Giannese Francesca, Berg Maya, Van der Veken Pieter, Castagna Valeria, Tornaghi Paola, Augustyns Koen, Degano Massimo
Biocrystallography Unit, Department of Immunology, Transplantation and Infectious Diseases, Scientific Institute San Raffaele, via Olgettina 58, 20132 Milano, Italy.
Acta Crystallogr D Biol Crystallogr. 2013 Aug;69(Pt 8):1553-66. doi: 10.1107/S0907444913010792. Epub 2013 Jul 20.
Sleeping sickness is a deadly disease that primarily affects sub-Saharan Africa and is caused by protozoan parasites of the Trypanosoma genus. Trypanosomes are purine auxotrophs and their uptake pathway has long been appreciated as an attractive target for drug design. Recently, one tight-binding competitive inhibitor of the trypanosomal purine-specific nucleoside hydrolase (IAGNH) showed remarkable trypanocidal activity in a murine model of infection. Here, the enzymatic characterization of T. brucei brucei IAGNH is presented, together with its high-resolution structures in the unliganded form and in complexes with different inhibitors, including the trypanocidal compound UAMC-00363. A description of the crucial contacts that account for the high-affinity inhibition of IAGNH by iminoribitol-based compounds is provided and the molecular mechanism underlying the conformational change necessary for enzymatic catalysis is identified. It is demonstrated for the first time that metalorganic complexes can compete for binding at the active site of nucleoside hydrolase enzymes, mimicking the positively charged transition state of the enzymatic reaction. Moreover, we show that divalent metal ions can act as noncompetitive IAGNH inhibitors, stabilizing a nonproductive conformation of the catalytic loop. These results open a path for rational improvement of the potency and the selectivity of existing compounds and suggest new scaffolds that may be used as blueprints for the design of novel antitrypanosomal compounds.
昏睡病是一种主要影响撒哈拉以南非洲地区的致命疾病,由锥虫属原生动物寄生虫引起。锥虫是嘌呤营养缺陷型,其摄取途径长期以来一直被认为是药物设计的一个有吸引力的靶点。最近,一种锥虫嘌呤特异性核苷水解酶(IAGNH)的紧密结合竞争性抑制剂在小鼠感染模型中显示出显著的杀锥虫活性。本文介绍了布氏布氏锥虫IAGNH的酶学特性,以及其未结合配体形式和与不同抑制剂(包括杀锥虫化合物UAMC-00363)形成的复合物的高分辨率结构。提供了基于亚氨基核糖醇的化合物对IAGNH进行高亲和力抑制的关键接触点的描述,并确定了酶催化所需构象变化的分子机制。首次证明金属有机配合物可以在核苷水解酶的活性位点竞争结合,模拟酶促反应带正电荷的过渡态。此外,我们表明二价金属离子可以作为非竞争性IAGNH抑制剂,稳定催化环的非生产性构象。这些结果为合理提高现有化合物的效力和选择性开辟了一条途径,并提出了可作为新型抗锥虫化合物设计蓝图的新支架。