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Synthesis· 2026Q2

Synthetic Studies toward Anguidine: Assembly of the Tricyclic Ether Scaffold

Yingzhao Zhao, Frank R Fronczek, Prakash T. Parvatkar, Roman Manetsch

Short summary

Researchers developed a concise, convergent strategy to assemble the 6/5/6 tricyclic ether scaffold of anguidine, a complex fungal toxin, using intramolecular aldol condensation, 1,2-addition, and acid-catalyzed cyclization as key steps.

AI-generated from the title and abstract; the full text is not read.

Key points

  • A novel synthetic strategy efficiently constructs the 6/5/6 tricyclic ether scaffold of anguidine.
  • Key transformations include intramolecular aldol condensation, 1,2-addition, and acid-catalyzed intramolecular cyclization.
  • The method establishes the fused carbocyclic system in a concise, convergent manner.
  • Total synthesis of anguidine was advanced but not completed due to steric hindrance from a cyclopentane precursor.

AI-generated from the title and abstract; the full text is not read.

Abstract

Anguidine, a type A trichothecene (TCN) isolated from Fusarium graminearum, features a highly functionalized 6/6/5 tricyclic scaffold incorporating a central six-membered ether ring and a C12–C13 epoxide. Its pronounced bioactivity and structural complexity render it a challenging synthetic target. Herein, we describe our synthetic investigations toward anguidine and its tricyclic ether scaffold. An initial model study enabled efficient construction of the 6/5/6 tricyclic framework through a sequence comprising intramolecular aldol condensation, 1,2-addition, and acid-catalyzed intramolecular cyclization as the key transformations. This strategy established the fused carbocyclic system featuring a central ether linkage in a concise, convergent manner. Application of this approach to the total synthesis of anguidine commenced with the assembly of a highly functionalized cyclopentane precursor, featuring key transformations such as Wittig olefination and dihydroxylation. Subsequent 1,4-conjugate addition, intramolecular aldol condensation, 1,2-addition, and intramolecular cyclization were designed to construct the tricyclic framework that encompasses the full carbon skeleton of anguidine. Although advanced intermediates bearing the required connectivity were successfully obtained, completion of the total synthesis proved challenging due to the steric hindrance associated with the pre-functionalized cyclopentane precursor.

The authors' abstract, as published at the source. Synthesis, 2026 · DOI ↗

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Field: Organic Chemistry

Organic ChemistryChemistry