet aggregation, decreased platelet retention, lowered whole blood viscosity, prolonged bleeding time, increased erythrocyte deformability, improvement of hyperlipidemia, and clinical improvement in some patients were noted. 12-Lipoxygenase metabolites of EPA (12-HPEPE) and arachidonic acid (12-HPETE) have an equipotent inhibitory action on platelet function.

Arachidonate 12-Lipoxygenase↗

Involvement of 5-lipoxygenase metabolites in ACTH-stimulated corticosteroidogenesis in rat adrenal glands.

Various lipoxygenase (LO) products of arachidonic acid (AA) have been found to have potent biological activities and modulate physiological processes in various cells including endocrine cells. However, no studies concerning LO products in adrenocortical cells have been reported. The present study was performed to investigate LO products in rat adrenocortical cells and its role in ACTH-stimulated adrenal steroidogenesis. LO metabolites produced in ACTH-stimulated rat adrenocortical cells prelabeled with [3H]AA was analyzed by reverse phase and straight phase HPLC and two 5-LO products, 5-hydroxyeicosatetraenoic acid (5-HETE) and leukotriene B4 (LTB4) were identified. ACTH-induced 5-HETE and LTB4 production in adrenal cells was dose dependently inhibited by AA861, a specific inhibitor of 5-LO. AA861 reduced ACTH-stimulated corticosteroid production without any change in cyclic AMP formation, while indomethacin did not affect both corticosteroid and cyclic AMP production. Reduced steroidogenesis by AA861 was reversed by the addition of 5-hydroperoxyeicosatetraenoic acid (5-HPETE). Also exogenously added 5-HPETE dose dependently augmented ACTH-stimulated corticosteroid production without any concomitant change in cyclic AMP production. However, 5-HETE and LTB4 had no such effect. These results indicate that 5-LO pathway is present in rat adrenocortical cells and its metabolites, most likely 5-HPETE, may play an important role in adrenal steroidogenesis.

Adrenal Cortex↗