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基于骨骼重塑和 C-H 功能化的长松萝烯倍半萜合成中的策略演变。

Strategy Evolution in a Skeletal Remodeling and C-H Functionalization-Based Synthesis of the Longiborneol Sesquiterpenoids.

机构信息

Department of Chemistry, University of California─Berkeley, Berkeley, California 94720, United States.

O̅mura Satoshi Memorial Institute, Kitasato University, 5-9-1 Shirokane, Minato-ku, Tokyo 108-8641, Japan.

出版信息

J Am Chem Soc. 2022 Sep 21;144(37):17277-17294. doi: 10.1021/jacs.2c08136. Epub 2022 Sep 13.

Abstract

Detailed herein are our synthesis studies of longiborneol and related natural products. Our overarching goals of utilizing a "camphor first" strategy enabled by skeletal remodeling of carvone, and late-stage diversification using C-H functionalizations, led to divergent syntheses of the target natural products. Our initial approach proposed a lithiate addition to unite two fragments followed by a Conia-ene or Pd-mediated cycloalkylation reaction sequence to install the seven-membered ring emblematic of the longibornane core. This approach was unsuccessful and evolved into a revised plan that employed a Wittig coupling and a radical cyclization to establish the core. A reductive radical cyclization, which was explored first, led to a synthesis of copaborneol, a structural isomer of longiborneol. Alternatively, a metal-hydride hydrogen atom transfer-initiated cyclization was effective for a synthesis of longiborneol. Late-stage C-H functionalization of the longibornane core led to a number of hydroxylated longiborneol congeners. The need for significant optimization of the strategies that were employed as well as the methods for C-H functionalization to implement these strategies highlights the ongoing challenges in applying these powerful reactions. Nevertheless, the reported approach enables functionalization of every natural product-relevant C-H bond in the longibornane skeleton.

摘要

本文详细介绍了我们对 longiborneol 及相关天然产物的合成研究。我们的总体目标是利用“莰烯优先”策略,通过莰烯骨架重排,并采用 C-H 官能团化进行后期多样化,从而得到目标天然产物的发散合成。我们最初的方法提出了锂化加成来连接两个片段,然后进行 Conia-ene 或 Pd 介导的环烷基化反应序列,以安装代表 longibornane 核心的七元环。该方法不成功,演变为采用 Wittig 偶联和自由基环化来构建核心的修订计划。首先探索了还原自由基环化,导致合成了 copaborneol,这是 longiborneol 的结构异构体。或者,金属氢化物氢原子转移引发的环化对于 longiborneol 的合成是有效的。longibornane 核心的后期 C-H 官能团化导致了许多羟基化的 longiborneol 同系物。需要对所采用的策略以及 C-H 官能团化方法进行大量优化,以实施这些策略,这突出了在应用这些强大反应时所面临的持续挑战。然而,所报道的方法能够对 longibornane 骨架中的每个与天然产物相关的 C-H 键进行官能团化。

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