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取代的苯甲氧基-苄基胺乙酰转移酶 Eis 抑制剂的发现及其抗分枝杆菌活性。

Discovery of substituted benzyloxy-benzylamine inhibitors of acetyltransferase Eis and their anti-mycobacterial activity.

机构信息

Department of Pharmaceutical Sciences, College of Pharmacy, University of Kentucky, 789 South Limestone Street, Lexington, KY, 40536-0596, USA.

Laboratory Branch, Division of Tuberculosis Elimination, National Center for HIV/AIDS, Viral Hepatitis, STD, and TB Prevention, Centers for Disease Control and Prevention, Atlanta, GA, USA.

出版信息

Eur J Med Chem. 2022 Nov 15;242:114698. doi: 10.1016/j.ejmech.2022.114698. Epub 2022 Aug 18.

Abstract

A clinically significant mechanism of tuberculosis resistance to the aminoglycoside kanamycin (KAN) is its acetylation catalyzed by upregulated Mycobacterium tuberculosis (Mtb) acetyltransferase Eis. In search for inhibitors of Eis, we discovered an inhibitor with a substituted benzyloxy-benzylamine scaffold. A structure-activity relationship study of 38 compounds in this structural family yielded highly potent (IC ∼ 1 μM) Eis inhibitors, which did not inhibit other acetyltransferases. Crystal structures of Eis in complexes with three of the inhibitors showed that the inhibitors were bound in the aminoglycoside binding site of Eis, consistent with the competitive mode of inhibition, as established by kinetics measurements. When tested in Mtb cultures, two inhibitors (47 and 55) completely abolished resistance to KAN of the highly KAN-resistant strain Mtb mc 6230 K204, likely due to Eis inhibition as a major mechanism. Thirteen of the compounds were toxic even in the absence of KAN to Mtb and other mycobacteria, but not to non-mycobacteria or to mammalian cells. This, yet unidentified mechanism of toxicity, distinct from Eis inhibition, will merit future studies along with further development of these molecules as anti-mycobacterial agents.

摘要

结核分枝杆菌(Mycobacterium tuberculosis,Mtb)乙酰转移酶 Eis 上调导致的乙酰化作用是氨基糖苷类药物卡那霉素(kanamycin,KAN)抗结核的一个重要机制。为了寻找 Eis 的抑制剂,我们发现了一个具有取代苯甲氧基苄基胺骨架的抑制剂。在该结构家族的 38 个化合物中进行的构效关系研究得到了高度有效的(IC∼1μM)Eis 抑制剂,它们不抑制其他乙酰转移酶。Eis 与三种抑制剂复合物的晶体结构表明,抑制剂结合在 Eis 的氨基糖苷结合部位,这与动力学测量所确立的竞争性抑制模式一致。在 Mtb 培养物中进行测试时,两种抑制剂(47 和 55)完全消除了高度耐 KAN 的 Mtb mc 6230 K204 菌株对 KAN 的耐药性,这可能是由于 Eis 抑制是主要机制。在没有 KAN 的情况下,这 13 种化合物甚至对 Mtb 和其他分枝杆菌有毒,但对非分枝杆菌或哺乳动物细胞没有毒性。这种尚未确定的毒性机制与 Eis 抑制作用不同,值得进一步研究,并进一步开发这些分子作为抗分枝杆菌药物。

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