Department of Organismal Biology, Program in Systematic Biology, Uppsala University, Uppsala, Sweden.
Microbiology Research Group, Department of Biology, Lund University, Lund, Sweden.
Genome Biol Evol. 2023 Mar 3;15(3). doi: 10.1093/gbe/evad022.
Ascetosporea are endoparasites of marine invertebrates that include economically important pathogens of aquaculture species. Owing to their often-minuscule cell sizes, strict intracellular lifestyle, lack of cultured representatives and minimal availability of molecular data, these unicellular parasites remain poorly studied. Here, we sequenced and assembled the genome and transcriptome of Paramikrocytos canceri, an endoparasite isolated from the European edible crab Cancer pagurus. Using bioinformatic predictions, we show that P. canceri likely possesses a mitochondrion-related organelle (MRO) with highly reduced metabolism, resembling the mitosomes of other parasites but with key differences. Like other mitosomes, this MRO is predicted to have reduced metabolic capacity and lack an organellar genome and function in iron-sulfur cluster (ISC) pathway-mediated Fe-S cluster biosynthesis. However, the MRO in P. canceri is uniquely predicted to produce ATP via a partial glycolytic pathway and synthesize phospholipids de novo through the CDP-DAG pathway. Heterologous gene expression confirmed that proteins from the ISC and CDP-DAG pathways retain mitochondrial targeting sequences that are recognized by yeast mitochondria. This represents a unique combination of metabolic pathways in an MRO, including the first reported case of a mitosome-like organelle able to synthesize phospholipids de novo. Some of these phospholipids, such as phosphatidylserine, are vital in other protist endoparasites that invade their host through apoptotic mimicry.
类顶复门寄生虫是海洋无脊椎动物的内寄生生物,其中包括水产养殖物种的重要经济病原体。由于这些寄生虫的细胞尺寸通常非常小、严格的细胞内生活方式、缺乏培养代表以及分子数据的可用性极低,因此它们的研究仍不充分。在这里,我们对从欧洲食用蟹 Cancer pagurus 中分离出的内寄生生物 Paramikrocytos canceri 的基因组和转录组进行了测序和组装。通过生物信息学预测,我们表明 P. canceri 可能拥有一个具有高度简化代谢功能的线粒体相关细胞器 (MRO),与其他寄生虫的线粒体类似,但存在关键差异。与其他线粒体类似,这个 MRO 预计具有降低的代谢能力,缺乏细胞器基因组,并在铁硫簇 (ISC) 途径介导的 Fe-S 簇生物合成中发挥作用。然而,P. canceri 中的 MRO 独特地预测通过部分糖酵解途径产生 ATP,并通过 CDP-DAG 途径从头合成磷脂。异源基因表达证实,ISC 和 CDP-DAG 途径的蛋白质保留了被酵母线粒体识别的线粒体靶向序列。这代表了 MRO 中代谢途径的独特组合,包括首例报道的能够从头合成磷脂的类线粒体样细胞器。这些磷脂中的一些,如磷脂酰丝氨酸,在其他通过凋亡模拟入侵宿主的原生动物内寄生生物中是至关重要的。