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烯基硼酸酯的不对称氧化环化反应。

Asymmetric Oxidative Lactonization of Enynyl Boronates.

机构信息

State Key Laboratory of Chemo/Biosensing and Chemometrics, Advanced Catalytic Engineering Research Center of the Ministry of Education, College of Chemistry and Chemical Engineering, Hunan University, 410082 Changsha, Hunan, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2022 Oct 10;61(41):e202209004. doi: 10.1002/anie.202209004. Epub 2022 Sep 6.

Abstract

Oxidation of C-B bonds is extensively used in organic synthesis, materials science, and chemically biology. However, these oxidations are usually limited to the oxidation of C(sp )-B and C(sp )-B bonds. The C(sp)-B bond oxidation is rarely developed. Herein we present a novel strategy for the preparation of γ-lactones via the oxidation of enynyl boronates. This process successively involves the C(sp)-B bond oxidation, the epoxidation of C-C double bond and the lactonization. This protocol provided various γ-lactones and unsaturated butenolides efficiently that are prevalent in numerous nature products and bioactive molecules. Most importantly, asymmetric oxidative lactonization of enynyl boronates was also achieved, providing chiral γ-lactones in high enantioselectivities and diastereoselectivities. The versatile transformations and ubiquity of γ-lactones shed light on the importance of this strategy in the construction and late-stage functionalization of complex molecules.

摘要

C-B 键的氧化在有机合成、材料科学和化学生物学中得到了广泛的应用。然而,这些氧化反应通常仅限于 C(sp )-B 和 C(sp )-B 键的氧化。C(sp)-B 键的氧化反应很少得到发展。本文报道了一种通过烯丙基硼酸酯的氧化制备γ-内酯的新策略。该过程依次涉及 C(sp)-B 键氧化、C-C 双键环氧化和内酯化。该方法高效地提供了各种γ-内酯和不饱和丁烯内酯,这些内酯广泛存在于许多天然产物和生物活性分子中。最重要的是,烯丙基硼酸酯的不对称氧化内酯化也得到了实现,以高对映选择性和非对映选择性提供了手性γ-内酯。γ-内酯的多功能转化和普遍性凸显了该策略在复杂分子的构建和后期功能化中的重要性。

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