Tyagi Rahul, Maddirala Amarendar Reddy, Elfawal Mostafa, Fischer Chelsea, Bulman Christina A, Rosa Bruce A, Gao Xin, Chugani Ryan, Zhou Mingzhou, Helander Jon, Brindley Paul J, Tseng Chih-Chung, Greig Iain R, Sakanari Judy, Wildman Scott A, Aroian Raffi, Janetka James W, Mitreva Makedonka
McDonnell Genome Institute , Washington University School of Medicine , 4444 Forest Park Ave. , St. Louis , Missouri 63108 , United States.
Department of Biochemistry and Molecular Biophysics , Washington University School of Medicine , 660 S. Euclid Ave. , St. Louis , Missouri 63110 , United States.
ACS Infect Dis. 2018 Jul 13;4(7):1130-1145. doi: 10.1021/acsinfecdis.8b00090. Epub 2018 May 14.
The enormous prevalence of infections caused by parasitic nematodes worldwide, coupled to the rapid emergence of their resistance to commonly used anthelmintic drugs, presents an urgent need for the discovery of new drugs. Herein, we have identified several classes of small molecules with broad spectrum activity against these pathogens. Previously, we reported the identification of carnitine palmitoyltransferases (CPTs) as a representative class of enzymes as potential targets for metabolic chokepoint intervention that was elucidated from a combination of chemogenomic screening and experimental testing in nematodes. Expanding on these previous findings, we have discovered that several chemical classes of known small molecule inhibitors of mammalian CPTs have potent activity as anthelmintics. Cross-clade efficacy against a broad spectrum of adult parasitic nematodes was demonstrated for multiple compounds from different series. Several analogs of these initial hit compounds were designed and synthesized. The compounds we report represent a good starting point for further lead identification and optimization for development of new anthelmintic drugs with broad spectrum activity and a novel mechanism of action.
寄生线虫引起的感染在全球范围内极为普遍,再加上它们对常用驱虫药物的耐药性迅速出现,迫切需要发现新的药物。在此,我们已经鉴定出几类对这些病原体具有广谱活性的小分子。此前,我们报告了肉碱棕榈酰转移酶(CPT)作为一类代表性酶的鉴定,它是通过化学基因组筛选和线虫实验测试相结合而阐明的代谢瓶颈干预的潜在靶点。基于这些先前的发现,我们发现几种已知的哺乳动物CPT小分子抑制剂的化学类别具有作为驱虫药的强大活性。不同系列的多种化合物对多种成年寄生线虫均显示出跨谱系效力。设计并合成了这些初始命中化合物的几种类似物。我们报告的这些化合物是进一步进行先导物鉴定和优化的良好起点,以开发具有广谱活性和新作用机制的新型驱虫药物。