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1.
1. The anti-aggregatory potency of a number of E-type PGs was compared in human and rabbit platelet-rich plasma (PRP) and washed platelets. The potency of 13,14-dihydro-PGE1 and 5,6-dihydro-PGE3 is significantly higher in human than in rabbit washed platelets, while the potency of 15-keto-13,14-dihydro-PGE1 is higher in rabbit.2. The potency of PGEs in rabbit PRP is very similar to that of washed platelets, with the exception of 1a,1b-dihomo-PGE2, which is of a significantly lower potency in PRR.3. In human, 5,6-trans-PGE2, PGE3, and 15-keto-13,14-dihydro-PGE1 are more potent in PRP than in washed platelets.4. The results indicate that the potency of E-type PGs in human and rabbit platelets is different and plasma can essentially influence the anti-aggregatory effect of PGEs; plasma can either decrease or increase potency.  相似文献   

2.
A method is described for measurement of the cyclooxygenase products, thromboxane,prostacyclin, and prostaglandins (PG), and several prostaglandin metabolites. The procedure involves separation of the compounds by high-pressure liquid chromatography combined with identification and estimation by serologic analysis. These combined procedures have been used to identify and estimate five such products, PGE2, PGE1 PGF2α, PGF, and 6-keto-PGF, in the culture fluids of dog kidney cells stimulated by a tumor-promoting phorbol diester. The prostaglandin metabolites, 13,14-dihydro-15-keto-PGE2, 13,14-dihydro-15-keto-PF2, 13,14-dihydro-PGE2, and 13,14-dihydro-PGF, were not found in these culture fluids.  相似文献   

3.
Cyclooxygenase products of arachidonic acid metabolism in the plasma of normal rabbits and animals bearing the VX2 carcinoma were separated by high performance liquid chromatography and the effluent fractions assayed by serologic methods. The products measured were 6-keto-PGF, thromboxane B2, PGE2, PGF, 13,14-dihydro-PGE2, 13,14-dihydro-15-keto-PGE2, 15-keto-PGE2, and 13,4-dihydro-15-keto-PGF. In hypercalcemic, tumor-bearing rabbts, the plasma concentrations o 13,14-dihydro-15-keto-PGE2 and 13,14-dihydro-15-keto-PGF were markedly elevated (in the range of 0.5 to 16 ng/ml). Previously unmeasured 6-keto-PGF, thromboxape B2, 13,14-dihydro-PGE2 and 15-keto-PGE2 were not found in high concentrations in the plasma of tumor-bearing rabbits. These results add further support to our conclusion that the VX2 tumor produces hypercalcemia in the host by a mechanism which utilizes PGE2, rather than a subsequent metabolite of this prostaglandin, as the mediator between the neoplasm and bone.  相似文献   

4.
A charcoal adsorption method was developed to measure specific prostaglandin binding in low speed supernates of hamster myometrial homogenates. This method was used to characterize and quantitate PGE1-specific binding. The equilibrium binding constants and the concentration of specific PGE1 binding sites were determined during the hamster estrous cycle. The apparent association constant for 12 different preparations was 1.16 ± 0.08 × 109M−1. The concentration of PGE1 specific binding sites was significantly higher on Days 2 and 3 of the estrous cycle than it was on Days 1 or 4. The competition for PGE1 binding sites by PGE2, PGF, PGA1 and various PGE1 metabolites and derivatives was measured in hamster myometrial homogenates. Relative affinities of the natural prostaglandins for the PGE1 binding sites, calculated by parallel line assay, were: PGE2>PGE1>PGA1>PGF. For PGE1 metabolites the relative affinities were: PGE1>13,14-dihydro-PGE1>13,14-dihydro-15-keto-PGE1>15-keto-PGE1. For the analogs and derivatives the compounds tested ranked as: 16,16-dimethyl-PGE1≥PGE1>PGE1 methyl ester>17-phenyl-18,19,20-trinor-PGE1>15(S)15-methyl-PGE1 methyl ester. Arachidonic acid, bis-homo-γ-linolenic acid and 7-oxa-13 prostynoic acid had relative affinities ≥0.1 compared to PGE1=100. Indomethacin had a relative affinity of 0.4 compared to PGE1.  相似文献   

5.
We have investigated the mechanism(s) involved in the removal of prostaglandins (PG) from the pulmonary circulation by the lung. Unidirectional fluxes of PG from the circulation into the lung are measured in an isolated perfused rat lung preparation. Evidence is presented which suggests that a transport system for PG exists in lung tissue. This transport system is responsible for the removal of some PG from the circulation by the lung. PGE1 and PGF are substrates for this system, whereas PGB1, PGA1, and 15-keto-PGF are not. Since PGA1 is a substrate for the intracellular PG dehydrogenase, the selectivity of the lung's metabolism system for circulating PG is probably due to the selectivity of the transport system for PG. It is shown that the percentage of the pulmonary arterial concentration (CA) of PGE1 or PGF that is metabolized on passage through the pulmonary circulation decreases rapidly as CA increases. When the lungs were perfused with PGE1 (PGF), the metabolites detected in the venous effluent were 15-keto-PGE1 (PGF) and 15-keto-13,14-dihydro-PGE1 (PGF). The time course pattern of the appearance of metabolites in the venous effluent after the initiation of a constant CA, and the relative concentrations of the metabolites in the venous effluent, were examined as a function of CA.  相似文献   

6.
Prostaglandin biosynthesis and metabolism were studied in the VX2 carcinoma-bearing rabbit, an animal model of prostaglandin-mediated hypercalcemia. All the identification and quantification of the prostaglandins were done by gas chromatography-mass spectrometry. The tumor incubated in vitro converted exogeneous arachidonic acid principally to PGE2. Biosynthesis from endogenous precursor lipids yields mainly PGE2 and PGF2α. The 100,000 × g supernatant fluid of the tumor did not contain any metabolizing enzymes.Significant hypercalcemia developed between the first and second week after tumor implantation. The levels of the major plasma metabolite of PGE2, 15-keto-13,14-dihydro-PGE2, became elevated at one week, had risen 25-fold by the end of the second week, and at the fourth week were elevated to 256 times the pre-incubation levels. The concentration of 15-keto-13,14-dihydro-PGF2α in plasma rose in parallel but to a lesser degree. 7α-hydroxy-5,11-diketotetranor-prostane-1,16-dioic acid, the major urinary metabolite of the E prostaglandins, was elevated two weeks after tumor implantation and rose until the fifth week. Indomethacin treatment lowered both serum calcium and the plasma level of 15-keto-13,14-dihydro-PGE2.  相似文献   

7.
A method for the quantitation of prostaglandin (PG) E1 in biological samples of gas chromatography—mass spectrometry has been developed. PGE1 was separated from PGE2, 13,14-dihydro-PGE2, and other potentially interfering prostaglandins by reversed phase high performance liquid chromatography. After conversion of PGE1 to PGB1 by treatment with methanolic KOH, PGB1 was derivatized to the methyl ester trimethylsilyl ether and analyzed by selected ion monitoring using hexadeutero-PGE1 as an internal standard. Measurable levels of PGE1 were found in human and rat urine and in incubates of rat and rabbit renal papilla. PGE1 excretion and production by renal slices was blocked by treatment with indomethacin. A complete mass spectrum of derivatized PGE1 was obtained from PGE1 generated by rabbit renal papillary slices.  相似文献   

8.
Pretreatment of human lung fibroblasts with PGE2 but not PGF enhanced synthesis of prostaglandins (PGs). The effect of the pretreatment on PG synthesis was related to the concentration of PGE2 that was added to the culture medium. Pretreatment with PGE2 at 5 × 10−12M did not enhance PG synthesis whereas pretreatment with PGE2 at 5 × 10−6M induced a maximal effect. Production of PGs was increased following 1 day of pretreatment with PGE2 and was increased further following 3 days of pretreatment. The PGE2 treated cells showed only a slight increase in the bradykinin-induced release of radioactivity from cells prelabeled with [3H]arachidonic acid but showed a dramatic increase in the bradykinin-induced synthesis of radio-labeled PGs. The conversion of free arachidonate to PGs in both intact cells and in a cell-free preparation was increased by PGE2 pretreatment. The presence of cyclohexamide during the pretreatment did not inhibit the PGE2-induced activation of PG synthesis. Taken together, the results indicate that pretreatment of cells with PGE2 increased PG synthesis by augmenting the conversion of arachidonate to PGs.  相似文献   

9.
Quantitative assays for prostaglandins (PG) E1 and PGF are described using [3,3,4,4,5,6-2H6]labeled prostaglandins as carriers and methyl ester-O-methyloxime-acetate (PGE1) and methyl ester-acetate (PGF) derivatives for gas - liquid chromatography/mass spectrometric analysis. Thin-layer argentation chromatography was used to separate PGE1 from PGE2 and 13, 14-dihydro-PGE2. These latter compounds, which do not separate from PGE1 using conventional thin-layer chromatography or under the gas - liquid chromatographic conditions used, can significantly interfere with the quantitative analysis of PGE1. The method described prevents this interference and is therefore suitable for the accurate analysis of PGE1 in biological samples containing a high concentration of PGE2 and/or 13, 14-dihydro-PGE2.  相似文献   

10.
A method is described for the measurement of 15-keto-13,14-dihydrometabolites of PGE2 and PGF in peripheral human plasma. This involves purification by high performance liquid chromatography followed by determination of levels by combined gas chromatography-mass spectrometry using tetradeuterated analogs of the metabolites as internal standards. The levels of these metabolites in plasma are considered to be a more reasonable index of the entry of PGE2 and PGF into peripheral blood than are the levels of the corresponding primary prostaglandins. The endogenous levels of 15-keto-13,14-dihydro-PGE2 and 15-keto-13,14-dihydro-PGF found in peripheral plasma are 33 ± 10 pg/ml (SD; n=6) and 40 ± 16 pg/ml (SD; n=6), respectively.  相似文献   

11.
To ascertain whether prostaglandins (PG) may play a role in the secretion of glucagon and in an attempt to elucidate the conflicting observations on the effects of PG on insulin release, the isolated intact rat pancreas was perfused with solutions containing 1.1 × 10−9 to 1.8 × 10−5M PGE2. In the presence of 5.6 mM glucose significant increments in portal venous effluent levels of glucagon and insulin were observed in response to minimal concentrations of 2.8 × 10−8 and 1.4 × 10−7M PGE2, respectively; a dose-response relationship was evident for both hormones at higher concentrations of PGE2. When administered over 60 seconds, 1.4 × 10−6M PGE2 resulted in a significant increase in glucagon levels within 24 seconds and in insulin within 48 seconds. Ten-minute perfusions of 1.4 × 10−6M PGE2 elicited biphasic release of both islet hormones; Phase I glucagon release preceded that of insulin. Both phases of the biphasic glucagon and insulin release which occurred in response to 15-minute perfusions of 10 mM arginine were augmented by PGE2. These observations indicate that PGE2 can evoke glucagon and insulin release at concentrations close to those observed by others in the extracts of rat pancreas. We conclude that PG may be involved in the regulation of secretion of glucagon and insulin and may mediate and/or modify the pancreatic islet hormone response to other secretagogues.  相似文献   

12.
Myometrial low speed supernatant prepared from non-pregnant rhesus uteri was incubated with 3H-Prostaglandin (PG)E1 with or without addition of unlabelled prostaglandins. The uptake of 3H-PGE1 was inhibited in a dose dependent fashion by PGE2>PGE1>PGA1>PGF=PGA1>PGB1=PGB2≥PGD2. PGE1 metabolites inhibited 3H-PGE1 binding in the following order: 13,14-dihydro-PGE1>13,14-dihydro-15-keto-PGE1=15-keto-PGE1. The specific binding of 3H-PGE1 and 3H-PGF was similarly affected by the temperature and time of incubation. Equilibrium binding constants determined using rhesus uteri obtained during the luteal phase of the menstrual cycle indicate the presence of high affinity PGE1 binding sites with an average (n=3) apparent dissociation constant of 2.2 × 10−9M and a lower affinity PGE1 binding site with a Kd ≅ 1 × 10−8M. No high affinity — low capacity 3H-PGF sites could be demonstrated.Relative uterine stimulating potencies of some natural prostaglandins and prostaglandin analogs tested after acute intravenous administration in mid-pregnant rhesus monkeys corresponded with the PGE1 binding inhibition of the respective compound. The uterine stimulating potencies of the prostaglandin analogs tested were: (15S)-15-methyl-PGE2=16,16-dimethyl-PGE2>17-phenyl-18,19,20-trinor-PGE2>16 phenoxy-17,18,19,20-tetranor-PGF=PGE2=PGE1=(15S)-15-methyl-PGF>PGF.  相似文献   

13.
A novel natural E-prostaglandin was detected by HPLC among the endogenous prostaglandins extracted from ram seminal vesicles. The corresponding precursor — all-cis-eicosa-8,11,14,17-tetraenoic acid was isolated from bovine liver lipids and the preparative biosynthesis with the microsomal fraction of ram seminal vesicles was performed. The isolated product was purified by HPLC and identified by GC-MS as 5,6-dihydro-PGE3. The results of in vitro testss demonstrate that 5,6-dihydro-PGE3 is 14 times less active uterine stimulant than PGE1, at the same time retaining 75% of the anti-aggregatory potency of PGE1. Thus, 5,6-dihydro-PGE3 meets the requirements of a selective antithrombotic agent more than PGE1.  相似文献   

14.
To ascertain whether prostaglandins (PG) may play a role in the secretion of glucagon and in an attempt to elucidate the conflicting observations on the effects of PG on insulin release, the isolated intact rat pancreas was perfused with solutions containing 1.1 × 10−9 to 1.8 × 10−5M PGE2. In the presence of 5.6 mM glucose significant increments in portal venous effluent levels of glucagon and insulin were observed in response to minimal concentrations of 2.8 × 10−8 and 1.4 × 10−7M PGE2, respectively; a dose-response relationship was evident for both hormones at higher concentrations of PGE2. When administered over 60 seconds, 1.4−10−6M PGE2 resulted in a significant increase in glucagon levels within 24 seconds and in insulin within 48 seconds. Ten-minute perfusions of 1.4 × 10−6M PGE2 elicited biphasic release of both islet hormones; Phase I glucagon release preceded that of insulin. Both phases of the biphasic glucagon and insulin release which occurred in response to 15-minute perfusions of 10 mM arginine were augmented by PGE2. These observations indicate that PGE2 can evoke glucagon and insulin release at concentrations close to those observed by others in the extracts of rat pancreas. We conclude that PG may be involved in the regulation of secretion of glucagon and insulin and may mediate and/or modify the pancreatic islet hormone response to other secretagogues.  相似文献   

15.
Oviduct segments from infundibulum, magnum, uterus, uterovaginal junction and vagina of actively laying hens at preoviposition time were tested for their contractile reaction to prostaglandin E1 by or methods. Maximum stimulatory response was observed from the muscular strips of the proximal oviduct segment (infundibulum) and a complete relaxation was recorded from the distal part (vagina) at molar concentrations of 1.4 × 10−7, 3.4 × 10−7 and 7.0 × 10−7. The uterine strips reacted with a stimulatory response at higher concentrations (1.4 × 10−6 and 2.8 × 10−6 moles), but lacked any significant change at lower concentrations. The uterovaginal muscular strips showed a mild but prolonged inhibitory response, while the magnum responded with a significant increase in the luminal pressure when tested . It is concluded that PGE1 exerts a stimulatory effect on the uterus to initiate transport of the egg to subsequent segments (uterovaginal junction and vagina), which relax under PGE1 influence and allow passage of the egg by pressure differences.  相似文献   

16.
Sympathetic nerve stimulation of the perfused mesenteric arterial bed of the rabbit, , increase the secretion of prostaglandin (PG)I2 and PGE2. Prazosin (4.8 × 10−6), and α1 adrenergic receptor antagonist, inhibited this inrease in release of PGI2 but not of PGE2 whereas rauwolsin (10−7 M), an α2 adrenergic receptor antagonist, inhibited the increase in release of PGE2 but not of PGI2. Prazosin (10−6 M) completely blocked the vasoconstrictor response to nerve stimulation, and to norepinephrine and phenylephrine administration, suggesting there to be little of an α2 adrenergic receptor component in this response. It is concluded that the increase in PGI2 release follows the activation of α1 adrenergic receptors and is therefore post-junctional in origin, whereas the increase in PGE2 release follows the activation of α2 adrenergic receptors and may be pre- and/or post-junctional in origin.Indomethacin (2.8 × 10−7, 5.6 × 10−7 and 1.12 × 10−6 M did not affect the vasoconstrictor responses to nerve stimulation at 10 Hz, whereas rauwolsin (10−7 M) in the presence of indomethacin substantially increased them. These results indicate that PGE2 does not regulate norepinephrine release following nerve stimulation at 10 Hz to rabbit mesenteric arteries, and that the inhibition of norepinephrine release following stimulation of α2 pre-junctional receptors is independent of PG involvement.  相似文献   

17.
In these experiments we have examined the effects of PGE1, PGE2, PGF and PGF on synovial perfusion in the normal canine synovial microcirculation. The effects of the drugs on synovial perfusion were determined indirectly from the changes produced in the rate of clearance of 133Xenon from the joint by their intra-articular injection. Prostaglandins PGE1 and PGE2 were found to be strongly vasodilator with PGE1 being the more active. PGF appeared to have little or no vasoactive properties in doses up to 1 ugm. (2.8 × 10−5M) in our I preparation while PGF was vasodilator at this high dosage only. Neither SC19920 nor diphloretin phosphate antagonised the effects of PGE1 in these experiments.  相似文献   

18.
Prostaglandin I2 potentiated the paw swelling induced by carrageenin in rats. Prostaglandin I2 (0.1 μg) showed similar activity to PGE1 (0.01 μg). This potentiating property disappeared in 60 minutes and was completely abolished by diphenhydramine (25 mg kg−1, i.p.). In vascular permeability tests, PGI2 itself (2.5 × 10−10 mol, 88 ng) caused no dye leakage reaction, but PGE1 (2.5 × 10−10 mol, 88.5 ng) caused a significant dye leakage. This effect of PGE1 was statistically significant compared with vehicle- or PGI2-treated group (p<0.05). Prostaglandin I2 potentiated the increased vascular permeability induced by 5-hydroxytriptamine (2.5 × 10−10 mol), bradykinin (5 × 10−10 mol) and histamine (2 × 10−10 to 2 × 10−8 mol). The potentiation was the most evidence in the case of histamine.  相似文献   

19.
The effects of various II-deoxyprostaglandin E analogs on the basal and prostaglandin E2 (PGE2)-induced cyclic AMP accumulation in the rat anterior pituitary were studied in vitro. 13-Hydroxy-9-oxoprost-14-ynoic acid at 5 × 10−4M, but not 5 × 10−5M, decreased (45%) the induced accumulation and did not alter the basal accumulation; 15-hydroxy-9-oxoprost-13-ynoic acid at 5 × 10−4M caused less of a decrease (29%) in the induced and also did not alter the basal accumulation. (14Z)-13-Hydroxy-9-oxoprost-14-enoic acid at 5 × 10−4M did not alter the induced and caused a slight increase (5 fold) in the basal accumulation. 7-Oxa-13-prostynoic acid increased slightly the basal accumulation at 5 × 10−5M (2 fold) and 2.33 × 10−4M (6 fold) and did not antagonize the induced accumulation. Thus, the 9-ketoprostynoic acids are effective PGE2 antagonists in this system.  相似文献   

20.
The effects of various 11-deoxyprostaglandin E analogs on the basal and prostaglandin E2 (PGE2)-induced cyclic AMP accumulation in the rat anterior pitutiary were studied . 13-Hydroxy-9-oxoprost-14-ynoic acid at 5 × 10−4M, but not 5 × 10−5M, decreased (45%) the induced accumulation and did not alter the basal accumulation; 15-hydroxy-9-oxoprost-13-ynoic acid at 5 × 10−4M caused less of a decrease (29%) in the induced and also did not alter the basal accumulation. (14Z)-13-Hydroxy-9-oxoprost-14-enoic acid at 5 × 10−4M did not alter the induced and caused a slight increase (5 fold) in the basal accumulation. 7-Oxa-13-prostynoic acid increased slightly the basal accumulation at 5 × 10−5M (2 fold) and 2.33 × 10−4M (6 fold) and did not antagonize the induced accumulation. Thus, the 9-ketoprostynoic acids are effective PGE2 antagonists in this system.  相似文献   

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