Apicoplast-derived isoprenoids are essential for biosynthesis of GPI protein anchors, and consequently for egress and invasion in Plasmodium falciparum.

IF 5.5 1区 医学 Q1 MICROBIOLOGY PLoS Pathogens Pub Date : 2024-09-06 DOI:10.1371/journal.ppat.1012484
Michaela S Bulloch, Long K Huynh, Kit Kennedy, Julie E Ralton, Malcolm J McConville, Stuart A Ralph
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Abstract

Glycophosphatidylinositol (GPI) anchors are the predominant glycoconjugate in Plasmodium parasites, enabling modified proteins to associate with biological membranes. GPI biosynthesis commences with donation of a mannose residue held by dolichol-phosphate at the endoplasmic reticulum membrane. In Plasmodium dolichols are derived from isoprenoid precursors synthesised in the Plasmodium apicoplast, a relict plastid organelle of prokaryotic origin. We found that treatment of Plasmodium parasites with apicoplast inhibitors decreases the synthesis of isoprenoid and GPI intermediates resulting in GPI-anchored proteins becoming untethered from their normal membrane association. Even when other isoprenoids were chemically rescued, GPI depletion led to an arrest in schizont stage parasites, which had defects in segmentation and egress. In those daughter parasites (merozoites) that did form, proteins that would normally be GPI-anchored were mislocalised, and when these merozoites were artificially released they were able to attach to but not invade new red blood cells. Our data provides further evidence for the importance of GPI biosynthesis during the asexual cycle of P. falciparum, and indicates that GPI biosynthesis, and by extension egress and invasion, is dependent on isoprenoids synthesised in the apicoplast.

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源于表皮细胞的异肾上腺素对 GPI 蛋白锚的生物合成至关重要,因此对恶性疟原虫的逃逸和入侵也至关重要。
糖磷脂酰肌醇(GPI)锚是疟原虫体内最主要的糖类共轭物,可使修饰过的蛋白质与生物膜结合。GPI 的生物合成始于内质网膜上由多羟基磷酸盐保持的甘露糖残基的捐赠。在疟原虫体内,多聚糖来自疟原虫顶质体中合成的异肾上腺素前体,顶质体是原核生物的一种残余质体细胞器。我们发现,用 apicoplast 抑制剂处理疟原虫会减少异肾上腺素和 GPI 中间体的合成,导致 GPI-anchored 蛋白质脱离正常的膜结合。即使用化学方法挽救了其他异戊烯类物质,GPI 的耗竭也会导致分裂期寄生虫的停滞,这些寄生虫在分裂和出体方面存在缺陷。在那些确实形成的子寄生虫(子虫)中,正常情况下GPI锚定的蛋白质被错误定位,当这些子虫被人为释放时,它们能够附着在新的红细胞上,但不能侵入新的红细胞。我们的数据为恶性疟原虫无性生殖周期中 GPI 生物合成的重要性提供了进一步的证据,并表明 GPI 的生物合成,以及由此延伸的排出和入侵,都依赖于在顶质中合成的异肾上腺素。
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PLoS Pathogens
PLoS Pathogens MICROBIOLOGY-PARASITOLOGY
自引率
3.00%
发文量
598
期刊介绍: Bacteria, fungi, parasites, prions and viruses cause a plethora of diseases that have important medical, agricultural, and economic consequences. Moreover, the study of microbes continues to provide novel insights into such fundamental processes as the molecular basis of cellular and organismal function.
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