4.8 Article

Total Synthesis and Target Identification of the Curcusone Diterpenes

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 143, 期 11, 页码 4379-4386

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AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c00557

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资金

  1. NIH [R35 GM128570, P30 CA023168]
  2. NSF Graduate Research Fellowships Program
  3. Reba and Nat Newman Endowed Fellowship
  4. Scripps Research Institute
  5. NSF through the Major Research Instrumentation Program [CHE 1625543]

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Curcusone natural products are complex diterpenes with potent anticancer activity, and their total synthesis and mechanism of action have been successfully explored. The chemical synthesis of curcusones and identification of BRAT1 as a cellular target provides new insights for cancer therapy.
The curcusone natural products are complex diterpenes featuring a characteristic [6-7-5] tricyclic carbon skeleton similar to the daphnane and tigliane diterpenes. Among them, curcusones A-D demonstrated potent anticancer activity against a broad spectrum of human cancer cell lines. Prior to this study, no total synthesis of the curcusones was achieved and their anticancer mode of action remained unknown. Herein, we report our synthetic and chemoproteomics studies of the curcusone diterpenes which culminate in the first total synthesis of several curcusone natural products and identification of BRCA1-associated ATM activator 1 (BRAT1) as a cellular target. Our efficient synthesis is highly convergent, builds upon cheap and abundant starting materials, features a thermal [3,3]-sigmatropic rearrangement and a novel FeCI3--promoted cascade reaction to rapidly construct curcusones, and led us to complete the first total synthesis of curcusones A and B the critical cycloheptadienone core of the in only 9 steps, C and D in 10 steps, and dimericursone A in 12 steps. The chemical synthesis of dimericursone A from curcusones C and D provided direct evidence to support the proposed Diels-Alder dimerization and cheletropic elimination biosynthetic pathway. Using an alkyne-tagged probe molecule, BRAT1, an important but previously undruggable oncoprotein, was identified as a key cellular target via chemoproteomics. We further demonstrate for the first time that BRAT1 can be inhibited by curcusone D, resulting in impaired DNA damage response, reduced cancer cell migration, potentiated activity of the DNA damaging drug etoposide, and other phenotypes similar to BRAT1 knockdown.

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