Department of Molecular Biology and Biotechnology, Faculty of Biology and Geology, Babeş-Bolyai University, Cluj-Napoca, Romania.
Department of Aquatic Microbial Ecology, Institute of Hydrobiology, Biology Centre of the Academy of Sciences of the Czech Republic, České Budějovice, Czech Republic.
Nat Microbiol. 2019 Jul;4(7):1129-1137. doi: 10.1038/s41564-019-0404-y. Epub 2019 Apr 1.
Recent advances in phylogenomic analyses and increased genomic sampling of uncultured prokaryotic lineages have brought compelling evidence in support of the emergence of eukaryotes from within the archaeal domain of life (eocyte hypothesis). The discovery of Asgardarchaeota and its supposed position at the base of the eukaryotic tree of life provided cues about the long-awaited identity of the eocytic lineage from which the nucleated cells (Eukaryota) emerged. While it is apparent that Asgardarchaeota encode a plethora of eukaryotic-specific proteins (the highest number identified yet in prokaryotes), the lack of genomic information and metabolic characterization has precluded inferences about their lifestyles and the metabolic landscape that favoured the emergence of the protoeukaryote ancestor. Here, we use advanced phylogenetic analyses for inferring the deep ancestry of eukaryotes, and genome-scale metabolic reconstructions for shedding light on the metabolic milieu of Asgardarchaeota. In doing so, we: (1) show that Heimdallarchaeia (the closest eocytic lineage to eukaryotes to date) are likely to have a microoxic niche, based on their genomic potential, with aerobic metabolic pathways that are unique among Archaea (that is, the kynurenine pathway); (2) provide evidence of mixotrophy within Asgardarchaeota; and (3) describe a previously unknown family of rhodopsins encoded within the recovered genomes.
最近在系统基因组学分析方面的进展以及对未培养的原核生物谱系的基因组采样增加,为真核生物从古菌域生命(eocyte 假说)中出现提供了令人信服的证据。Asgardarchaeota 的发现及其在真核生物树的底部的假定位置,提供了关于期待已久的 eocytic 谱系的身份的线索,核细胞(Eukaryota)从中出现。虽然很明显,Asgardarchaeota 编码了大量的真核生物特异性蛋白(迄今为止在原核生物中鉴定出的最高数量),但缺乏基因组信息和代谢特征,限制了对它们的生活方式和代谢景观的推断,这些代谢景观有利于原始真核生物祖先的出现。在这里,我们使用先进的系统发育分析来推断真核生物的深层祖先,并进行基因组规模的代谢重建,以揭示 Asgardarchaeota 的代谢环境。通过这样做,我们:(1) 表明 Heimdallarchaeia(迄今为止最接近真核生物的 eocytic 谱系)可能具有微氧生境,这是基于它们的基因组潜力,具有独特的需氧代谢途径,这在古菌中是独一无二的(即犬尿氨酸途径);(2) 提供了 Asgardarchaeota 中混合营养的证据;(3) 描述了在回收基因组中编码的以前未知的视紫红质家族。