Modular Strategy for the Collective Total Synthesis of Pandanus amaryllifolius Alkaloids: Pandanusines A and B and Pandamarine

Abstract Pandanus amaryllifolius produces structurally unique alkaloids, including pandanusines A and B and pandamarine, featuring rare diazaspirocyclic γ-lactam frameworks. Herein, we report concise total syntheses of these three natural products based on a modular copper(I)-catalyzed reaction. Readily accessible γ-hydroxy-γ-lactams were prepared from iodoacrylic acids, terminal alkynes, and primary amines and subsequently transformed through N-acyliminium ion intermediates to construct diazaspirocyclic backbones. This strategy enabled the synthesis of (±)-pandanusine B in four steps (40% overall yield) and (±)-pandanusine A in five steps (26.5% overall yield) after optimization of the protecting group strategy. The methodology was further extended to the total synthesis of the more complex alkaloid pandamarine. These results demonstrate the synthetic potential of γ-hydroxy-γ-lactams as versatile precursors for the rapid construction of architecturally complex alkaloid scaffolds. Furthermore, the absolute configurations of both HPLC-separated enantiomers of pandanusine A and B were unambiguously determined through a combination of vibrational and electronic circular dichroism analyses and DFT and TD-DFT calculations.

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Publication Details

Journal
The Journal of Organic Chemistry
Published
2026-09-30
DOI
https://doi.org/10.1021/acs.joc.6c01791
Primary Topic
GABA and Rice Research
Type
article
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article

Modular Strategy for the Collective Total Synthesis of Pandanus amaryllifolius Alkaloids: Pandanusines A and B and Pandamarine

Laurent Comméiras, Jean‐Valère Naubron, Edouard Fauran
The Journal of Organic Chemistry
GABA and Rice Research
article

Modular Strategy for the Collective Total Synthesis of Pandanus amaryllifolius Alkaloids: Pandanusines A and B and Pandamarine

Laurent Comméiras, Jean‐Valère Naubron, Edouard Fauran
article en

Abstract

Abstract Pandanus amaryllifolius produces structurally unique alkaloids, including pandanusines A and B and pandamarine, featuring rare diazaspirocyclic γ-lactam frameworks. Herein, we report concise total syntheses of these three natural products based on a modular copper(I)-catalyzed reaction. Readily accessible γ-hydroxy-γ-lactams were prepared from iodoacrylic acids, terminal alkynes, and primary amines and subsequently transformed through N-acyliminium ion intermediates to construct diazaspirocyclic backbones. This strategy enabled the synthesis of (±)-pandanusine B in four steps (40% overall yield) and (±)-pandanusine A in five steps (26.5% overall yield) after optimization of the protecting group strategy. The methodology was further extended to the total synthesis of the more complex alkaloid pandamarine. These results demonstrate the synthetic potential of γ-hydroxy-γ-lactams as versatile precursors for the rapid construction of architecturally complex alkaloid scaffolds. Furthermore, the absolute configurations of both HPLC-separated enantiomers of pandanusine A and B were unambiguously determined through a combination of vibrational and electronic circular dichroism analyses and DFT and TD-DFT calculations.

The Journal of Organic Chemistry
Centrale Méditerranée (FR)
Openalex Percentile: Top 14%
GABA and Rice Research
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Modular Strategy for the Collective Total Synthesis of Pandanus amaryllifolius Alkaloids: Pandanusines A and B and Pandamarine — Laurent Comméiras, Jean‐Valère Naubron, et al. · The Journal of Organic Chemistry (2026) | TGRS Research Map | TGRS