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吲哚生物碱的全合成:环丙烷化策略。

Total synthesis of indoline alkaloids: A cyclopropanation strategy.

机构信息

Department of Medicinal Natural Products, Key Laboratory of Drug Targeting and Novel Delivery System of the Ministry of Education, West China School of Pharmacy, Sichuan University, Chengdu, PR China.

出版信息

Acc Chem Res. 2011 Jun 21;44(6):447-57. doi: 10.1021/ar200004w. Epub 2011 Apr 14.

DOI:10.1021/ar200004w
PMID:21491859
Abstract

Indoline alkaloids constitute a large class of natural products; their diverse and complex structures contribute to potent biological activities in a range of molecules. Designing an appropriate strategy for the total synthesis of indoline alkaloids is a difficult task that depends on being able to efficiently assemble the core architectures. The best strategies allow access to a variety of different indoline alkaloid structures in a minimum of steps. The cyclopropanation of simple olefins and the subsequent synthetic transformation of the resulting cyclopropyl intermediates has been intensively studied in recent decades. In contrast, the cyclopropanation of enamines, especially for the construction of complex nitrogen-containing ring systems, remained relatively unexplored. Previous success with the cyclopropanation of simple indoles to form stable indolylcyclopropanocarboxylates encouraged us to explore the assembly of indoline alkaloid skeletons with cyclopropanation as a key reaction. Theoretically, indolylcyclopropanocarboxylates are doubly activated by a vicinally substituted amino group and carboxyl group; that is, they are typical donor-acceptor cyclopropanes. Accordingly, they tend to yield an active iminium intermediate, which can undergo inter- and intramolecular nucleophilic reactions to form the core structure of indoline alkaloids with an expanded ring system. In this Account, we summarize our efforts to develop a cascade or stepwise reaction of cyclopropanation/ring-opening/iminium cyclization (the CRI reaction) on tryptamine derivatives for assembling indoline alkaloid skeletons. With the CRI approach, three types of indoline alkaloid skeletons have been efficiently constructed: (i) hexahydropyrrolo[2,3-b]indoline (type I), (ii) tetrahydro-9a,4a-iminoethano-9H-carbazole (type II), and (iii) tetrahydroquinolino[2,3-b]indoline (type III). The effects of substituents on tryptamine derivatives were carefully investigated for inter- and intramolecular CRI reactions during construction of type I and type II skeletons. These results provided a basis for the further design and synthesis of complex natural products containing nitrogen. The usefulness of the CRI reaction is well demonstrated by our total synthesis of structurally intriguing indoline alkaloids such as N-acetylardeemin, minfiensine, vincorine, and communesin F. In addition, we highlight advances by other groups in construction of the three types of skeletons as well as their total syntheses of these indoline alkaloids. Discussion of the total syntheses of these indoline alkaloids focuses on comparing the individual synthetic strategies for forming the ring systems embedded in the final products. We also describe the total synthesis of perophoramidine, which has the same type III skeleton as communesin F. The observation of a retro Diels-Alder reaction during our synthesis of communesin F inspired the hetero Diels-Alder reaction on which our total synthesis of perophoramidine was based.

摘要

吲哚生物碱是一大类天然产物;其多样而复杂的结构使其在多种分子中具有强大的生物活性。设计吲哚生物碱的全合成的合适策略是一项艰巨的任务,这取决于能否有效地组装核心架构。最佳策略可在最少的步骤中获得多种不同的吲哚生物碱结构。近几十年来,简单烯烃的环丙烷化及其随后的环丙基中间体的合成转化受到了广泛的研究。相比之下,烯胺的环丙烷化,特别是用于构建复杂的含氮环系统,仍然相对未被探索。先前成功地用简单吲哚进行环丙烷化形成稳定的吲哚基环丙羧酸酯,这鼓励我们探索将环丙烷化作为关键反应来组装吲哚生物碱骨架。从理论上讲,吲哚基环丙羧酸酯通过邻位取代的氨基和羧基双重活化;也就是说,它们是典型的供体-受体环丙烷。因此,它们倾向于生成活性亚胺中间体,该中间体可以进行分子间和分子内亲核反应,以具有扩展环系统的吲哚生物碱的核心结构。在本报告中,我们总结了我们在色胺衍生物上发展连续或分步环丙烷化/开环/亚胺环化(CRI 反应)以组装吲哚生物碱骨架的努力。使用 CRI 方法,已经有效地构建了三种类型的吲哚生物碱骨架:(i)六氢吡咯并[2,3-b]吲哚(类型 I),(ii)四氢-9a,4a-亚氨基乙氧基-9H-咔唑(类型 II)和(iii)四氢喹啉并[2,3-b]吲哚(类型 III)。在构建类型 I 和类型 II 骨架时,仔细研究了色胺衍生物上取代基对分子内和分子间 CRI 反应的影响。这些结果为进一步设计和合成含氮复杂天然产物提供了基础。CRI 反应的有用性通过我们对具有结构趣味性的吲哚生物碱如 N-乙酰阿得米因、米芬辛、长春质碱和 communesin F 的全合成得到了很好的证明。此外,我们还强调了其他小组在构建这三种骨架及其对这些吲哚生物碱的全合成方面的进展。对这些吲哚生物碱的全合成的讨论侧重于比较形成最终产物中嵌入的环系统的各个合成策略。我们还描述了 perophoramidine 的全合成,其骨架与 communesin F 相同,属于类型 III。在我们合成 communesin F 期间观察到的逆 Diels-Alder 反应激发了基于我们的 perophoramidine 全合成的杂 Diels-Alder 反应。

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