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新型芳酰胍类抗锥虫化合物对寄生虫能量代谢产生相反的影响。

Novel aroyl guanidine anti-trypanosomal compounds that exert opposing effects on parasite energy metabolism.

机构信息

Monash Institute of Pharmaceutical Sciences, Monash University, Parkville, Victoria, 3052, Australia.

Ensemble Scientifique des Cézeaux, 24 avenue des Landais, 63170, Aubière, France.

出版信息

Eur J Med Chem. 2024 Mar 15;268:116162. doi: 10.1016/j.ejmech.2024.116162. Epub 2024 Jan 17.

Abstract

Human African trypanosomiasis (HAT), or sleeping sickness, is a neglected tropical disease with current treatments marred by severe side effects or delivery issues. To identify novel classes of compounds for the treatment of HAT, high throughput screening (HTS) had previously been conducted on bloodstream forms of T. b. brucei, a model organism closely related to the human pathogens T. b. gambiense and T. b. rhodesiense. This HTS had identified a number of structural classes with potent bioactivity against T. b. brucei (IC ≤ 10 μM) with selectivity over mammalian cell-lines (selectivity index of ≥10). One of the confirmed hits was an aroyl guanidine derivative. Deemed to be chemically tractable with attractive physicochemical properties, here we explore this class further to develop the SAR landscape. We also report the influence of the elucidated SAR on parasite metabolism, to gain insight into possible modes of action of this class. Of note, two sub-classes of analogues were identified that generated opposing metabolic responses involving disrupted energy metabolism. This knowledge may guide the future design of more potent inhibitors, while retaining the desirable physicochemical properties and an excellent selectivity profile of the current compound class.

摘要

人类非洲锥虫病(HAT),又称昏睡病,是一种被忽视的热带病,目前的治疗方法存在严重的副作用或给药问题。为了寻找治疗 HAT 的新型化合物,之前曾对与人类病原体 T. b. gambiense 和 T. b. rhodesiense 密切相关的模式生物 T. b. brucei 的血液体形式进行了高通量筛选(HTS)。该 HTS 已鉴定出许多具有针对 T. b. brucei 的强大生物活性的结构类别(IC≤10μM),对哺乳动物细胞系具有选择性(选择性指数≥10)。确认的命中之一是芳酰胍衍生物。由于具有有吸引力的物理化学性质,被认为具有化学可操作性,我们在此进一步探索该类化合物以开发 SAR 景观。我们还报告了阐明的 SAR 对寄生虫代谢的影响,以深入了解该类化合物的可能作用模式。值得注意的是,确定了两种类似物的子类,它们产生了涉及破坏能量代谢的相反代谢反应。这些知识可能指导未来设计更有效的抑制剂,同时保留当前化合物类别的理想物理化学性质和出色的选择性。

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