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The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton

The direct functionalization of inert C–H bonds is regarded as one of the most powerful strategies to form various chemical bonds and construct complex structures. Although significant advancements have been witnessed in the area of transition metal-catalyzed functionalization of inert C–H bonds, se...

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Autores principales: Liu, Hongmei, Quan, Yunyun, Xie, Long, Li, Xiang, Xie, Xin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9045402/
https://www.ncbi.nlm.nih.gov/pubmed/35494642
http://dx.doi.org/10.3389/fchem.2022.840934
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author Liu, Hongmei
Quan, Yunyun
Xie, Long
Li, Xiang
Xie, Xin
author_facet Liu, Hongmei
Quan, Yunyun
Xie, Long
Li, Xiang
Xie, Xin
author_sort Liu, Hongmei
collection PubMed
description The direct functionalization of inert C–H bonds is regarded as one of the most powerful strategies to form various chemical bonds and construct complex structures. Although significant advancements have been witnessed in the area of transition metal-catalyzed functionalization of inert C–H bonds, several challenges, such as the utilization and removal of expensive transition metal complexes, limited substrate scope and large-scale capacity, and poor atom economy in removing guiding groups coordinated to the transition metal, cannot fully fulfill the high standard of modern green chemistry nowadays. Over the past decades, due to its inherent advantage compared with a transition metal-catalyzed strategy, the hydride shift activation that applies “tert-amino effect” into the direct functionalization of the common and omnipresent C(sp(3))–H bonds adjacent to tert-amines has attracted much attention from the chemists. In particular, the intramolecular [1,5]-hydride shift activation, as the most common hydride shift mode, enables the rapid and effective production of multifunctionally complex frameworks, especially the spiro-tetrahydroquinoline derivatives, which are widely found in biologically active natural products and pharmaceuticals. Although great accomplishments have been achieved in this promising field, rarely an updated review has systematically summarized these important progresses despite scattered reports documented in several reviews. Hence, in this review, we will summarize the significant advances in the cascade [1,5]-hydride shift/intramolecular C(sp(3))-H functionalization from the perspective of “tert-amino effect” to build a spiro-tetrahydroquinoline skeleton, and the content is categorized by structure type of final spiro-tetrahydroquinoline products containing various pharmaceutical units. Besides, current limitations as well as future directions in this field are also pointed out. We hope our review could provide a quick look into and offer some inspiration for the research on hydride shift strategy in the future.
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spelling pubmed-90454022022-04-28 The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton Liu, Hongmei Quan, Yunyun Xie, Long Li, Xiang Xie, Xin Front Chem Chemistry The direct functionalization of inert C–H bonds is regarded as one of the most powerful strategies to form various chemical bonds and construct complex structures. Although significant advancements have been witnessed in the area of transition metal-catalyzed functionalization of inert C–H bonds, several challenges, such as the utilization and removal of expensive transition metal complexes, limited substrate scope and large-scale capacity, and poor atom economy in removing guiding groups coordinated to the transition metal, cannot fully fulfill the high standard of modern green chemistry nowadays. Over the past decades, due to its inherent advantage compared with a transition metal-catalyzed strategy, the hydride shift activation that applies “tert-amino effect” into the direct functionalization of the common and omnipresent C(sp(3))–H bonds adjacent to tert-amines has attracted much attention from the chemists. In particular, the intramolecular [1,5]-hydride shift activation, as the most common hydride shift mode, enables the rapid and effective production of multifunctionally complex frameworks, especially the spiro-tetrahydroquinoline derivatives, which are widely found in biologically active natural products and pharmaceuticals. Although great accomplishments have been achieved in this promising field, rarely an updated review has systematically summarized these important progresses despite scattered reports documented in several reviews. Hence, in this review, we will summarize the significant advances in the cascade [1,5]-hydride shift/intramolecular C(sp(3))-H functionalization from the perspective of “tert-amino effect” to build a spiro-tetrahydroquinoline skeleton, and the content is categorized by structure type of final spiro-tetrahydroquinoline products containing various pharmaceutical units. Besides, current limitations as well as future directions in this field are also pointed out. We hope our review could provide a quick look into and offer some inspiration for the research on hydride shift strategy in the future. Frontiers Media S.A. 2022-04-07 /pmc/articles/PMC9045402/ /pubmed/35494642 http://dx.doi.org/10.3389/fchem.2022.840934 Text en Copyright © 2022 Liu, Quan, Xie, Li and Xie. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Liu, Hongmei
Quan, Yunyun
Xie, Long
Li, Xiang
Xie, Xin
The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton
title The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton
title_full The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton
title_fullStr The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton
title_full_unstemmed The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton
title_short The Cascade [1,5]-Hydride Shift/Intramolecular C(sp(3))–H Activation: A Powerful Approach to the Construction of Spiro-Tetrahydroquinoline Skeleton
title_sort cascade [1,5]-hydride shift/intramolecular c(sp(3))–h activation: a powerful approach to the construction of spiro-tetrahydroquinoline skeleton
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9045402/
https://www.ncbi.nlm.nih.gov/pubmed/35494642
http://dx.doi.org/10.3389/fchem.2022.840934
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