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蝗虫微孢子虫(类微粒子虫属)孢子中替代呼吸链的免疫定位:线粒体在微孢子虫能量代谢中保留其作用。

Immunolocalization of an alternative respiratory chain in Antonospora (Paranosema) locustae spores: mitosomes retain their role in microsporidial energy metabolism.

作者信息

Dolgikh Viacheslav V, Senderskiy Igor V, Pavlova Olga A, Naumov Anton M, Beznoussenko Galina V

机构信息

All-Russian Institute for Plant Protection, Petersburg-Pushkin, Russia.

出版信息

Eukaryot Cell. 2011 Apr;10(4):588-93. doi: 10.1128/EC.00283-10. Epub 2011 Feb 4.

Abstract

Microsporidia are a group of fungus-related intracellular parasites with severely reduced metabolic machinery. They lack canonical mitochondria, a Krebs cycle, and a respiratory chain but possess genes encoding glycolysis enzymes, a glycerol phosphate shuttle, and ATP/ADP carriers to import host ATP. The recent finding of alternative oxidase genes in two clades suggests that microsporidial mitosomes may retain an alternative respiratory pathway. We expressed the fragments of mitochondrial chaperone Hsp70 (mitHsp70), mitochondrial glycerol-3-phosphate dehydrogenase (mitG3PDH), and alternative oxidase (AOX) from the microsporidium Antonospora (Paranosema) locustae in Escherichia coli. Immunoblotting with antibodies against recombinant polypeptides demonstrated specific accumulation of both metabolic enzymes in A. locustae spores. At the same time comparable amounts of mitochondrial Hsp70 were found in spores and in stages of intracellular development as well. Immunoelectron microscopy of ultrathin cryosections of spores confirmed mitosomal localization of the studied proteins. Small amounts of enzymes of an alternative respiratory chain in merogonial and early sporogonial stages, alongside their accumulation in mature spores, suggest conspicuous changes in components and functions of mitosomes during the life cycle of microsporidia and the important role of these organelles in parasite energy metabolism, at least at the final stages of sporogenesis.

摘要

微孢子虫是一类与真菌相关的细胞内寄生虫,其代谢机制严重退化。它们缺乏典型的线粒体、三羧酸循环和呼吸链,但拥有编码糖酵解酶、磷酸甘油穿梭系统以及用于导入宿主ATP的ATP/ADP载体的基因。最近在两个进化枝中发现了交替氧化酶基因,这表明微孢子虫的线粒体可能保留了一条交替呼吸途径。我们在大肠杆菌中表达了来自蝗虫微孢子虫(类微粒子虫属)的线粒体伴侣蛋白Hsp70(mitHsp70)、线粒体甘油-3-磷酸脱氢酶(mitG3PDH)和交替氧化酶(AOX)的片段。用针对重组多肽的抗体进行免疫印迹分析表明,这两种代谢酶在蝗虫微孢子虫孢子中特异性积累。同时,在孢子以及细胞内发育阶段也发现了相当数量的线粒体Hsp70。对孢子超薄冷冻切片进行免疫电子显微镜观察证实了所研究蛋白质的线粒体定位。在裂殖体和早期孢子生殖阶段存在少量交替呼吸链的酶,同时这些酶在成熟孢子中积累,这表明在微孢子虫的生命周期中,线粒体的组成和功能发生了显著变化,并且这些细胞器在寄生虫能量代谢中起着重要作用,至少在孢子形成的最后阶段是如此。

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