Inconsistent results have been reported for the effects of the mitogen-activating extracellular kinase (MEK) inhibitor α-[amino(4-aminophenyl)thio]methylene-2-(trifluoromethyl)benzeneacetonitrile (SL 327) on ethanol-induced conditioned place preference (EtOH-CPP). Since such inconsistencies may be due to the configurational composition of administered SL 327, the interconvertibility of the geometric isomers of this class of compounds has been investigated. This study provides conditions for determination of configurational composition of this class of compounds by HPLC and by 1H NMR and reports details of configurational equilibria as a function of medium and time in solution along with solubility data for SL 327 in aqueous DMSO. The results suggest that the apparently inconsistent results reported for CPP-EtOH may be due to the administration of suspension vs. solutions, as well as to different configurational compositions of SL 327.
The photolabile analogue of the broad-spectrum opioid antagonist naloxone, 3-O-(4,5-dimethoxy-2-nitrophenyl)carboxymethyl naloxone (also referred to as "caged naloxone", 3-O-(α-carboxy-6-nitroveratryl)naloxone, CNV-NLX), has been found to be a valuable biochemical probe. While the synthesis of CNV-NLX is simple, its characterization is complicated by the fact that it is produced as a mixture of αR,5R,9R,13S,14S and αS,5R,9R,13S,14S diastereomers. Using long-range and heteronuclear NMR correlations, the 1H NMR and 13C NMR resonances of both diastereomers have been fully assigned, confirming the structures. Monitoring of solutions of CNV-NLX in saline buffer, in methanol, and in DMSO has shown CNV-NLX to be stable for over a week under fluorescent laboratory lights at room temperature. Exposure of such solutions to λ 365 nm from a hand-held UV lamp led to the formation of naloxone and CNV-related breakdown products.
Deuterium-labeled analogs of the topoisomerase inhibitor batracylin were prepared for metabolism studies to further its evaluation as an antitumor agent. Established syntheses of unlabeled batracylin were adapted for the preparation of deuterated batracylin that was trideuterated in the quinazoline ring (d3-batracylin 5), tetradeuterated in the isoindolo ring (d4-batracylin 11), and heptadeuterated in both rings (d7-batracylin 12). Extensive exchange of deuterium or hydrogen in the quinazoline ring was observed from an intermediate in the final concentrated sulfuric acid promoted deblocking/cyclodehydration step of the synthesis. Introduction of deuterated concentrated sulfuric acid in the final step both retained the label in the quinazoline-labeled product and enabled extended labeling of a more exhaustively deuterated analog. Batracylin itself did not readily exchange aromatic protons under the reaction conditions but did loose and scramble deuterium atoms during mass spectral analysis leading to an under calculation of the deuterium content in the quinazoline ring. These results identify a chemical exchange process that can either undo, maintain, or facilitate the labeling process and also mass spectral analyses issues that must be taken into account to characterize and utilize these analogs and, more broadly, that can be recognized as potentially applicable to other classes of compounds. Copyright © 2010 John Wiley & Sons, Ltd.
Early studies led to the identification of 11β-aryl-4',5'-dihydrospiro[estra-4,9-diene-17β,4'-oxazole] analogs with potent and more selective antiprogestational activity compared to antiglucocorticoid activity than mifepristone. In the present study, we replaced the 4'-dimethylaminophenyl group of mifepristone with the benzoxazol group to give 5a-d. We also prepared the 17β-formamido analogs 6a,b using a new synthetic strategy via the intermediate epoxide 21. These compounds were evaluated for their antagonist hormonal properties using the T47D cell-based alkaline phosphatase assay and the A549 cell-based functional assay. Compound 5c showed potent antagonist activity at GR with better selectivity for GR versus PR than mifepristone and is a promising lead for further development.
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