| Literature DB >> 34822507 |
Olga Morarescu1, Marina Grinco1, Veaceslav Kulciţki1, Sergiu Shova2,3, Nicon Ungur1.
Abstract
Scalarane sesterterpenoids emerged as interesting bioactive natural products which were isolated extensively from marine sponges and shell-less mollusks. Some representatives were also reported recently from superior plants. Many scalarane sesterterpenoids displayed a wide spectrum of valuable properties, such as antifeedant, antimicrobial, antifungal, antitubercular, antitumor, anti-HIV properties, cytotoxicity and stimulation of nerve growth factor synthesis, as well as anti-inflammatory activity. Due to their important biological properties, many efforts have been undertaken towards the chemical synthesis of natural scalaranes. The main synthetic challenges are connected to their complex polycyclic framework, chiral centers and different functional groups, in particular the oxygenated functional groups at the C-12 position, which are prerequisites of the biological activity of many investigated scalaranes. The current work addresses this problem and the synthesis of 17-oxo-20-norscalaran-12α,19-O-lactone is described. It was performed via the 12α-hydroxy-ent-isocopal-13(14)-en-15-al obtained from (-)-sclareol as an accessible starting material. The tetracyclic lactone framework was built following an addition strategy, which includes the intramolecular Michael addition of a diterpenic acetoacetic ester and an intramolecular aldol condensation reaction as key synthetic steps. The structure and stereochemistry of the target compound have been proven by X-Ray diffraction method.Entities:
Keywords: X-ray analysis; natural terpenoids; scalarane sesterterpenoids; synthesis
Mesh:
Substances:
Year: 2021 PMID: 34822507 PMCID: PMC8625711 DOI: 10.3390/md19110636
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Representatives of the scalaranic sesterterpenoids.
Scheme 1The retrosynthetic scheme towards C-12–functionalized scalaranic framework.
Scheme 2Reagents and conditions: (a) Diketene, CH2Cl2, Et3N, 0 °C, 2 h; (b) Cs2CO3, MeCN, reflux, 2 h, ~61% over 2 steps; (c) p-TsOH, PhH, reflux, 3 h; (d) H2, 10% Pd/C, EtOAc, 4 h.
Figure 2Selected 1H-13C HMBC, 1H-1H COSY and NOESY correlations for compound (10).
Figure 3Selected 1H-13C HMBC, 1H-1H COSY and NOESY correlations for compound 7.
Figure 4Selected 1H-13C HMBC, 1H-1H COSY and NOESY correlations and X-ray molecular structure of compound 8.