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破坏刚地弓形虫质体铁硫簇生物发生途径会产生多效性影响,不可逆转地影响寄生虫活力。

Disrupting the plastidic iron-sulfur cluster biogenesis pathway in Toxoplasma gondii has pleiotropic effects irreversibly impacting parasite viability.

机构信息

LPHI, University of Montpellier, CNRS, UMR5235, Montpellier, France.

ApicoLipid Team, Centre National de la Recherche Scientifique, Institute for Advanced Biosciences, Institut National de la Santé et de la Recherche Médicale, UMR5309, U1209, Université Grenoble Alpes, Grenoble, France.

出版信息

J Biol Chem. 2022 Aug;298(8):102243. doi: 10.1016/j.jbc.2022.102243. Epub 2022 Jul 8.

Abstract

Like many other apicomplexan parasites, Toxoplasma gondii contains a plastid harboring key metabolic pathways, including the sulfur utilization factor (SUF) pathway that is involved in the biosynthesis of iron-sulfur clusters. These cofactors are crucial for a variety of proteins involved in important metabolic reactions, potentially including plastidic pathways for the synthesis of isoprenoid and fatty acids. It was shown previously that impairing the NFS2 cysteine desulfurase, involved in the first step of the SUF pathway, leads to an irreversible killing of intracellular parasites. However, the metabolic impact of disrupting the pathway remained unexplored. Here, we generated another mutant of this pathway, deficient in the SUFC ATPase, and investigated in details the phenotypic consequences of TgNFS2 and TgSUFC depletion on the parasites. Our analysis confirms that Toxoplasma SUF mutants are severely and irreversibly impacted in division and membrane homeostasis, and suggests a defect in apicoplast-generated fatty acids. However, we show that increased scavenging from the host or supplementation with exogenous fatty acids do not fully restore parasite growth, suggesting that this is not the primary cause for the demise of the parasites and that other important cellular functions were affected. For instance, we also show that the SUF pathway is key for generating the isoprenoid-derived precursors necessary for the proper targeting of GPI-anchored proteins and for parasite motility. Thus, we conclude plastid-generated iron-sulfur clusters support the functions of proteins involved in several vital downstream cellular pathways, which implies the SUF machinery may be explored for new potential anti-Toxoplasma targets.

摘要

像许多其他的顶复门寄生虫一样,刚地弓形虫含有一个质体,其中包含关键的代谢途径,包括参与铁硫簇生物合成的硫利用因子(SUF)途径。这些辅助因子对于涉及重要代谢反应的多种蛋白质至关重要,可能包括质体途径合成异戊烯基和脂肪酸。先前已经表明,破坏参与 SUF 途径第一步的 NFS2 半胱氨酸脱硫酶会导致细胞内寄生虫的不可逆杀伤。然而,破坏该途径的代谢影响仍未得到探索。在这里,我们生成了该途径的另一个突变体,SUFC ATP 酶缺陷,详细研究了 TgNFS2 和 TgSUFC 耗竭对寄生虫的表型后果。我们的分析证实,刚地弓形虫 SUF 突变体在分裂和膜动态平衡方面受到严重和不可逆的影响,并表明质体产生的脂肪酸存在缺陷。然而,我们表明,从宿主中增加清除或补充外源性脂肪酸并不能完全恢复寄生虫的生长,这表明这不是寄生虫死亡的主要原因,并且其他重要的细胞功能受到了影响。例如,我们还表明,SUF 途径是生成异戊烯基衍生前体所必需的,这些前体对于正确靶向 GPI-锚定蛋白和寄生虫运动至关重要。因此,我们得出结论,质体产生的铁硫簇支持涉及几个重要下游细胞途径的蛋白质的功能,这意味着 SUF 机制可能被探索用于新的潜在抗弓形虫靶标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe1b/9386495/e61550f016ba/gr1.jpg

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