Department of Parasitology, BIOCEV, Faculty of Science, Charles University, Vestec, Czech Republic.
Department of Molecular Phylogenetics and Evolution, Faculty of Biology, Biological and Chemical Research Centre, University of Warsaw, Warsaw, Poland.
Mol Biol Evol. 2019 Oct 1;36(10):2292-2312. doi: 10.1093/molbev/msz147.
The discovery that the protist Monocercomonoides exilis completely lacks mitochondria demonstrates that these organelles are not absolutely essential to eukaryotic cells. However, the degree to which the metabolism and cellular systems of this organism have adapted to the loss of mitochondria is unknown. Here, we report an extensive analysis of the M. exilis genome to address this question. Unexpectedly, we find that M. exilis genome structure and content is similar in complexity to other eukaryotes and less "reduced" than genomes of some other protists from the Metamonada group to which it belongs. Furthermore, the predicted cytoskeletal systems, the organization of endomembrane systems, and biosynthetic pathways also display canonical eukaryotic complexity. The only apparent preadaptation that permitted the loss of mitochondria was the acquisition of the SUF system for Fe-S cluster assembly and the loss of glycine cleavage system. Changes in other systems, including in amino acid metabolism and oxidative stress response, were coincident with the loss of mitochondria but are likely adaptations to the microaerophilic and endobiotic niche rather than the mitochondrial loss per se. Apart from the lack of mitochondria and peroxisomes, we show that M. exilis is a fully elaborated eukaryotic cell that is a promising model system in which eukaryotic cell biology can be investigated in the absence of mitochondria.
原生动物 Monocercomonoides exilis 完全缺乏线粒体的发现表明,这些细胞器对真核细胞并非绝对必要。然而,该生物的代谢和细胞系统适应线粒体缺失的程度尚不清楚。在这里,我们报告了对 M. exilis 基因组的广泛分析,以解决这个问题。出乎意料的是,我们发现 M. exilis 基因组的结构和内容与其他真核生物相似,而比它所属的 Metamonada 组中的其他一些原生动物的基因组复杂程度要低。此外,预测的细胞骨架系统、内膜系统的组织和生物合成途径也显示出典型的真核生物复杂性。唯一允许失去线粒体的明显预先适应是获得用于 Fe-S 簇组装的 SUF 系统和失去甘氨酸裂解系统。其他系统的变化,包括氨基酸代谢和氧化应激反应的变化,与线粒体的丧失同时发生,但可能是对微需氧和内生环境的适应,而不是线粒体的丧失本身。除了缺乏线粒体和过氧化物酶体之外,我们还表明 M. exilis 是一个完全成熟的真核细胞,是一个很有前途的模型系统,可以在没有线粒体的情况下研究真核细胞生物学。