Recent Advances in the Mitsunobu and Related Reactions: A Review from 2010 to 2024

IF 8.6 2区 化学 Q1 Chemistry
Abdeslem Bouzina, Zineb Aouf, Aϊcha Amira, Yousra Ouafa Bouone, Houria Bentoumi, Yasmine Chemam, Malika Ibrahim-Ouali, Rachida Zerrouki, Nour-Eddine Aouf
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引用次数: 0

Abstract

This review discusses recent progress in the most significant synthetic approaches involving transformations under the Mitsunobu reaction. The Mitsunobu reaction entails the "redox" condensation of an acidic pronucleophile ‘Nu-H’ and an electrophilic primary or secondary alcohol, facilitated by stoichiometric amounts of phosphines and azodicarboxylate reagents. Widely utilized for dehydrative oxidation–reduction condensation, this reaction shows synthetic utility through its tolerance of a broad range of acidic pronucleophiles, including carboxylic acids, pro-imides, hydroxamates, phenols, thiols, fluorinated alcohols, oximes, thioamides, pyridinium and imidazolium salts, pyrimidine bases, α-ketoesters, and trimethylmethane tricarboxylate, thereby yielding a variety of functional and potentially biologically active compounds. The purpose of this review is to focus on recent advances and applications of Mitsunobu reaction chemistry, particularly from 2010 to 2024. In addition to discussing newer reagents that facilitate purification, we will describe contemporary applications of this chemistry, especially concerning the synthesis of potential biological compounds and their precursors. This focus review of the Mitsunobu reaction summarizes its origins, the current understanding of its mechanism, and recent improvements and applications. We aim for this work to serve as a useful resource for scientists working in this research domain.

Abstract Image

光信及其相关反应的最新进展:2010 - 2024年综述
本文综述了在mitsunnobu反应下涉及转化的最重要的合成方法的最新进展。Mitsunobu反应是酸性亲核试剂Nu-H和亲电的伯醇或仲醇的“氧化还原”缩合,由化学计量量的膦和偶氮二羧酸试剂促进。该反应广泛用于脱水氧化还原缩合,通过其对广泛的酸性亲核试剂的耐受性,包括羧酸、前亚胺、羟酸盐、酚类、硫醇、氟化醇、肟、硫酰胺、吡啶和咪唑盐、嘧啶碱、α-酮酯和三甲基甲烷三羧酸盐,从而产生各种功能性和潜在的生物活性化合物,显示出合成的实用性。本文综述了光信反应化学的最新进展和应用,特别是2010年至2024年。除了讨论便于纯化的新试剂外,我们还将描述该化学的当代应用,特别是关于潜在生物化合物及其前体的合成。本文重点综述了Mitsunobu反应的起源、目前对其机理的认识以及最近的改进和应用。我们的目标是将这项工作作为在这个研究领域工作的科学家的有用资源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Topics in Current Chemistry
Topics in Current Chemistry 化学-化学综合
CiteScore
11.70
自引率
1.20%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Topics in Current Chemistry provides in-depth analyses and forward-thinking perspectives on the latest advancements in chemical research. This renowned journal encompasses various domains within chemical science and their intersections with biology, medicine, physics, and materials science. Each collection within the journal aims to offer a comprehensive understanding, accessible to both academic and industrial readers, of emerging research in an area that captivates a broader scientific community. In essence, Topics in Current Chemistry illuminates cutting-edge chemical research, fosters interdisciplinary collaboration, and facilitates knowledge-sharing among diverse scientific audiences.
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