| Literature DB >> 30664319 |
Nicholas R Lees1,2, Li-Chen Han1,2, Matthew J Byrne3,2, Jonathan A Davies1,2, Alice E Parnell3,2, Pollyanna E J Moreland4,5, James E M Stach4,5, Marc W van der Kamp3,2, Christine L Willis1,2, Paul R Race3,2.
Abstract
Spirotetronate and spirotetramate natural products include a multitude of compounds with potent antimicrobial and antitumor activities. Their biosynthesis incorporates many unusual biocatalytic steps, including regio- and stereo-specific modifications, cyclizations promoted by Diels-Alderases, and acetylation-elimination reactions. Here we focus on the acetate elimination catalyzed by AbyA5, implicated in the formation of the key Diels-Alder substrate to give the spirocyclic system of the antibiotic abyssomicin C. Using synthetic substrate analogues, it is shown that AbyA5 catalyzes stereospecific acetate elimination, establishing the (R)-tetronate acetate as a biosynthetic intermediate. The X-ray crystal structure of AbyA5, the first of an acetate-eliminating enzyme, reveals a deviant acetyl esterase fold. Molecular dynamics simulations and enzyme assays show the use of a His-Ser dyad to catalyze either elimination or hydrolysis, via disparate mechanisms, under substrate control.Entities:
Keywords: antibiotics; biocatalysis; enzyme structure; enzymology; polyketides
Year: 2019 PMID: 30664319 DOI: 10.1002/anie.201812105
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336