使用基因组尺度代谢模型验证抗疟药物靶点发现。

IF 4.5 2区 医学 Q2 MICROBIOLOGY
Supannee Taweechai, Francis Isidore Garcia Totañes, David Westhead, Clara Herrera-Arozamena, Richard Foster, Glenn A McConkey
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引用次数: 0

摘要

鉴于恶性疟原虫对抗疟药物的快速耐药性,不断需要新的治疗方法。利用综合代谢组学和基于约束的实验通量平衡数据,建立了一个基因组尺度代谢(GSM)模型,以预测恶性疟原虫作为药物靶点生长所必需的基因。我们选择了排名较高的恶性疟原虫UMP-CMP激酶(UCK)来测试其在抑制剂存在下抑制寄生虫生长的必要性和能力。使用CRISPR-Cas基因组编辑产生的DiCre重组酶系统的条件缺失突变体表现出有缺陷的无性生长和阶段特异性发育停滞。基于计算机和体外筛选,确定了对恶性疟原虫UCK具有选择性和抗寄生活性的抑制剂。这项研究首次展示了来自GSM模型的断言,该模型确定了新的、经过验证的“可药物”靶标。这些发现表明GSM模型在抗疟疾药物发现中的作用,并确定恶性疟原虫UCK是一种新的有效的疟疾药物靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Validated antimalarial drug target discovery using genome-scale metabolic modeling.

Given the rapid resistance of Plasmodium falciparum to antimalarial drugs, there is a continual need for new treatments. A genome-scale metabolic (GSM) model was developed with integrated metabolomics and constraint-based, experimental flux-balance data to predict genes essential for P. falciparum growth as drug targets. We selected the highly ranked P. falciparum UMP-CMP kinase (UCK) to test its necessity and the ability to inhibit parasite growth in the presence of inhibitors. Conditional deletion mutants using the DiCre recombinase system, generated by CRISPR-Cas genome editing, exhibited defective asexual growth and stage-specific developmental arrest. Based on in silico and in vitro screening, inhibitors were identified that are selective for P. falciparum UCK and exhibit antiparasitic activity. This study, for the first time, shows assertions from a GSM model identifying novel, validated "druggable" targets. These findings show a role for GSM models in antimalarial drug discovery and identify P. falciparum UCK as a novel, valid malaria drug target.

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来源期刊
CiteScore
10.00
自引率
8.20%
发文量
762
审稿时长
3 months
期刊介绍: Antimicrobial Agents and Chemotherapy (AAC) features interdisciplinary studies that build our understanding of the underlying mechanisms and therapeutic applications of antimicrobial and antiparasitic agents and chemotherapy.
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