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April 6, 2026ACS Central Science2 citationsOpen Access

Propellane Alkaloid Biosynthesis and Total Synthesis via Interrupted Reaction Pathways

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JBJohn M. BillingsleyJDJiaming DingAHAllison T. Hands

Key Points

  • The aim is to explore the biosynthesis and total synthesis of a new family of alkaloids called subrubines.
  • Utilized high-resolution genome mining to identify microbial alkaloids.
  • Demonstrated complete pathway reconstitution involving the ene-reductase SubF.
  • Executed a 7-step total synthesis of pensubrubine using interrupted Fischer indolization.
  • Identified subrubines as the only known microbial diaza[3.3.3]propellane pyrrolidinoindolines.
  • Established that SubF functions as a propellane synthase directing the enolate intermediate.
  • Successfully achieved the construction of the diaza[3.3.3]propellane core.

Abstract

Interrupted reactions, in which an intermediate is redirected from its conventional mechanistic pathway, offer a unique approach to the assembly of complex natural products. This study details the biosynthesis of a newly discovered family of alkaloids named the subrubines alongside the total synthesis of the penultimate member, pensubrubine, featuring distinct interrupted reaction pathways. These natural products, identified using high-resolution genome mining of an active site mutation, represent the only reported microbial diaza3.3.3propellane pyrrolidinoindolines. We demonstrate through complete pathway reconstitution that the putatively annotated ene-reductase SubF functions as the propellane synthase that directs an enolate intermediate toward an intramolecular Mannich cyclization. Concurrently, a concise 7-step total synthesis of pensubrubine was developed, employing a diastereoselective interrupted Fischer indolization reaction to rapidly construct the diaza3.3.3propellane core and establish the absolute configuration of pensubrubine. The reported bio- and total syntheses of subrubines showcase the value of interrupted pathways in assembling complex scaffolds.

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Cite This Study

Billingsley et al. (2026) studied this question.

synapsesocial.com/papers/69d34d5c9c07852e0af9754ehttps://doi.org/10.1021/acscentsci.6c00057
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