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Biomedical subjects

J van Ryn

Publications and source records attributed to J van Ryn.

7 recordsLinked to original sources

Effects of caffeine and paracetamol alone or in combination with acetylsalicylic acid on prostaglandin E(2) synthesis in rat microglial cells.

Paracetamol has mild analgesic and antipyretic properties and is, along with acetylsalicylic acid, one of the most popular "over the counter" analgesic agents. However, the mechanism underlying its clinical effects is unknown. Another drug whose mechanism of action is unknown is caffeine, which is often used in combination with other analgesics, augmenting their effect. We investigated the inhibitory effect of paracetamol and caffeine on lipopolysaccharide (LPS)-induced cyclooxygenase (COX)- and prostaglandin (PG)E(2)-synthesis in primary rat microglial cells and compared it with the effect of acetylsalicylic acid, salicylic acid, and dipyrone. Furthermore, combinations of these drugs were used to investigate a possible synergistic inhibitory effect on PGE(2)-synthesis. Both paracetamol (IC(50)=7.45 microM) and caffeine (IC(50)=42.5 microM) dose-dependently inhibited microglial PGE(2) synthesis. In combination with acetylsalicylic acid (IC(50)=3.12 microM), both substances augmented the inhibitory effect of acetylsalicylic acid on LPS-induced PGE(2)-synthesis. Whereas paracetamol inhibited only COX enzyme activity, caffeine also inhibited COX-2 protein synthesis. These results are compatible with the view that the clinical activity of paracetamol and caffeine is due to inhibition of COX. Furthermore, these results may help explain the clinical experience of an adjuvant analgesic effect of caffeine and paracetamol when combined with acetylsalicylic acid.

Acetaminophen↗

COX-2 selectivity and inflammatory processes.

Increasing amounts of experimental and clinical data support the role of selective cyclooxygenase (COX)-2 inhibition in anti-inflammatory processes and the involvement of COX-1 inhibition in the side effects associated with non steroidal anti-inflammatory drug use. This review will focus on the differences in the structure of the COX-1 and COX-2 molecules, particularly the active site and how they are bound by various NSAIDs to achieve COX-2 selectivity. This COX-2 selectivity will then be characterized in pharmacological assays in vitro and in animal models in vivo. Finally, clinical information available for this new class of selective inhibitors will be discussed.

Animals↗

Clinical experience with cyclooxygenase-2 inhibitors.

Increasing amounts of experimental and clinical data support the role of selective cyclooxygenase (COX)-2 inhibition in anti-inflammatory processes and the role of COX-1 inhibition in increasing the frequency of side effects. This article reviews the regulation of COX-2 in inflammatory processes based on in vitro and in vivo work. In addition, it summarizes the various in vitro assays used to classify the new generation of selective and highly selective inhibitors of COX-2, since prior categorization of NSAIDs does not satisfactorily encompass the COX-2 concept. Finally, the latest published clinical data of new selective and highly selective inhibitors of COX-2 (meloxicam, nimesulide, etodolac, celecoxib and MK966) are discussed.

Cyclooxygenase 1↗

Experimental models used to investigate the differential inhibition of cyclooxygenase-1 and cyclooxygenase-2 by non-steroidal anti-inflammatory drugs.

Numerous in vitro assays have been developed for testing and comparing the relative inhibitory activities of non-steroidal anti-inflammatory drugs against cyclooxygenase (COX)-1 and COX-2. Despite variability among these systems, which precludes direct comparison of data, analysis of the ratio of inhibition of COX-1 to COX-2 by non-steroidal anti-inflammatory drugs, suggests inhibitors can be classified based on their COX selectivity. Standard non-steroidal anti-inflammatory drugs can be considered nonselective; compounds such as meloxicam and nimesulide can be classified as COX-2 preferential; and compounds such as SC 58125 and L-754,337 are selective for COX-2. Although in vitro systems are important for characterizing COX-1 and COX-2 inhibitory activity, the clinical relevance of these data should be considered carefully. The level of inhibition of COX-1 and COX-2, in vivo at a given dose in patients, cannot be predicted from in vitro data alone. The pharmacokinetic properties of each compound, including plasma levels, distribution and binding to plasma proteins, have to be taken into account. Human pharmacology studies concentrating on the inhibition of prostanoid synthesis in target tissues are of paramount importance in determining the clinical relevance of COX-2 selectivity.

Animals↗

Differential inhibition of cyclooxygenases-1 and -2 by meloxicam and its 4'-isomer.

OBJECTIVE AND DESIGN: Two structurally related compounds, meloxicam (Mel) and its structural 4'-isomer (4'-Mel), were compared to examine the role of a slightly different chemical structure on cyclooxygenase (COX) selectivity in in vitro and in vivo experimental models. MATERIAL OR SUBJECTS: In vitro studies were performed using human whole blood obtained from healthy volunteers, in vivo studies were performed in rats. TREATMENT: A concentration-response curve was obtained in the whole blood assay for Mel, 4'-Mel, indomethacin, piroxicam and diclofenac. These were used to calculate the respective IC50 values of either prostaglandin E2 (PGE2) or thromboxane B2 (TxB2). Similarly, a dose-response curve was obtained for Mel, 4'-Mel and piroxicam when measuring in vivo prostaglandin production, anti-inflammatory activity and gastric tolerance to determine the dose resulting in a 50% reduction of the each parameter. METHODS: COX selectivity was investigated in vitro using a human whole blood assay. PGE2 synthesis in vivo was measured in inflammatory exudate, in the stomach and kidneys of rats. Anti-inflammatory effects were measured in an adjuvant arthritis model and gastric tolerance was tested in an ulcerogenicity model in vivo in rats. RESULTS: In the human whole blood assay, the ratio of IC50 values for COX-1 vs. COX-2 inhibition was 13 for Mel and 1.8 for 4'-Mel. In inflammatory exudate in rats, Mel and 4'-Mel inhibited PGE2 synthesis to a similar extent, ID50 values approximately 0.3 mg/kg. In contrast, Mel was a weaker inhibitor of PG synthesis than 4'-Mel in the rat stomach and in the rat kidney. Paw swelling was reduced by 50% with 0.1 and 0.2 mg/kg for Mel and 4'-Mel, respectively, in the rat adjuvant arthritis model. Gastric tolerance (UD50) was 2.4 mg/kg for Mel and 0.4 mg/kg for 4'-Mel. CONCLUSIONS: These data demonstrate that the in vitro and in vivo pharmacological profile of meloxicam is structurally dependent and that minor structural changes can lead to significant differences in the selectivity for COX-1 and COX-2 in vitro and to different profiles in vivo suggesting different therapeutic potential.

Animals↗

Noninvasive method for measuring thrombus formation in patients after peripheral angioplasty using three-dimensional B-mode and color-coded Doppler ultrasonography.

Clinical investigations studying the effect of newer medications on such complex pathophysiology as the formation of an arterial or venous mural thrombus have been limited to clinical symptomatic endpoints. Biochemical markers so far have not been convincing in quantifying ongoing thrombus formation. Consequently, clinical development of new antithrombotic compounds has had to rely on clinical symptoms that occur either comparably late in the course of the disease and may therefore be influenced by many other factors, or on those symptoms that occur at a relatively low incidence rate. Both circumstances make studies for dose-finding and determination of optimal drug regimens more difficult and time consuming. Using conventional clinical noninvasive ultrasonography, the volume and geometry of a peripheral arterial segment can be measured with high sensitivity and reproducibility in healthy volunteers (% coefficient of variation = 8.01%). In patients, thrombus volume was monitored after peripheral transluminal angioplasty of the femoral artery. All patients received a standard anticoagulant treatment with heparin for 24 hours after the procedure. Volume measurements were performed at 20, 29, 44, 53, and 68 hours after angioplasty. When compared with the obstruction volume at 20 hours, a slight increase could be detected at 29, 44, and 53 hours. At 68 hours there was a significant increase in obstruction volume. This indicates that volume measurements may detect changes in the course of thrombus formation, related to the antithrombotic treatment regimen, at a level at which clinical symptoms may not be present.

Aged↗

Endothelial cells produce a lipoxygenase derived chemo-repellent which influences platelet/endothelial cell interactions--effect of aspirin and salicylate.

We performed experiments to determine whether endothelial cells synthesize phospholipid metabolites via the lipoxygenase pathway and whether these metabolites influence platelet/vessel wall interactions. Monolayers of cultured human endothelial cells were incubated with 14C-arachidonic acid and their cyclo-oxygenase and lipoxygenase metabolites were extracted and identified by radioimmunoassay, thin layer chromatography and high performance liquid chromatography. We found that in addition to the membrane-associated production of PGI2, endothelial cells synthesized a cytosol-associated metabolite, LOX, which was presumably derived through the lipoxygenase pathway. Inhibition of LOX was associated with an increase in PGI2 production and inhibition of PGI2 with an increase in LOX production. Under either condition, platelet adhesion to cultured endothelial cells was significantly decreased. In contrast, when both PGI2 and LOX production were inhibited, platelet adhesion to endothelial cells was enhanced. Furthermore, when LOX was bound to a thrombogenic surface, platelet adhesion was significantly decreased whereas when arachidonic acid or 12-HETE was bound to the surface, platelet adhesion was increased. We conclude that endothelial cells produce not only a cyclo-oxygenase metabolite, but also a lipoxygenase metabolite, both of which influence platelet/endothelial cell interactions.

Adenine↗