A discrete intermediate for the biosynthesis of both the enediyne core and the anthraquinone moiety of enediyne natural products. 2023

Minakshi Bhardwaj, and Zheng Cui, and Erome Daniel Hankore, and Faruk H Moonschi, and Hoda Saghaeiannejad Esfahani, and Edward Kalkreuter, and Chun Gui, and Dong Yang, and George N Phillips, and Jon S Thorson, and Ben Shen, and Steven G Van Lanen
Department of Pharmaceutical Sciences, College of Pharmacy, University of Kentucky, Lexington, KY 40536.

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 ΔPKSE mutant strains of the producers of dynemicins and tiancimycins. Additionally, 13C-labeling experiments were performed to track the fate of the PKSE/TE product in the ΔPKSE 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.

UI MeSH Term Description Entries
D004926 Escherichia coli A species of gram-negative, facultatively anaerobic, rod-shaped bacteria (GRAM-NEGATIVE FACULTATIVELY ANAEROBIC RODS) commonly found in the lower part of the intestine of warm-blooded animals. It is usually nonpathogenic, but some strains are known to produce DIARRHEA and pyogenic infections. Pathogenic strains (virotypes) are classified by their specific pathogenic mechanisms such as toxins (ENTEROTOXIGENIC ESCHERICHIA COLI), etc. Alkalescens-Dispar Group,Bacillus coli,Bacterium coli,Bacterium coli commune,Diffusely Adherent Escherichia coli,E coli,EAggEC,Enteroaggregative Escherichia coli,Enterococcus coli,Diffusely Adherent E. coli,Enteroaggregative E. coli,Enteroinvasive E. coli,Enteroinvasive Escherichia coli
D000880 Anthraquinones Compounds based on ANTHRACENES which contain two KETONES in any position. Substitutions can be in any position except on the ketone groups. Anthracenedione,Anthracenediones,Anthranoid,Anthraquinone,Anthraquinone Compound,Anthraquinone Derivative,Dianthraquinones,Dianthrones,Anthranoids,Anthraquinone Compounds,Anthraquinone Derivatives,Compound, Anthraquinone,Derivative, Anthraquinone
D000903 Antibiotics, Antineoplastic Chemical substances, produced by microorganisms, inhibiting or preventing the proliferation of neoplasms. Antineoplastic Antibiotics,Cytotoxic Antibiotics,Antibiotics, Cytotoxic
D001688 Biological Products Complex pharmaceutical substances, preparations, or matter derived from organisms usually obtained by biological methods or assay. Biologic,Biologic Drug,Biologic Product,Biological,Biological Drug,Biological Medicine,Biological Product,Biologics,Biopharmaceutical,Natural Product,Natural Products,Biologic Drugs,Biologic Medicines,Biologic Pharmaceuticals,Biologic Products,Biological Drugs,Biological Medicines,Biologicals,Biopharmaceuticals,Products, Biological,Drug, Biologic,Drug, Biological,Drugs, Biologic,Drugs, Biological,Medicine, Biological,Medicines, Biologic,Medicines, Biological,Pharmaceuticals, Biologic,Product, Biologic,Product, Biological,Product, Natural
D048630 Polyketide Synthases Large enzyme complexes composed of a number of component enzymes that are found in STREPTOMYCES which biosynthesize MACROLIDES and other polyketides. Polyketide Synthase,6-Deoxyerythronolide-B Synthase,Epothilone Polyketide Synthase,Erythromycin Polyketide Synthase,Griseusin Polyketide Synthase,Niddamycin Polyketide Synthase,Polyketide Synthase L1,Polyketide Synthase WA,Rifamycin Polyketide Synthase,Sterigmatocystin Polyketide Synthase,Type I Polyketide Synthase,Type II Polyketide Beta-Ketoacyl Synthase,Urdamycin Polyketide Synthase,WdPKS1 Protein,WhiE Polyketide Synthase,6 Deoxyerythronolide B Synthase,Polyketide Synthase, Epothilone,Polyketide Synthase, Erythromycin,Polyketide Synthase, Griseusin,Polyketide Synthase, Niddamycin,Polyketide Synthase, Rifamycin,Polyketide Synthase, Sterigmatocystin,Polyketide Synthase, Urdamycin,Polyketide Synthase, WhiE,Protein, WdPKS1,Synthase L1, Polyketide,Synthase WA, Polyketide,Synthase, 6-Deoxyerythronolide-B,Synthase, Epothilone Polyketide,Synthase, Erythromycin Polyketide,Synthase, Griseusin Polyketide,Synthase, Niddamycin Polyketide,Synthase, Polyketide,Synthase, Rifamycin Polyketide,Synthase, Sterigmatocystin Polyketide,Synthase, Urdamycin Polyketide,Synthase, WhiE Polyketide,Synthases, Polyketide,Type II Polyketide Beta Ketoacyl Synthase
D053281 Enediynes Compounds with triple bonds to each side of a double bond. Many of these are CYTOTOXINS and are researched for use as CYTOTOXIC ANTIBIOTICS. Enediyne Group

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