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Biomedical subjects

A Raz

Publications and source records attributed to A Raz.

At least 217 records · Page 12Linked to original sources

Time-synchronized activation of lipolysis and fatty acids reacylation by bradykinin and angiotensin II in the perfused rabbit kidney.

BK and AII administered to the isolated perfused rabbit kidney activate two sequential enzymatic processes: 1) a selective release of the PG precursor, AA with concomitant, partial conversion of arachidonate to PGE2. 2) Activation of a reacylation process which leads to decreased release of all fatty acids in the perfusate. There is a lag time of approximately 1 min between initial activation of the arachidonate-specific deacylation reaction that is coupled to PG generation, and subsequent activation of the reacylation process.

Angiotensin II↗

Effects of bivalent cations on prostaglandin biosynthesis and phospholipase A2 activation in rabbit kidney medulla slices.

The bivalent cations Ca2+, Mg2+, Co2+, Mn2+, Sr2+ and Ba2+ were compared for their stimulatory or inhibitory effect on prostaglandin formation in rabbit kidney medulla slices. Ca2+, Mn2+ and Sr2+ ions stimulated prostaglandin generation up to 3--5-fold in a time- and dose-dependent manner (Ca2+ greater than Mn2+ congruent to Sr2+). The stimulation by Mn2+ (but not by Sr2+) was also observed in incubations of medulla slices in the presence of Ca2+. Mg2+ and Co2+ ions were without significant effects on either basal or Ca2+-stimulated prostaglandin synthesis. The stimulatory effects of Ca2+, Mn2+ and Sr2+ on medullary generation of prostaglandin E2 were found to correlate with their stimulatory effects on the release of arachidonic acid and linoleic acid from tissue lipids. The release of other fatty acids was unaffected, except for a small increase in oleic acid release. As both arachidonic acid and linoleic acid are predominantly found in the 2-position of the glycerol moiety of phospholipids, the stimulation by these cations of prostaglandin E2 formation appears to be mediated via stimulation of phospholipase A2 activity.

Animals↗

Prostaglandin generation in rabbit kidney. Hormone-activated selective lipolysis coupled to prostaglandin biosynthesis.

The endogenous release of prostaglandins and free fatty acids from the isolated perfused rabbit kidney in the absence or presence of stimulation by bradykinin or angiotensin-II was investigated. Basal (nonstimulated) release of prostaglandin-precursor arachidonic acid was 15-20-fold higher than that of prostaglandin E2 indicating a low conversion of released arachidonate to prostaglandins. Addition of bovine serum albumin to the perfusion medium caused a substantial (50-250%) increase in the release of all fatty acids except myristic and arachidonic acids, and no significant change in prostaglandin E2 generation. In contrast, administration of bradykinin (0.5 microgram) or angiotensin-II (1 microgram) caused a 10-15-fold increase in prostaglandin E2 release, and with albumin present, also a 2-3-fold selective increase in arachidonic acid release. Thus, unlike what was observed under basal conditions, arachidonic acid released following hormone stimulation is efficiently converted to prostaglandin E2. We conclude that administration of bradykinin or angiotensin-II into the perfused kidney activates a lipase which selectively releases arachidonic acid, probably from a unique lipid entity. This lipase reaction is tightly coupled to a prostaglandin generating system so that the released arachidonate is first made available to the prostaglandin cyclooxygenase, resulting in its substantial conversion to prostaglandins.

Angiotensin II↗

Triene prostaglandins: prostacyclin and thromboxane biosynthesis and unique biological properties.

Platelets enzymatically convert prostaglandin H(3) (PGH(3)) into thromboxane A(3). Both PGH(2) and thromboxane A(2) aggregate human platelet-rich plasma. In contrast, PGH(3) and thromboxane A(3) do not. PGH(3) and thromboxane A(3) increase platelet cyclic AMP in platelet-rich plasma and thereby: (i) inhibit aggregation by other agonists, (ii) block the ADP-induced release reaction, and (iii) suppress platelet phospholipase-A(2) activity or events leading to its activation. PGI(3) (Delta(17)-prostacyclin; synthesized from PGH(3) by blood vessel enzyme) and PGI(2) (prostacyclin) exert similar effects. Both compounds are potent coronary relaxants that also inhibit aggregation in human platelet-rich plasma and increase platelet adenylate cyclase activity. Radioactive eicosapentaenoate and arachidonate are readily and comparably acylated into platelet phospholipids. In addition, stimulation of prelabeled platelets with thrombin releases comparable amounts of eicosapentaenoate and arachidonate, respectively. Although eicosapentaenoic acid is a relatively poor substrate for platelet cyclooxygenase, it appears to have a high binding affinity and thereby inhibits arachidonic acid conversion by platelet cyclooxygenase and lipoxygenase. It is therefore possible that the triene prostaglandins are potential antithrombotic agents because their precursor fatty acids, as well as their transformation products, PGH(3), thromboxane A(3), and PGI(3), are capable of interfering with aggregation of platelets in platelet-rich plasma.

Adenosine Diphosphate↗

Platelet and blood vessel arachidonate metabolism and interactions.

Exogenous arachidonate addition to intact platelets, in the absence or the presence of blood vessel microsomes, results in the production of thromboxane B(2) (the stable degradation product of thromboxane A(2)) only. Prostaglandin (PG) endoperoxides are released from intact platelets only when thromboxane synthetase is inhibited. Thus, addition of exogenous arachidonate to imidazole-pretreated platelets in the presence of bovine aorta microsomes (source of prostacyclin synthetase) results predominantly in the synthesis of 6-keto-PGF(1alpha) (the stable degradation product of prostacyclin). Strips of intact aorta were removed from aspirin-treated rabbits, thus the isolated blood vessels were unable to convert endogenous or exogenous arachidonate to prostacyclin. Human platelets, with [(14)C]arachidonate-labeled phospholipids, adhered to the blood vessel segments and released some thromboxane B(2). The subsequent addition of thrombin facilitated the release of endogenous arachidonate and thromboxane, but no labeled 6-keto-PGF(1alpha) was detectable. There is therefore no direct chemical evidence of PG-endoperoxide release from human platelets during either aggregation or adhesion, which therefore precludes the possibility that blood vessels use platelet PG-endoperoxide for prostacyclin synthesis. Imidazole inhibited the thromboxane synthetase in the labeled platelets, and thereafter thrombin stimulation resulted in the release of platelet-derived, labeled PG-endoperoxides that were converted to labeled prostacyclin by the vascular prostacyclin synthetase. The latter result suggests a potential antithrombotic therapeutic benefit might be achieved using an effective thromboxane synthetase inhibitor.

Animals↗

A differential interaction of daunomycin, adriamycin and their derivatives with human erythrocytes and phospholipid bilayers.

Drug-membrane association of daunomycin, adriamycin and three of its derivatives, adriamycin-14-octanoate (AD-14-OCTA), adriamycin-14-acetate (AD-14-ACE) and N-trifluoroacetyladriamycin-14-valerate (AD32), was studied using phospholipid bilayers and human erythrocytes. The various drugs exhibited a differential affinity to membrane-lipid domains. Lipid-incorporated drugs exhibit a marked change in the shape of the emission spectrum which was utilized for the evaluation of the apparent dielectric constant, epsilon, of the environment surrounding the anthracycline moiety, as well as for the determination ofthe partitioning constant. By measuring the fluorescence polarization and the fluorescence lifetime of the incorporated drugs, rotational relaxation times of 4--8 ns were derived. These parameters provide a supportive evidence of the association of the fluorophore of the drugs with membrane-lipid domains. The anthracycline derivatives interact to a different degree with dipalmitoyl phosphatidylcholine and phosphatidylserine as reflected by changes in their thermotropic properties assessed by differential scanning calorimetry. Daunomycin was the most effective in decreasing the temperature of the phase transition and brought about a comparable reduction in the enthalpy of melting as AD32 and AD-14-OCTA. Adariamycin was the least potent of the series. AD-14-ACE and AD32 protected erythrocytes against hypotonic lysis, adriamycin and daunomycin had no significant effect on the susceptibility to hypotonic lysis, whereas AD-14-OCTA proved to be hemolytic even at low concentration (approx. 10(-7M).

Calorimetry, Differential Scanning↗

Biosynthesis of thromboxane B2 and 12-L-hydroxy-5,8,10-heptadecatrienoic acid in human platelets. Evidence for a common enzymatic pathway.

Human platelet microsomes convert prostaglandin H2 to thromboxane B2 and 12-L-hydroxy-5,8,10-heptadecatrienoic acid (12OH-17:3) in approximately equimolar amounts. The synthesizing activities of both products appear to go in parallel, both activities gradually decline upon storage and are equally destroyed by heat inactivation. Furthermore imidazole, a potent inhibitor of thromboxane synthetase activity, is an equally effective inhibitor of 12OH-17:3 formation in platelets. These results suggest that both thromboxane B2 and 120H-17:3 are derived from a common intermediate. We propose two alternative pathways for the conversion of prostaglandin H2 to thromboxane A2 and 12OH-17:3 in human platelets. The first pathway depicts thromboxane A2 as the common intermediate for the formation of both thromboxane B2 and 12OH-17:3. In the second pathway, prostaglanding H2 is converted to an activated intermediate which is converted to either thromboxane A2 or 12OH-17:3.

Arachidonic Acids↗

Antibodies to ganglioside GM1 induce mitogenic stimulation and cap formation in rat thymocytes.

Antibodies towards the ganglioside GM1 [galactosyl-N-acetylgalactosaminyl-(N-acetylneuraminyl)-galactosyglucosyl ceramide] stimulated DNA synthesis in rat thymocytes. No mitogenic stimulation was observed with the monomeric Fab fragment of anti-GM1, suggesting that cross-linking of the gangliosides or associated components was required for activation by these antibodies. Incubation of thymocytes with anti-GM1 and fluorescein-labeled anti-rabbit IgG at 0 degree C resulted in uniform ring-like or patchy staining that developed into a pronounced cap upon elevation of temperature. The cap had a characteristic uropod form, enriched with intracellular organelles. Sodium azide and cytochalasin B completely inhibited cap formation, while colchicine was without effect. These results imply a possible direct or indirect association between surface gangliosides and submembraneous cytoskeletal assemblies that control modulation of these surface components and may transmit stimuli to the interior of the cell.

Animals↗

Prostaglandin biosynthesis in rabbit kidney medulla: inhibition in-vitro vs. in-vivo by aspirin, indomethacin and meclofenamic acid.

The non-steroidal anti-inflammatory drugs aspirin, indomethacin and meclofenamic acid were compared for their potency and duration of inhibition of prostaglandin biosynthesis in rabbit kidney medulla. Indomethacin and meclofenamic acid showed equal potency of inhibition in-vitro (IC50 0.88 micron and 0.85 micron respectively) while aspiring was a much weaker inhibitor (IC50 120 micron). In-vivo, indomethacin was the most powerful inhibitor (ID50 0.034 mg/kg) followed by meclofenamic acid (0.45 mg/kg) and aspirin (2.35 mg/kg). Studies on the duration of in-vivo inhibition by these compounds showed the effect of indomethacin and meclofenamic acid to be completely reversed within 4-6 hours. In contrast, return of kidney prostaglandin biosynthetic activity following aspirin inhibition is very slow and significant inhibition is still present 48 hours after a single aspiring injection. The inhibitory effect of aspirin in-vivo could be blocked by pretreatment with indomethacin, indicating that both drugs interact with related sites on the cyclo-oxygenase enzyme. The irreversible inhibition of the cyclo-oxygenase by aspirin as demonstrated in studies of other investigators suggests that the return of kidney prostaglandin synthetase activity after aspirin inhibition represents synthesis of new cyclo-oxygenase protein.

Animals↗

A differential interaction of daunomycin, adriamycin, and N-trifluoroacetyladriamycin 14-valerate with mouse peritoneal macrophages.

The interaction of three anthracycline drugs, daunomycin, Adriamycin, and N-trifluoroacetyladriamycin 14-valerate, with mouse peritoneal macrophages was explored. As assessed by drug-specific cytofluorescence, Adriamycin and daunomycin accumulated slowly within macrophages, first staining the nucleus and then the cytoplasmic inclusions that were induced by the drug treatment. N-Trifluoroacetyladriamycin 14-valerate distributed rapidly into the cells, was excluded from the nucleus, and induced numerous cytoplasmic inclusions. Electron microscopy revealed that the cytoplasmic inclusions were vacuoles containing some amorphous material and not the classical autophagic vacuoles containing organelles and membrane lamellae. All the drugs induced cell shrinkage with time and brought about cell death within 24 hr. Loss of cell function and viability was dose and time dependent; i.e., a 6-hr incubation with daunomycin or Adriamycin, 2.5 microgram/ml, brought about a 50% reduction in the phagocytic capacity of the treated macrophages. The damaging potency towards macrophages (daunomycin greater than Adriamycin greater than N-trifluoroacetyladriamycin 14-valerate) is in the reverse order to the in vivo therapeutic efficiency.

Animals↗

Decrease in 5'-nucleotidase activity in malignant transformed and normal stimulated cells.

Analysis of six different cell types of normal and transformed fibroblasts grown in vitro and of four different cell types of normal and leukemic lymphocytes grown in vivo have shown a marked decrease of 3- to 30-fold in the specific activity of 5'-nucleotidase in the malignant cells as compared to their normal parental cells. The results have also indicated that a serum stimulation of untransformed or normal fibroblasts and a stimulation of normal lymphocytes by concanavalin A resulted in a significant decrease in the specific activity of 5'-nucleotidase of the stimulated cultures as compared to the resting cells. In both the malignant cells and the stimulated normal cells, the decrease in 5'-nucleotidase activity was not accompanied by a similar decrease in the specific activity of acid phosphatase, indicating a specific enzyme alteration in the surface membranes of the transformed and the normal stimulated cells.

Animals↗

Prostaglandin biosynthesis in platelets: demonstration and role of prostaglandin H2 leads to E2 isomerase.

Double-labeled [3H/14C]-prostaglandin endoperoxide H2 was used to assess the presence in platelets of enzymatic activity for conversion of the endoperoxides to prostaglandin E2. This enzymatic activity (prostaglandin H2 leads to E2 isomerase) involves the selective removal of a hydrogen from the C-9 carbon atom of the endoperoxide molecule and is subject to an isotope discriminatory effect against tritium-labeled molecules. Rabbit washed platelet suspension was pre-incubated for 1 min, with imidazole (1 mM) to inhibit thromboxane A2 generation and [3H/14C]--prostaglandin H2 was added. Analysis of the [3H] and [14C] radioactive products in incubations with native vs. heat denatured platelets indicated that native platelets convert the endoperoxide enzymatically to mainly prostaglandin E2. Thus, although arachidonic acid released endogenously or added exogenously to platelets is converted mainly to thromboxane B2 and 120H-17:3 acid, platelets appear to possess prostaglandin H2 leads to E2 isomerase activity which becomes manifested when thromboxane synthetase activity is inhibited.

Animals↗

Effect of organic sulfur compounds on the chemical and enzymatic transformations of prostaglandin endoperoxide H2.

The effects of several sulfur organic compounds on the enzymatic and non-enzymatic transformations of prostaglandin endoperoxide H2 to prostaglandins were studied. Mercaptoethanol, methional alpha-lipoic acid and dimercaptopropanol increased the chemical (i.e. non-enzymatic) reduction of prostaglandin H2 to prostaglandin F2alpha but except for alpha-lipoic acid, had no effect on the enzymatic conversion of prostaglandin H2 to prostaglandin. In contrast, reduced glutathione showed no effect on the chemical conversion of prostaglandin H2, but exerted a marked and specific stimulation on the enzymatic isomerization of prostaglandin H2 to prostaglandin E2. This specific effect of gluthione may serve to regulate the overall intracellular activity of prostaglandin synthetase as well as the particular ratio of prostaglandins produced.

Animals↗