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标题:Callyspongiolide 的合成与分子编辑,第 1 部分:炔烃复分解/反式还原策略。

Synthesis and Molecular Editing of Callyspongiolide, Part 1: The Alkyne Metathesis/trans-Reduction Strategy.

机构信息

Max-Planck-Institut für Kohlenforschung, 45470, Mülheim/Ruhr, Germany.

出版信息

Chemistry. 2019 Jan 2;25(1):246-254. doi: 10.1002/chem.201804987. Epub 2018 Dec 11.

DOI:10.1002/chem.201804987
PMID:30397973
Abstract

A path-scouting investigation into the highly cytotoxic marine macrolide callyspongiolide is reported that capitalizes on the selective formation of the C10-C11 alkene site. While the closure of the macrocycle by ring closing alkyne metathesis (RCAM) with the aid of a molybdenum alkylidyne complex was high yielding, the envisaged semi-reduction of the cycloalkyne to the corresponding E-alkene proved challenging. The reasons are likely steric in origin, in that the methyl branches on either side of the alkyne seem to prevent effective coordination of the substrate to the ruthenium catalyst, which must carry a bulky Cp* ligand to ensure high trans-selectivity. This notion is supported by the preparation of a callyspongiolide analogue, in which the two methyl groups in question are excised; its formation by RCAM followed by trans-hydrostannation/proto-destannation was straightforward. In parallel work the formation of the fully functional building block 54 showed that the presence of an unprotected -OH group allows even hindered substrates to be processed: the protic group adjacent to the triple bond engages with a chloride ligand on the ruthenium catalyst in hydrogen bonding and hence assists in substrate binding. Moreover, the preparation of an alkynylogous callyspongiolide analogue is described.

摘要

报道了一种针对具有高细胞毒性的海洋大环内酯化合物 callyspongiolide 的路径探索研究,该研究利用了 C10-C11 烯键的选择性形成。尽管在钼烷基卡宾配合物的辅助下通过闭环炔烃复分解反应(RCAM)闭环可以高产率地形成大环,但预期的环炔烃的半还原为相应的 E-烯烃却具有挑战性。原因可能源于立体位阻,因为炔烃两侧的甲基支链似乎阻止了底物与必须带有大体积 Cp*配体以确保高反式选择性的钌催化剂的有效配位。这一观点得到了 callyspongiolide 类似物的制备的支持,其中两个有问题的甲基被切除;通过 RCAM 随后进行反式氢锡化/原脱锡化,很容易制备出它。在平行工作中,完全官能化的构建块 54 的形成表明,即使存在未保护的-OH 基团,也允许处理受阻的底物:与三键相邻的质子基团与钌催化剂上的氯配体形成氢键,从而有助于底物结合。此外,还描述了炔基类似物 callyspongiolide 的制备。

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