Suppr超能文献

从 C4 到 C7:吲哚 C-H 键的位点选择性功能化的创新策略。

From C4 to C7: Innovative Strategies for Site-Selective Functionalization of Indole C-H Bonds.

机构信息

State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC), School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210093, China.

出版信息

Acc Chem Res. 2021 Apr 6;54(7):1723-1736. doi: 10.1021/acs.accounts.0c00888. Epub 2021 Mar 12.

Abstract

The widespread presence of hydrocarbons makes C-H functionalization an attractive alternative to traditional cross-coupling methods. As indole is an important heteroarene in a plethora of natural products and pharmaceuticals, C-H functionalization of indole moieties has emerged as one of the most important topics in this field. Due to the presence of multiple C-H bonds in indoles, site selectivity is a long-standing challenge. Much effort has been devoted to the C-H functionalization of indoles at the C3 or C2 position, while accessing the benzene core (from C4 to C7) is considerably more challenging.This Account summarizes our recent efforts toward site-selective C-H functionalization of indoles at the benzene core based on innovative strategies. A common method to solve the issue involves the development of directing groups (DGs). Our early studies establish that the installation of the -P(O)Bu group at the N position can produce C7 and C6 arylation products using palladium and copper catalysts, respectively. The developed system can also be extended to direct arylation of indoles at the C5 and C4 positions by installing a pivaloyl group at the C3 position. Further investigation of indoles bearing -PBu groups shows a more diverse reactivity for C-H functionalizations at the C7 position, including arylation, olefination, acylation, alkylation, silylation, and carbonylation with different coupling partners. Compared to the P(V) DG, the P(III) group can be easily attached to the indole substrates and detached from the products. However, these attractive reactions rely mostly on precious metal catalysts with ligands; this requirement can be a significant limitation, particularly for large-scale syntheses and the necessity of removal of toxic trace metals in pharmaceutical products. We have also uncovered a general strategy for chelation-assisted aromatic C-H borylation just using simple BBr under mild conditions, in which the installation of pivaloyl groups at the N1 or C3 position of indoles can selectively deliver the boron species to the unfavorable C7 or C4 positions and allow subsequent C-H borylation without any metal. This transition-metal-free strategy can be extended to synthesize C7 and C4 hydroxylated indoles by boron-mediated directed C-H hydroxylation under mild reaction conditions and with broad functional group compatibility.In this Account, we describe our contributions to this topic since 2015. These studies provide efficient and attractive methods for the divergent synthesis of valuable substituted indoles and insights into the exploration of new strategies for the site-selective C-H functionalization and directives for other important heteroarenes.

摘要

碳氢化合物的广泛存在使得 C-H 功能化成为传统交叉偶联方法的一种有吸引力的替代方法。由于吲哚是许多天然产物和药物中的一种重要杂环芳烃,因此吲哚部分的 C-H 功能化已成为该领域最重要的课题之一。由于吲哚中存在多个 C-H 键,因此选择性一直是一个长期存在的挑战。人们已经投入了大量精力来实现吲哚在 C3 或 C2 位置的 C-H 功能化,而要进入苯核(从 C4 到 C7)则更加困难。本综述总结了我们最近基于创新策略在吲哚苯核上进行位点选择性 C-H 功能化的研究工作。一种常见的解决方法是开发导向基团(DG)。我们的早期研究表明,在 N 位安装-P(O)Bu 基团可以分别使用钯和铜催化剂在 C7 和 C6 位置产生芳基化产物。通过在 C3 位安装特戊酰基,可以将开发的系统扩展到吲哚在 C5 和 C4 位置的直接芳基化。对带有-PBu 基团的吲哚的进一步研究表明,在 C7 位置进行 C-H 功能化具有更多样的反应性,包括芳基化、烯烃化、酰化、烷基化、硅烷化和与不同偶联伙伴的羰基化。与 P(V)DG 相比,P(III)基团可以很容易地连接到吲哚底物上,并从产物中脱附。然而,这些吸引人的反应主要依赖于具有配体的贵金属催化剂;这一要求可能是一个重大限制,特别是对于大规模合成和在药物产品中去除有毒痕量金属的必要性。我们还发现了一种在温和条件下仅使用简单的 BBr 进行螯合辅助芳香 C-H 硼化的通用策略,其中在吲哚的 N1 或 C3 位安装特戊酰基可以选择性地将硼物种引入不利的 C7 或 C4 位置,并允许随后在没有任何金属的情况下进行 C-H 硼化。这种无过渡金属的策略可以扩展到通过硼介导的导向 C-H 羟基化在温和的反应条件下合成 C7 和 C4 羟基化吲哚,并具有广泛的官能团兼容性。在本综述中,我们描述了自 2015 年以来我们在这一课题上的贡献。这些研究为有价值的取代吲哚的发散合成提供了高效、有吸引力的方法,并为探索新的选择性 C-H 功能化策略以及其他重要杂环芳烃的指导提供了见解。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验