Structural insights into the novel inhibition mechanism of Trypanosoma cruzi spermidine synthase.

Yasushi Amano, Ichiji Namatame, Yukihiro Tateishi, Kazuya Honboh, Eiki Tanabe, Tatsuya Niimi, Hitoshi Sakashita
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引用次数: 22

Abstract

Trypanosoma cruzi causes Chagas disease, a severe disease affecting 8-10 million people in Latin America. While nifurtimox and benznidazole are used to treat this disease, their efficacy is limited and adverse effects are observed. New therapeutic targets and novel drugs are therefore urgently required. Enzymes in the polyamine-trypanothione pathway are promising targets for the treatment of Chagas disease. Spermidine synthase is a key enzyme in this pathway that catalyzes the transfer of an aminopropyl group from decarboxylated S-adenosylmethionine (dcSAM) to putrescine. Fragment-based drug discovery was therefore conducted to identify novel, potent inhibitors of spermidine synthase from T. cruzi (TcSpdSyn). Here, crystal structures of TcSpdSyn in complex with dcSAM, trans-4-methylcyclohexylamine and hit compounds from fragment screening are reported. The structure of dcSAM complexed with TcSpdSyn indicates that dcSAM stabilizes the conformation of the `gatekeeping' loop to form the putrescine-binding pocket. The structures of fragments bound to TcSpdSyn revealed two fragment-binding sites: the putrescine-binding pocket and the dimer interface. The putrescine-binding pocket was extended by an induced-fit mechanism. The crystal structures indicate that the conformation of the dimer interface is required to stabilize the gatekeeping loop and that fragments binding to this interface inhibit TcSpdSyn by disrupting its conformation. These results suggest that utilizing the dynamic structural changes in TcSpdSyn that occur upon inhibitor binding will facilitate the development of more selective and potent inhibitors.

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克氏锥虫亚精胺合酶抑制机制的结构研究。
克氏锥虫引起恰加斯病,这是一种影响拉丁美洲800万至1000万人的严重疾病。虽然使用硝呋替莫和苯并硝唑治疗此病,但其疗效有限,并观察到不良反应。因此,迫切需要新的治疗靶点和新药。多胺-锥虫硫酮途径中的酶是治疗恰加斯病的有希望的靶点。亚精胺合成酶是该途径中催化氨基丙基从脱羧s -腺苷蛋氨酸(dcSAM)转移到腐胺的关键酶。因此,基于片段的药物发现是为了从克氏T. (TcSpdSyn)中鉴定出新的、有效的亚精胺合成酶抑制剂。本文报道了TcSpdSyn与dcSAM、反式-4-甲基环己胺以及片段筛选的hit化合物配合物的晶体结构。dcSAM与TcSpdSyn复合物的结构表明,dcSAM稳定了“守门”环的构象,形成腐胺结合口袋。结合TcSpdSyn的片段结构显示了两个片段结合位点:腐胺结合口袋和二聚体界面。通过诱导配合机制延长腐胺结合袋。晶体结构表明,稳定守门环需要二聚体界面的构象,并且结合在该界面上的片段通过破坏其构象来抑制TcSpdSyn。这些结果表明,利用TcSpdSyn在抑制剂结合时发生的动态结构变化将有助于开发更具选择性和强效的抑制剂。
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