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Genetic Investigation of Tricarboxylic Acid Metabolism during the Plasmodium falciparum Life Cycle

机译:恶性疟原虫生命周期中三羧酸代谢的遗传研究

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New antimalarial drugs are urgently needed to control drug-resistant forms of the malaria parasite Plasmodium falciparum. Mitochondrial electron transport is the target of both existing and new antimalarials. Herein, we describe 11 genetic knockout (KO) lines that delete six of the eight mitochondrial tricarboxylic acid (TCA) cycle enzymes. Although all TCA KOs grew normally in asexual blood stages, these metabolic deficiencies halted life-cycle progression in later stages. Specifically, aconitase KO parasites arrested as late gametocytes, whereas @a-ketoglutarate-dehydrogenase-deficient parasites failed to develop oocysts in the mosquitoes. Mass spectrometry analysis of ^1^3C-isotope-labeled TCA mutant parasites showed that P. falciparum has significant flexibility in TCA metabolism. This flexibility manifested itself through changes in pathway fluxes and through altered exchange of substrates between cytosolic and mitochondrial pools. Our findings suggest that mitochondrial metabolic plasticity is essential for parasite development.
机译:迫切需要新的抗疟药来控制疟原虫恶性疟原虫的耐药形式。线粒体电子传递是现有抗疟药和新型抗疟药的目标。在这里,我们描述了11条基因敲除(KO)系,它们删除了八个线粒体三羧酸(TCA)循环酶中的六个。尽管所有TCA KOs在无性血液阶段均正常生长,但这些代谢缺陷阻止了生命后期阶段的生命周期进程。具体而言,乌头酸酶KO寄生虫被捕杀为晚期配子细胞,而α-酮戊二酸-脱氢酶缺陷的寄生虫未能在蚊子中形成卵囊。 ^ 1 ^ 3C同位素标记的TCA突变寄生虫的质谱分析表明,恶性疟原虫在TCA代谢中具有显着的灵活性。这种灵活性通过途径通量的变化以及胞质和线粒体池之间底物交换的改变而体现出来​​。我们的研究结果表明线粒体代谢可塑性对于寄生虫发育至关重要。

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