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Chagosensine: A Riddle Wrapped in a Mystery Inside an Enigma

机译:Chagosensine:谜语中的一个谜团

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The marine macrolide chagosensine is supposedly distinguished by a (Z,Z)-configured 1,3-chlorodiene contained within a highly strained 16-membered lactone ring, which also incorporates two trans-2,5-disubstituted tetrahydrofuran (THF) rings; this array is unique. After our initial synthesis campaign had shown that the originally proposed structure is incorrect, the published data set was critically revisited to identify potential mis-assignments. The "northern" THF ring and the anti-configured diol in the "southern" sector both seemed to be sites of concern, thus making it plausible that a panel of eight diastereomeric chagosensine-like compounds would allow the puzzle to be solved. To meet the challenge, the preparation of the required building blocks was optimized, and a convergent strategy for their assembly was developed. A key role was played by the cobalt-catalyzed oxidative cyclization of alken-5-ol derivatives ("Mukaiyama cyclization"), which is shown to be exquisitely chemoselective for terminal alkenes, leaving even terminal alkynes (and other sites of unsaturation) untouched. Likewise, a palladium-catalyzed alkyne alkoxycarbonylation reaction with formation of an a-methylene-γ-lactone proved instrumental, which had not found application in natural product synthesis before. Further enabling steps were a nickel-catalyzed "Tamaru-type" homocrotylation, stereodivergent aldehyde homologations, radical hydroindation, and palladium-catalyzed alkyne-1,2-bis-stannation. The different building blocks were assembled in a serial fashion to give the idiosyncratic chlorodienes by an unprecedented site-selective Stille coupling followed by copper-mediated tin/chlorine exchange. The macrolactones were closed under forcing Yamaguchi conditions, and the resulting products were elaborated into the targeted compound library. Yet, only one of the eight diastereomers turned out to be stable in the solvent mixture that had been used to analyze the natural product; all other isomers were prone to ring opening and/or ring expansion. In addition to this stability issue, our self-consistent data set suggests that chagosensine has almost certainly little to do with the structure originally proposed by the isolation team.
机译:据推测,海洋大环内酯查戈斯汀的特征是在高度应变的16元内酯环中包含一个(Z,Z)构型的1,3-氯二烯,该环还包含两个反式2,5-二取代的四氢呋喃(THF)环;这个数组是唯一的。在我们最初的综合研究表明最初提出的结构不正确之后,就对发布的数据集进行了重新审查,以识别潜在的错误分配。 “南部”部分的“北” THF环和反构型二醇似乎都值得关注,因此,由八种非对映体恰戈斯汀类化合物组成的组可以解决这个难题。为了应对这一挑战,优化了所需构件的制备,并制定了用于其组装的融合策略。钴催化的alken-5-ol衍生物的氧化环化反应(“ Mukaiyama环化反应”)发挥了关键作用,该反应对末端烯烃具有出色的化学选择性,甚至连末端炔烃(以及其他不饱和位点)也没有受到影响。同样,钯催化的炔烃烷氧羰基化反应形成α-亚甲基-γ-内酯也被证明是有帮助的,以前从未在天然产物合成中得到应用。进一步的使能步骤是镍催化的“ Tamaru型”均丁酰化,立体发散醛同系物,自由基加氢indindation和钯催化的炔烃1,2-双锡烷基化。通过前所未有的位点选择性Stille偶联,然后通过铜介导的锡/氯交换,以连续的方式组装不同的结构单元,以生成特异的氯二烯。在强力山口条件下封闭大内酯,并将所得产物精制到目标化合物库中。然而,事实证明,八种非对映异构体中只有一种在用于分析天然产物的溶剂混合物中是稳定的。所有其他异构体均易于开环和/或扩环。除了此稳定性问题之外,我们的自洽数据集还表明,恰戈斯内辛几乎可以肯定与隔离团队最初提出的结构无关。

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