Guanacastepene A is a compound showing antibiotic activity. It is a diterpene that was extracted with hexane from a Costa Rican fungus, CR115, found on the branches of the Daphnopsis americana tree and purified by chromatography.
Physical and chemical properties In its isolated or synthesized form, the active compound appears as an amorphous white solid, and elemental analysis shows that it consists of 70.56% carbon, 8.07% hydrogen, and 21.36% oxygen. The distinctive chemical feature of Guanacastepene A stems from the so-called guanacastane skeleton.
Substance Class and Structure Guanacastepene A belongs to the class of diterpenes, a subclass of terpenes composed of four isoprene units (C20). The guanacastepene skeleton is structurally related to dolastane and neodolabellane diterpene families. The structural elucidation was carried out using two methods: 1H-NMR and 13C-NMR as well as X-ray crystal structure. The NMR spectra at room temperature indicated the presence of two conformers in dynamic equilibrium, and through structural characterization using single-crystal X-ray diffraction techniques, the structure of Guanacastepene A was found to be a tricyclic diterpene with a heavily oxidized longitudinal side and a hydrophobic opposite side. It also revealed that the tricyclic ring of guanacastepene is essentially planar with the exception of C9. Two gauche butane-like conformers are observed around the C9–C10 bond that differ by approximately 0.14 kcal/mol and are separated by an energy barrier of approximately 15 kcal/mol.
Biochemical Processes
Isolation Many biologically active natural compounds are derived from fungi, and guanacastepene A is one such compound. Attempts were made to characterize CR115, but CR115 did not form spores under any of the conditions tested, and no other morphological characteristics were observed that provided insight into its phylogeny. rDNA sequence analysis shows a similarity of 90% to an uncharacterized root basidiomycete. The fungal strain was cultivated in potato dextrose broth for 14–21 days. The culture was then extracted with hexane to obtain a crude extract containing nonpolar secondary metabolites. This extract was fractionated by C18 flash column chromatography using an acetonitrile/water (CH3CN/H2O) step gradient and subsequently purified by reverse-phase HPLC.
Biosynthesis It is believed that the biosynthesis of guanacastepenes occurs via the mevalonate pathway. This pathway begins with acetyl-CoA and yields both isopentenyl pyrophosphate (IPP) and dimethylallyl pyrophosphate (DMAPP). IPP and DMAPP are then converted into geranylgeranyl pyrophosphate (GGPP), the most important diterpene precursor. A cationic cyclization cascade converts GGPP into the macrocyclic intermediate β-araneosene and ultimately into the dolabellane skeleton. Dolabellane is then rearranged into the neodolabellane skeleton via stereospecific hydride and methyl shifts, thereby fixing the stereochemistry at C11 and C12 and shifting the C15 methyl group across the ring fusion. The carbon skeleton of Guanacastepene A is closely related to the dolastane and neodolabellane families. Therefore, it is assumed that the biogenesis of dolastanes proceeds via a further intramolecular cyclization of the dolabellane-derived cation, resulting in the tricyclic [5-7-6]-dolastane (guanacastane) skeleton. This basic framework is diversified through a series of oxidation reactions in which the characteristic functional groups of guanacastepenes are incorporated. The guanacastepenes characterized to date represent only a fraction of the metabolites present in the CR115 extract. The tricyclic guanacastepenes A, B, and C are considered the simplest members of this family; successive oxidation and functionalization are thought to lead to the formation of structurally more complex ring systems.
Synthesis
Total synthesis To summarize the total synthesis of Guanacastepene A, two independent synthetic routes are particularly relevant here. The first involves an attempt by Danishefsky and his colleagues to close the seven-membered B ring via an intramolecular Horner–Wadsworth–Emmons cyclization; however, this approach unexpectedly favored a kinetically preferred 5-exo cyclization instead. Ultimately, the seven-membered ring was formed via reductive cyclization of a vinyl iodide-ketone precursor, yielding the fused 5,7-ring hydroazulenone core. The quaternary stereocenter at C8 was then stereoselectively introduced via sequential Eschenmoser methylenation and conjugate cuprate addition. It was found that the order of alkylation determines the resulting stereochemistry. An intramolecular Knoevenagel cyclization was ultimately required to complete the guanacastane skeleton. This was achieved only after epoxidation of the corresponding olefin. This was followed by a Rubottom oxidation to introduce the characteristic acetoxy group at C13. The second, alternative, formal synthesis was developed by Hanna and his colleagues. Instead of forming the six- and seven-membered rings sequentially, they built the six- and seven-membered rings simultaneously in a single tandem ring-closing metathesis (RCM) reaction. Using a triene precursor, both quaternary stereocenters at C8 and C11 were established prior to the metathesis step. This was treated with the second-generation Grubbs catalyst in refluxing dichloromethane to directly yield the tricyclic skeleton. The required oxygen functionality was then introduced via epoxidation followed by a Lewis acid-catalyzed SN2′-type ring-opening reaction with allyl alcohol. This led to an intermediate that had previously been converted to Guanacastepene A by other groups. Thus, the formal synthesis could be considered complete.
Biological effects
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