| Literature DB >> 26916098 |
Ying Tang1, Yongbo Xue2, Guang Du1, Jianping Wang2, Junjun Liu2, Bin Sun2, Xiao-Nian Li3, Guangmin Yao2, Zengwei Luo2, Yonghui Zhang4.
Abstract
The reisolation and structural revision of brassicicene D is described, and inspired us to reassign the core skeletons of brassicicenes C-H, J and K, ranging from dicyclopenta[a,d]cyclooctane to tricyclo[9.2.1.0(3,7)]tetradecane using quantum-chemical predictions and experimental validation strategies. Three novel, highly modified fusicoccanes, brassicicenes L-N, were also isolated from the fungus Alternaria brassicicola, and their structures were unequivocally established by spectroscopic data, ECD calculations, and crystallography. The reassigned structures represent the first class of bridgehead double-bond-containing natural products with a bicyclo[6.2.1]undecane carbon skeleton. Furthermore, their stabilities were first predicted with olefin strain energy calculations. Collectively, these findings extend our view of the application of computational predictions and biosynthetic logic-based structure elucidation to address problems related to the structure and stability of natural products.Entities:
Keywords: NMR spectroscopy; computational chemistry; natural products; structure elucidation; terpenoids
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Year: 2016 PMID: 26916098 DOI: 10.1002/anie.201600313
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336