| Literature DB >> 29986401 |
Gaurao D Tibhe1, Mario A Macías2,3, Valeria Schapiro4, Leopoldo Suescun5, Enrique Pandolfi6.
Abstract
An efficient and facile general method for the synthesis of conduritol C analogs, taking advantage of an enantioselective biocatalysis process of monosubstituted benzenes, is described. The absolute stereochemical patterns of the target molecules (−)-conduritol C, (−)-bromo-conduritol C, and (−)-methyl-conduritol C were achieved by means of chemoenzymatic methods. The stereochemistry present at the homochiral cyclohexadiene-cis-1,2-diols derived from the arene biotransformation and the enantioselective ring opening of a non-isolated vinylepoxide derivative permitted the absolute configuration of the carbon bearing the hydroxyl groups at the target molecules to be established. All three conduritols and two intermediates were crystallized, and their structures were confirmed by X-ray diffraction. The three conduritols and intermediates were isostructural. The versatility of our methodology is noteworthy to expand the preparation of conduritol C analogs starting from toluene dioxygenase (TDO) monosubstituted arene substrates.Entities:
Keywords: arene biotransformation; conduritol C; crystal structures; enantioselective biocatalysis; α-glycosidase inhibitors
Mesh:
Substances:
Year: 2018 PMID: 29986401 PMCID: PMC6100410 DOI: 10.3390/molecules23071653
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Synthetic strategy for the preparation of conduritol C derivatives.
Scheme 2Synthesis of methyl-conduritol C.
Figure 1Oak Ridge Thermal Ellipsoid Plot (ORTEP) plots of the crystal structures of (a) methyl-conduritol C acetonide (5) [12], and (b) (−)-methyl-conduritol C (6).
Scheme 3Synthesis of bromo-conduritol C.
Figure 2ORTEP plots of (a) bromo-conduritol C acetonide (11), and (b) (−)-bromo-conduritol C (12).
Scheme 4Synthesis of (−)-conduritol C.
Figure 3ORTEP plots of (a) conduritol C acetonide (13), and (b) (−)-conduritol C (14).