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Targeting pathogen metabolism without collateral damage to the host

机译:针对病原体代谢而没有对主机造成的抵押品损坏

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The development of drugs that can inactivate disease-causing cells (e.g. cancer cells or parasites) without causing collateral damage to healthy or to host cells is complicated by the fact that many proteins are very similar between organisms. Nevertheless, due to subtle, quantitative differences between the biochemical reaction networks of target cell and host, a drug can limit the flux of the same essential process in one organism more than in another. We identified precise criteria for this ‘network-based’ drug selectivity, which can serve as an alternative or additive to structural differences. We combined computational and experimental approaches to compare energy metabolism in the causative agent of sleeping sickness, Trypanosoma brucei, with that of human erythrocytes, and identified glucose transport and glyceraldehyde-3-phosphate dehydrogenase as the most selective antiparasitic targets. Computational predictions were validated experimentally in a novel parasite-erythrocytes co-culture system. Glucose-transport inhibitors killed trypanosomes without killing erythrocytes, neurons or liver cells.
机译:在没有引起健康或宿主细胞对健康或宿主细胞的情况下,可以使疾病导致细胞(例如癌细胞或寄生虫)的发育是复杂的许多蛋白质之间的生物体。然而,由于靶细胞和宿主的生物化学反应网络之间的微妙,量化差异,药物可以比另一个生物体在一个生物体中限制相同必需过程的助焊剂。我们确定了这种“基于网络的”药物选择性的精确标准,其可以作为结构差异的替代或添加剂。我们组合计算和实验方法将能量代谢与人红细胞,葡萄糖转运和甘油醛-3-磷酸脱氢酶鉴定为最有选择的抗贫血症患者的患病疾病的疾病,葡萄球菌瘤Brucei的致病剂中的能量代谢。在新的寄生虫 - 红细胞共培养系统中实验验证计算预测。葡萄糖转运抑制剂在不杀死红细胞,神经元或肝细胞的情况下丧生锥虫。

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