Structure-brain exposure relationships.
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Biomedical subjects
Publications and source records attributed to Lewis D Pennington.
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An important objective of contemporary synthesis endeavors is the development of new transformations that rapidly evolve molecular complexity in a stereocontrolled fashion. One approach toward this goal is to combine two or more distinct reactions into a single transformation, producing a process often referred to as a sequential, tandem, cascade, or domino reaction. In this Perspective, we discuss the development of one such tandem reaction, the acid-promoted (or catalyzed) Prins-pinacol rearrangement, with particular emphasis on its implementation as the key strategic element in the total synthesis of heterocyclic and carbocyclic natural products.
Enantioselective total syntheses of briarellin E (4) and briarellin F (5) have been achieved starting with (S)-(+)-carvone and (S)-(-)-glycidol. These total syntheses are the first of briarellin diterpenes. The central step in these syntheses is acid-promoted condensation of cyclohexadienyl diol 15 and (Z)-alpha,beta-unsaturated aldehyde 16 to form, with complete stereocontrol, the hexahydroisobenzofuran core and six stereocenters of these coral metabolites. These syntheses also feature stereospecific photolytic deformylation of beta,gamma-unsaturated aldehyde 17 to remove the extraneous carbon introduced in the Prins-pinacol step, chemo- and stereoselective hydroxyl-directed epoxidation of dienyl alcohol 18 to incorporate the C3 oxygen stereocenter, regio- and stereoselective rearrangement of epoxy ester 19 to install the C4 oxygen substituent, efficient dehydrative cyclization of a 1,6-diol intermediate to form the oxepane ring, and diastereoselective Nozaki-Hiyama-Kishi cyclization of vinyl iodide aldehyde 25 to forge the oxacyclononane ring and the C6 hydroxyl stereocenter. These total syntheses establish the absolute configurations of 4 and 5, define a concise strategy for the total synthesis of briarellin diterpenes, and provide additional illustrations of the uncommon utility of pinacol-terminated cationic cyclizations for stereocontrolled synthesis of complex oxacyclic natural products.
Introduction of the C4 hydroxyl group by an epoxy ester rearrangement is a pivotal step in the first total synthesis of the purported structure of alcyonin. As the spectral data for diol acetate 3 do not match those reported for alcyonin, the structure of this marine diterpene must be revised. Reexamination of NMR spectra, MS data, and chemical transformations of natural alcyonin suggests that the structure of this marine metabolite is allylic peroxide 15.[structure: see text]