Laha Joydev K, Hunjan Mandeep Kaur
Department of Pharmaceutical Technology (Process Chemistry), National Institute of Pharmaceutical Education and Research, S. A. S. Nagar, Punjab 160062, India.
J Org Chem. 2022 Mar 4;87(5):2315-2323. doi: 10.1021/acs.joc.1c02110. Epub 2022 Jan 21.
Despite the structural similarity with imines, α-iminocarboxylic acids have seldom been used in heterocycles synthesis. The reactions of -substituted anilines and arylglyoxylic acids in DMSO at 40 °C gave various benzo-fused five- to six-membered N-heterocycles in good to excellent yields. The reaction proceeds via intramolecular Michael addition of α-iminocarboxylic acids, generated in situ, with an -substituted nucleophile, yielding an isolable unprecedented tetrahedral carboxylic acids, which upon decarboxylation without any aid of additional reagents forms the N-heterocycles. DMSO is crucial in this reaction, perhaps because of improved solubility and the ease of decarboxylation of these tetrahedral carboxylic acids. However, a copper-catalyzed reaction of -substituted anilines and 2-bromoarylglyoxylic acids gave a dibenzo-fused seven-membered N-heterocycle under a basic reaction condition. Unlike intramolecular cyclization with α-iminocarboxylic acids in the first case, α-iminocarboxylic acid undergoes a competitive decarboxylation under the copper-catalyzed conditions, which upon subsequent heteroarylation form the heterocycles. Taken together, the study described herein represents two different modes of decarboxylation observed with α-iminocarboxylic acids, leading to the synthesis of divergent heterocycles and pharmaceuticals, which remained unexplored previously.
尽管α-亚氨基羧酸与亚胺在结构上相似,但它们很少用于杂环合成。在40℃下,在二甲基亚砜(DMSO)中,α-取代苯胺与芳基乙醛酸反应,以良好至优异的产率得到各种苯并稠合的五元至六元N-杂环。该反应通过原位生成的α-亚氨基羧酸与α-取代亲核试剂的分子内迈克尔加成进行,生成一种可分离的前所未有的四面体羧酸,该四面体羧酸在无需任何额外试剂辅助的情况下脱羧形成N-杂环。DMSO在该反应中至关重要,这可能是因为这些四面体羧酸的溶解性得到改善且易于脱羧。然而,在碱性反应条件下,α-取代苯胺与2-溴芳基乙醛酸的铜催化反应得到一种二苯并稠合的七元N-杂环。与第一种情况下α-亚氨基羧酸的分子内环化不同,在铜催化条件下,α-亚氨基羧酸会发生竞争性脱羧,随后通过杂芳基化形成杂环。综上所述,本文所述的研究代表了α-亚氨基羧酸观察到的两种不同脱羧模式,从而导致合成了以前未被探索的不同杂环和药物。