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(+)-布雷菲德菌素A和7-表-布雷菲德菌素A的对映选择性全合成。

Enantioselective total synthesis of (+)-brefeldin A and 7-epi-brefeldin A.

作者信息

Wu Yikang, Shen Xin, Yang Yong-Qing, Hu Qi, Huang Jia-Hui

机构信息

State Key Laboratory of Bio-organic and Natural Products Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 354 Fenglin Road, Shanghai 200032, China.

出版信息

J Org Chem. 2004 May 28;69(11):3857-65. doi: 10.1021/jo049971d.

Abstract

A convergent enantioselective route to brefeldin A (BFA) and 7-epi-BFA was developed. The key C-4/C-5 chiral centers were established by using chiral auxiliary induced intermolecular asymmetric aldolization in the presence of TiCl(4) and TMEDA. The results with the thiazolidinethione/TiCl(4) mediated intermolecular asymmetric aldolization added some new information about the scope and limitations to the existing knowledge of that type of reactions (which so far was essentially limited to the reactions with N-propionyl thiazolidinethiones). During the course a method for protecting the liable aldol hydroxyl groups by using inexpensive TBSCl in DMF with 2,6-lutidine as the base was developed to replace the otherwise unavoidable TBSOTf procedure. Due to the excessive steric hindrance, removal of the auxiliary was much more difficult than most literature cases. Cleavage of the oxazolidinone by reduction was almost impossible. The thiazolidinethione auxiliary was relatively easier to remove. However, several reactions reported for facile removal of thiazolidinethione auxiliaries in the literature still failed. Reductive removal of the thiazolidinethione auxiliary was most effectively realized with LiBH(4) in diethyl ether in the presence of 1 equiv of MeOH (a modification of a literature procedure for removal of oxazolidinone auxiliaries in less hindered substrates). Apart from the auxiliary removal, oxidation of the alcohol into aldehyde and the deprotection of the dithiolane protecting group were also rather difficult in the present context. A range of methods were screened before final solutions were found. The five-membered ring was constructed by employing an intramolecular Mukaiyama reaction after many attempts with the intramolecular aldolization under a variety of conditions failed. The rate of elimination of the alkoxyl to form the alpha,beta-double bond of the key intermediate cyclopentenone 49 with DBU was highly solvent dependent (very sluggish in CH(2)Cl(2) but rather fast in MeOH). Introduction of the lower chain (which was synthesized by using a Jacobsen KHR to establish the C-15 chirality) was achieved through a Michael addition similar to the precedents in the literature. It has not been noticed before that the yield of this Michael reaction could be dramatically raised by using 3 equiv of the copper-lithium reagent 55. Reduction of the C-7 carbonyl was apparently more difficult than similar cases in the literature. After examination of many reagents under various conditions, it was found that the best reagent for yielding the alpha-isomer was (S)-2-methyl-CBS-borolidine/BH(3) and that for the beta-isomer was L-Selectride. The alpha- and beta-isomers were then further elaborated into (+)-brefeldin A and 7-epi-BFA, respectively. An unexpected yet very interesting solubility difference between BFA and 7-epi-BFA was also observed.

摘要

开发了一条合成布雷菲德菌素A(BFA)和7-表布雷菲德菌素A的对映选择性汇聚路线。通过在TiCl(4)和TMEDA存在下使用手性助剂诱导的分子间不对称羟醛缩合反应构建了关键的C-4/C-5手性中心。噻唑烷硫酮/TiCl(4)介导的分子间不对称羟醛缩合反应的结果为该类反应(迄今为止基本上仅限于与N-丙酰基噻唑烷硫酮的反应)的现有知识增添了一些关于适用范围和局限性的新信息。在此过程中,开发了一种用廉价的TBSCl在DMF中以2,6-二甲基吡啶为碱保护易反应的羟醛羟基的方法,以取代原本不可避免的TBSOTf方法。由于空间位阻过大,助剂的去除比大多数文献报道的情况要困难得多。通过还原裂解恶唑烷酮几乎是不可能的。噻唑烷硫酮助剂相对较易去除。然而,文献中报道的几种便于去除噻唑烷硫酮助剂的反应仍然失败。在1当量MeOH存在下,用LiBH(4)在乙醚中最有效地实现了噻唑烷硫酮助剂的还原去除(这是对文献中用于去除位阻较小底物中恶唑烷酮助剂方法的一种改进)。除了助剂的去除外,在当前情况下,将醇氧化为醛以及二硫戊环保护基的脱保护也相当困难。在找到最终解决方案之前筛选了一系列方法。在尝试了各种条件下的分子内羟醛缩合反应均失败后,通过分子内Mukaiyama反应构建了五元环。用DBU消除关键中间体环戊烯酮49的烷氧基以形成α,β-双键的速率高度依赖于溶剂(在CH(2)Cl(2)中非常缓慢,但在MeOH中相当快)。引入较低的链(通过使用雅各布森KHR构建C-15手性合成)是通过类似于文献先例的迈克尔加成反应实现的。以前没有注意到,使用3当量的铜锂试剂55可以显著提高该迈克尔反应的产率。C-7羰基的还原显然比文献中的类似情况更困难。在各种条件下考察了许多试剂后,发现生成α-异构体的最佳试剂是(S)-2-甲基-CBS-硼烷,生成β-异构体的最佳试剂是L-选择氢化物。然后将α-和β-异构体分别进一步转化为(+)-布雷菲德菌素A和7-表布雷菲德菌素A。还观察到BFA和7-表布雷菲德菌素A之间出人意料但非常有趣的溶解度差异。

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