A discrete intermediate for the biosynthesis of both the enediyne core and the anthraquinone moiety of enediyne natural products

Author:

Bhardwaj Minakshi1,Cui Zheng1,Daniel Hankore Erome1ORCID,Moonschi Faruk H.2,Saghaeiannejad Esfahani Hoda3ORCID,Kalkreuter Edward4,Gui Chun4ORCID,Yang Dong45,Phillips George N.6ORCID,Thorson Jon S.1,Shen Ben4578,Van Lanen Steven G.13ORCID

Affiliation:

1. Department of Pharmaceutical Sciences, College of Pharmacy, University of Kentucky, Lexington, KY 40536

2. Department of Physiology, College of Medicine, University of Kentucky, Lexington, KY 40536

3. Department of Microbiology, Immunology and Molecular Genetics, College of Medicine, University of Kentucky, Lexington, KY 40536

4. Department of Chemistry, The Herbert Wertheim UF Scripps Institute for Biomedical Innovation & Technology, University of Florida, Jupiter, FL 33458

5. Natural Products Discovery Center, The Herbert Wertheim UF Scripps Institute for Biomedical Innovation & Technology, University of Florida, Jupiter, FL 33458

6. Department of BioSciences, Rice University, Houston, TX 77005

7. Department of Molecular Medicine, The Herbert Wertheim UF Scripps Institute for Biomedical Innovation & Technology, University of Florida, Jupiter, FL 33458

8. Skaggs Graduate School of Chemical and Biological Sciences, Scripps Research, Jupiter, FL 33458

Abstract

The enediynes are structurally characterized by a 1,5-diyne-3-ene motif within a 9- or 10-membered enediyne core. The anthraquinone-fused enediynes (AFEs) are a subclass of 10-membered enediynes that contain an anthraquinone moiety fused to the enediyne core as exemplified by dynemicins and tiancimycins. A conserved iterative type I polyketide synthase (PKSE) is known to initiate the biosynthesis of all enediyne cores, and evidence has recently been reported to suggest that the anthraquinone moiety also originates from the PKSE product. However, the identity of the PKSE product that is converted to the enediyne core or anthraquinone moiety has not been established. Here, we report the utilization of recombinant E. coli coexpressing various combinations of genes that encode a PKSE and a thioesterase (TE) from either 9- or 10-membered enediyne biosynthetic gene clusters to chemically complement Δ PKSE mutant strains of the producers of dynemicins and tiancimycins. Additionally, 13 C-labeling experiments were performed to track the fate of the PKSE/TE product in the Δ PKSE mutants. These studies reveal that 1,3,5,7,9,11,13-pentadecaheptaene is the nascent, discrete product of the PKSE/TE that is converted to the enediyne core. Furthermore, a second molecule of 1,3,5,7,9,11,13-pentadecaheptaene is demonstrated to serve as the precursor of the anthraquinone moiety. The results establish a unified biosynthetic paradigm for AFEs, solidify an unprecedented biosynthetic logic for aromatic polyketides, and have implications for the biosynthesis of not only AFEs but all enediynes.

Funder

HHS | NIH | National Cancer Institute

HHS | NIH | National Institute of General Medical Sciences

HHS | NIH | National Center for Advancing Translational Sciences

HHS | NIH | Office of Research Infrastructure Programs, National Institutes of Health

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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