Chacón-Vargas Karla Fabiola, Nogueda-Torres Benjamin, Sánchez-Torres Luvia E, Suarez-Contreras Erick, Villalobos-Rocha Juan Carlos, Torres-Martinez Yuridia, Lara-Ramirez Edgar E, Fiorani Giulia, Krauth-Siegel R Luise, Bolognesi Maria Laura, Monge Antonio, Rivera Gildardo
Departamento de Inmunología, Escuela Nacional de Ciencias Biológicas, Instituto Politécnico Nacional, Prolongación de Carpio y Plan de Ayala, s/n, 11340 Ciudad de México, México.
Departamento de Parasitología, Escuela Nacional de Ciencias Biológicas, Instituto Politécnico Nacional, Prolongación de Carpio y Plan de Ayala, s/n, 11340 Ciudad de México, México.
Molecules. 2017 Feb 1;22(2):220. doi: 10.3390/molecules22020220.
Chagas disease or American trypanosomiasis is a worldwide public health problem. In this work, we evaluated 26 new propyl and isopropyl quinoxaline-7-carboxylate 1,4-di-N-oxide derivatives as potential trypanocidal agents. Additionally, molecular docking and enzymatic assays on trypanothione reductase (TR) were performed to provide a basis for their potential mechanism of action. Seven compounds showed better trypanocidal activity on epimastigotes than the reference drugs, and only four displayed activity on trypomastigotes; T-085 was the lead compound with an IC50 = 59.9 and 73.02 µM on NINOA and INC-5 strain, respectively. An in silico analysis proposed compound T-085 as a potential TR inhibitor with better affinity than the natural substrate. Enzymatic analysis revealed that T-085 inhibits parasite TR non-competitively. Compound T-085 carries a carbonyl, a CF3, and an isopropyl carboxylate group at 2-, 3- and 7-position, respectively. These results suggest the chemical structure of this compound as a good starting point for the design and synthesis of novel trypanocidal derivatives with higher TR inhibitory potency and lower toxicity.
恰加斯病或美洲锥虫病是一个全球性的公共卫生问题。在这项研究中,我们评估了26种新的丙基和异丙基喹喔啉-7-羧酸酯1,4-二氮氧化物衍生物作为潜在的杀锥虫剂。此外,还进行了对锥虫硫醇还原酶(TR)的分子对接和酶活性测定,为其潜在作用机制提供依据。七种化合物对前鞭毛体显示出比参考药物更好的杀锥虫活性,只有四种对锥鞭毛体有活性;T-085是先导化合物,对NINOA和INC-5菌株的IC50分别为59.9和73.02μM。计算机模拟分析表明化合物T-085是一种潜在的TR抑制剂,其亲和力比天然底物更好。酶活性分析表明T-085以非竞争性方式抑制寄生虫TR。化合物T-085在2-、3-和7-位分别带有一个羰基、一个CF3和一个异丙基羧酸酯基团。这些结果表明该化合物的化学结构是设计和合成具有更高TR抑制效力和更低毒性的新型杀锥虫衍生物的良好起点。