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Biomedical subjects

T O Oesterling

Publications and source records attributed to T O Oesterling.

12 recordsLinked to original sources

Prostaglandin prodrugs. I: Stabilization of dinoprostone (prostaglandin E2) in solid state through formation of crystalline C1-phenyl esters.

Dinoprostone para-substituted phenyl esters were synthesized in attempt to improve the solid-state stability of the parent prostaglandin. A phenol series covering a wide melting-point range was employed, and a linear relationship was observed between the phenol melting points and the resulting prostaglandin C1-ester melting points. The crystalline esters showed improved solid-state stability over the parent compound, and many esters were biologically active.

Animals↗

Prostaglandin prodrugs. II: New method for synthesizing prostaglandin C1-aliphatic esters.

A new method for synthesizing C1-aliphatic esters of dinoprost and dinoprostone without using hydroxyl protective groups is described. Reaction of the prostaglandin with an alkyl halide in the presence of the sterically hindered amine N,N-diisopropylethylamine proceeds smoothly to give C1-esters in various solvents at ambient or slightly elevated temperatures. Polar solvents were strongly catalytic, and even the hindered tert-butyl esters were synthesized by employing solvents such as dimethylformamide or dimethyl sulfoxide. Biological evaluation in the hamster antifertility assay showed that some esters maintained high bioactivity.

Animals↗

Prostaglandin prodrugs III: Synthesis and biological properties of C9- and C15-monoesters of dinoprost (prostaglandin F2 alpha).

Methods are described for the synthesis of dinoprost C9- and C15-monoesters using protective groups. Esters at C9 were synthesized by acylation of dinoprost 11,15-bis(tetrahydropyran-2-yl)ether followed by acid-catalyzed protective group removal. Esters at C15 were synthesized by initial formation of the protected intermediate, dinoprost 9,11-n-butylboronate, followed by acylation and hydrolytic protective group removal. Many esters were active in vivo in the hamster antifertility screen. Plasma hydrolysis studies showed that the C15-esters were more readily cleaved than the C9-esters. In vivo studies in the rat showed that both the C9- and C15-esters resulted in urinary excretion of 5 alpha, 7 alpha-dihydroxy-11-ketotetranorprosta-1,16-dioic acid in amounts comparable to those obtained after dosing with dinoprost, indicating that ester hydrolysis occurred in vivo.

Animals↗

Nucleophilic addition of bisulfite ion to prostaglandins E2 and A2: implication in aqueous stability.

Evidence is presented to indicate that the bisulfite ion (HSO3-) adds across the C-9 carbonyl group of dinoprostone (prostaglandin E2) and across the delta 10,11- bond of prostaglandin A2. At room temperature, the apparent equilibrium constant, determined by phase solubility analysis, circular dichroism, UV spectroscopy, and partitioning, for the formation of the bisulfite adduct of dinoprostone is about 7.5 M-1 at neutral pH. From this result and a free energy relationship reported in the literature for the thermodynamics of nucleophilic addition to carbonyl groups, it is concluded that the chemical reactivity of the C-9 carbonyl group of dinoprostone is not high enough to improve aqueous stability through reversible one-step nucleophilic reactions. However, from a series of kinetic experiments, it is concluded that the equilibrium is extremely favorable for the formation of the bisulfite adduct of prostaglandin A2 over pH 4-8 at room temperature. The second-order rate constant for the attack of sulfite ion (SO3 2-) to prostaglandin A2 is 1.75 sec-1 M-1.

Chemical Phenomena↗

Stability of prostaglandin E1 and dinoprostone (prostaglandin E2) under strongly acidic and basic conditions.

The stability of prostaglandin E1 and dinoprostone was investigated at the extremes of the pH range (less than or equal to 3 and greater than or equal to 10) in the sequence prostaglandin E leads to prostaglandin A leads to prostaglandin B. The degradation rate is first order with hydrogen-ion and hydroxide-ion concentrations. Separation and analysis of the E prostaglandins were accomplished by TLC and UV spectrophotometry. At the lowest pH values and at elevated or low temperatures, significant amounts of 15-epiprostaglandin E were present. Apparent activation energies for the total dinoprostone loss, calculated from elevated temperature data, were 21 kcal/mole in the strongly acidic region and about 18 kcal/mole at pH 3. Corresponding studies in the alkaline region led to a derived arrhenius activation energy of 15 kcal/mole with the appearance of significant amounts of 8-isoprostaglandin E. This difference in activation energies may reflect the different mechanisms operant at high and low pH values.

Chromatography, Thin Layer↗

Prostaglandins.

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Abortion, Therapeutic↗