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钯催化的不对称烯丙基 C-H 功能化:反应机理、立体和区域选择性及合成应用。

Palladium-Catalyzed Asymmetric Allylic C-H Functionalization: Mechanism, Stereo- and Regioselectivities, and Synthetic Applications.

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale and Department of Chemistry, University of Science and Technology of China, Hefei 230026, China.

出版信息

Acc Chem Res. 2020 Dec 15;53(12):2841-2854. doi: 10.1021/acs.accounts.0c00477. Epub 2020 Oct 2.

Abstract

Asymmetric functionalization of inert C-H bonds is undoubtedly a synthetically significant yet challenging bond-forming process, allowing for the preparation of densely functionalized molecules from abundantly available feedstocks. In the past decade, our group and others have found that trivalent phosphorus ligands are capable of facilitating Pd-catalyzed allylic C-H functionalization of α-alkenes upon using -quinone as an oxidant. In these reactions, a 16-electron Pd(0) complex bearing a monodentate phosphorus ligand, a -quinone, and an α-alkene has been identified as a key intermediate. Through a concerted proton and two-electron transfer process, electrophilic π-allylpalladium is subsequently generated and can be leveraged to forge versatile chemical bonds with a wide range of nucleophiles. This Account focuses on describing the origin, evolution, and synthetic applications of Pd-catalyzed asymmetric allylic C-H functionalization reactions, with an emphasis on the fundamental mechanism of the concerted proton and two-electron transfer process in allylic C-H activation.Enabled by the cooperative catalysis of the palladium complex of triarylphosphine, a primary amine, and a chiral phosphoric acid, an enantioselective α-allylation of aldehydes with α-alkenes is established. The combination of chiral phosphoric acid and a palladium complex of a chiral phosphoramidite ligand allows the allylic C-H alkylation of α-alkenes with pyrazol-5-ones to give excellent enantioselectivities, wherein the chiral ligand and chiral phosphoric acid synergistically control the stereoselectivity. Notably, the palladium-phosphoramidite complexes are also efficient catalysts for allylic C-H alkylation, with a wide scope of nucleophiles. In the case of 1,4-dienes, the geometry and coordination pattern of the nucleophile are able to vary the transition states of bond-forming events and thereby determine the /-, regio-, and stereoselectivities.These enantioselective allylic C-H functionalization reactions are tolerant of a wide range of nucleophiles and α-alkenes, providing a large library of optically active building blocks. Based on enantioselective intramolecular allylic C-H oxidation, the formal synthesis of (+)-diversonol is accomplished, and enantioselective intramolecular allylic C-H amination can enable concise access to letermovir. In particular, the asymmetric allylic C-H alkylation of 1,4-dienes with azlactones offers highly enantioenriched α,α-disubstituted α-amino acid derivatives that are capable of serving as key building blocks for the enantioselective synthesis of lepadiformine alkaloids. In addition, a tachykinin receptor antagonist and (-)-tanikolide are also synthesized with chiral molecules generated from the corresponding allylic C-H alkylation reactions.

摘要

不对称 C-H 键功能化无疑是一种具有合成意义但具有挑战性的成键过程,可从丰富的原料制备高度官能化的分子。在过去的十年中,我们小组和其他小组发现,三价磷配体能够在使用 - 醌作为氧化剂的情况下促进 Pd 催化的烯丙基 C-H 功能化。在这些反应中,已鉴定出具有单齿磷配体、- 醌和α-烯烃的 16 电子 Pd(0)配合物为关键中间体。通过协同质子和两电子转移过程,随后生成亲电π-烯丙基钯,并可利用其与广泛的亲核试剂形成多种化学键。本账户重点介绍 Pd 催化的不对称烯丙基 C-H 功能化反应的起源、演变和合成应用,重点介绍协同质子和两电子转移过程在烯丙基 C-H 活化中的基本机制。在三芳基膦钯配合物、伯胺和手性磷酸的协同催化作用下,建立了醛与α-烯烃的对映选择性α-烯丙基化。手性磷酸和手性磷酰胺配体的钯配合物的结合允许与吡唑-5-酮的α-烯烃的烯丙基 C-H 烷基化反应获得优异的对映选择性,其中手性配体和手性磷酸协同控制立体选择性。值得注意的是,钯-磷酰胺配合物也是烯丙基 C-H 烷基化反应的有效催化剂,具有广泛的亲核试剂。对于 1,4-二烯,亲核试剂的几何形状和配位模式能够改变成键事件的过渡态,从而决定了/-、区域和立体选择性。这些对映选择性烯丙基 C-H 功能化反应对多种亲核试剂和α-烯烃具有耐受性,提供了大量光学活性构建块。基于对映选择性的分子内烯丙基 C-H 氧化,完成了(+)-diversonol 的形式合成,并且对映选择性的分子内烯丙基 C-H 氨化能够简洁地获得 letermovir。特别是,与氮杂内酯的 1,4-二烯的不对称烯丙基 C-H 烷基化反应提供了高度对映富集的α,α-二取代α-氨基酸衍生物,可作为 lepadiomine 生物碱的对映选择性合成的关键构建块。此外,使用相应的烯丙基 C-H 烷基化反应生成的手性分子合成了速激肽受体拮抗剂和(-)-tanikolide。

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