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A Novel Methodology for Bioenergetic Analysis of Plasmodium falciparum Reveals a Glucose-Regulated Metabolic Shift and Enables Mode of Action Analyses of Mitochondrial Inhibitors

机译:恶性疟原虫生物能分析的一种新方法揭示了葡萄糖调节的代谢转变并使线粒体抑制剂的作用模式得以分析。

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摘要

Given that resistance to all drugs in clinical use has arisen, discovery of new antimalarial drug targets is eagerly anticipated. The Plasmodium mitochondrion has been considered a promising drug target largely based on its significant divergence from the host organelle as well as its involvement in ATP production and pyrimidine biosynthesis. However, the functions of Plasmodium mitochondrial protein complexes and associated metabolic pathways are not fully characterized. Here, we report the development of novel and robust bioenergetic assay protocols for Plasmodium falciparum asexual parasites utilizing a Seahorse Bioscience XFe24 Extracellular Flux Analyzer. These protocols allowed us to simultaneously assess the direct effects of metabolites and inhibitors on mitochondrial respiration and glycolytic activity in real-time with the readout of oxygen consumption rate and extracellular acidification rate. Using saponin-freed parasites at the schizont stage, we found that succinate, malate, glycerol-3-phosphate, and glutamate, but not pyruvate, were able to increase the oxygen consumption rate and that glycerol-3-phosphate dehydrogenase had the largest potential as an electron donor among tested mitochondrial dehydrogenases. Furthermore, we revealed the presence of a glucose-regulated metabolic shift between oxidative phosphorylation and glycolysis. We measured proton leak and reserve capacity and found bioenergetic evidence for oxidative phosphorylation in erythrocytic stage parasites but at a level much lower than that observed in mammalian cells. Lastly, we developed an assay platform for target identification and mode of action studies of mitochondria-targeting antimalarials. This study provides new insights into the bioenergetics and metabolomics of the Plasmodium mitochondria.
机译:鉴于已经出现了对临床使用的所有药物的耐药性,人们迫切期望发现新的抗疟药物靶标。疟原虫线粒体被认为是一种有前途的药物靶标,主要是由于其与宿主细胞器的显着差异以及其参与ATP产生和嘧啶生物合成的过程。但是,疟原虫线粒体蛋白复合物的功能和相关的代谢途径尚未完全表征。在这里,我们报告了利用Seahorse Bioscience XFe24细胞外通量分析仪对恶性疟原虫无性寄生虫进行新颖而强大的生物能测定方法的开发。这些协议使我们能够同时实时评估代谢物和抑制剂对线粒体呼吸和糖酵解活性的直接影响,并读出耗氧率和细胞外酸化率。在裂殖体阶段使用无皂苷的寄生虫,我们发现琥珀酸,苹果酸,3-磷酸甘油和谷氨酸,而不是丙酮酸能够提高耗氧率,并且3-磷酸甘油脱氢酶的潜力最大。作为测试的线粒体脱氢酶中的电子供体。此外,我们发现氧化磷酸化和糖酵解之间存在葡萄糖调节的代谢转变。我们测量了质子泄漏和储备能力,并发现了在红细胞阶段寄生虫中氧化磷酸化的生物能证据,但其水平远低于在哺乳动物细胞中观察到的水平。最后,我们开发了一种针对线粒体靶向抗疟药的靶标识别和作用方式研究的测定平台。这项研究为疟原虫线粒体的生物能学和代谢组学提供了新的见解。

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