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不饱和γ-内酰胺衍生物的多组分合成。通过生物电子等排体方法作为抗增殖剂的应用:羰基与磷酰基。

Multicomponent Synthesis of Unsaturated γ-Lactam Derivatives. Applications as Antiproliferative Agents through the Bioisosterism Approach: Carbonyl vs. Phosphoryl Group.

作者信息

Del Corte Xabier, López-Francés Adrián, Villate-Beitia Ilia, Sainz-Ramos Myriam, Martínez de Marigorta Edorta, Palacios Francisco, Alonso Concepción, de Los Santos Jesús M, Pedraz José Luis, Vicario Javier

机构信息

Department of Organic Chemistry I, Faculty of Pharmacy, University of the Basque Country, UPV/EHU Paseo de la Universidad 7, 01006 Vitoria-Gasteiz, Spain.

NanoBioCel Group, University of the Basque Country (UPV/EHU), 01006 Vitoria-Gasteiz, Spain.

出版信息

Pharmaceuticals (Basel). 2022 Apr 22;15(5):511. doi: 10.3390/ph15050511.

Abstract

We report efficient synthetic methodologies for the preparation of 3-amino and 3-hydroxy 3-pyrrolin-2-ones (unsaturated γ-lactams) through a multicomponent reaction of amines, aldehydes and acetylene or pyruvate derivatives. The densely substituted γ-lactam substrates show in vitro cytotoxicity, inhibiting the growth of the carcinoma human tumor cell lines RKO (human colon epithelial carcinoma), SKOV3 (human ovarian carcinoma) and A549 (carcinomic human alveolar basal epithelial cell). In view of the possibilities for the diversity of the substituents that offer a multicomponent, synthetic methodology, an extensive structure-activity profile is presented. In addition, the bioisosteric replacement of the flat ester group by a tetrahedral phosphonate or phosphine oxide moiety in γ-lactam substrates leads to increased growth inhibition activity. Cell morphology analysis and flow cytometry assays indicate that the main pathway by which our compounds induce cytotoxicity is based on the activation of the intracellular apoptotic mechanism.

摘要

我们报道了通过胺、醛与乙炔或丙酮酸衍生物的多组分反应制备3-氨基和3-羟基3-吡咯啉-2-酮(不饱和γ-内酰胺)的高效合成方法。高度取代的γ-内酰胺底物表现出体外细胞毒性,可抑制人肿瘤细胞系RKO(人结肠上皮癌)、SKOV3(人卵巢癌)和A549(人肺泡基底上皮癌细胞)的生长。鉴于多组分合成方法所提供的取代基多样性可能性,本文展示了广泛的构效关系图谱。此外,γ-内酰胺底物中平面酯基被四面体膦酸酯或氧化膦部分进行生物电子等排体取代会导致生长抑制活性增强。细胞形态分析和流式细胞术检测表明,我们的化合物诱导细胞毒性的主要途径基于细胞内凋亡机制的激活。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f46b/9144317/423bd12bd774/pharmaceuticals-15-00511-g001.jpg

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