首页> 美国卫生研究院文献>Chemical Science >Metal-free alkene carbooxygenation following tandem intramolecular alkoxylation/Claisen rearrangement: stereocontrolled access to bridged 4.2.1 lactones
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Metal-free alkene carbooxygenation following tandem intramolecular alkoxylation/Claisen rearrangement: stereocontrolled access to bridged 4.2.1 lactones

机译:串联分子内烷氧基化/克莱森重排后的无金属烯烃碳氧合:立体控制桥4.2.1内酯的进入

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摘要

Alkene carbooxygenation has attracted considerable attention over the past few decades as this approach provides an efficient access to various oxygen-containing molecules, especially the valuable O-heterocycles. However, examples of catalytic alkene carbooxygenation via a direct C–O cleavage are quite scarce, and the C–O cleavage in these cases is invariably initiated by transition metal-catalyzed oxidative addition. We report here a novel Brønsted acid-catalyzed intramolecular alkoxylation-initiated tandem sequence, which represents the first metal-free intramolecular alkoxylation/Claisen rearrangement. Significantly, an unprecedented Brønsted acid-catalyzed intramolecular alkene insertion into the C–O bond via a carbocation pathway was discovered. This method allows the stereocontrolled synthesis of valuable indole-fused bridged [4.2.1] lactones, providing ready access to biologically relevant scaffolds in a single synthetic step from an acyclic precursor. Moreover, such an asymmetric cascade cyclization has also been realized by employing a traceless chiral directing group. Control experiments favor the feasibility of a carbocation pathway for the process. In addition, biological tests showed that some of these newly synthesized indole-fused lactones exhibited their bioactivity as antitumor agents against different breast cancer cells, melanoma cells, and esophageal cancer cells.
机译:在过去的几十年中,烯烃的碳氧合反应吸引了相当多的关注,因为这种方法可以有效地利用各种含氧分子,尤其是有价值的O杂环。但是,通过直接C-O裂解进行的催化烯烃碳氧合反应的例子非常稀少,在这些情况下,C-O裂解总是由过渡金属催化的氧化加成引发的。我们在这里报告了一种新型的布朗斯台德酸催化的分子内烷氧基化引发的串联序列,该序列代表了第一个无金属的分子内烷氧基化/克莱森重排。值得注意的是,发现了前所未有的布朗斯台德酸催化的分子内烯烃通过碳正离子途径插入到C-O键中。该方法允许立体控制合成有价值的吲哚稠合的桥联[4.2.1]内酯,可在单个合成步骤中从无环前体轻松接近生物学相关的支架。而且,通过采用无痕手性导向基团也已经实现了这种不对称的级联环化。对照实验支持该过程使用碳正离子化途径的可行性。另外,生物学测试表明,这些新合成的吲哚融合内酯中的一些表现出其作为针对不同乳腺癌细胞,黑素瘤细胞和食道癌细胞的抗肿瘤剂的生物活性。

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