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Eukaryogenesis and oxygen in Earth history

古细菌 使负有责任或义务 缺氧水域 大气氧 生物 大气(单位) 天体生物学 深海 生态学 生物圈 土(古典元素) 氧气 进化生物学 古生物学 化学 地理 细菌 气象学 有机化学 物理 渔业 数学物理
作者
Daniel B. Mills,Richard A. Boyle,Stuart J. Daines,Erik A. Sperling,Davide Pisani,Philip C. J. Donoghue,Timothy M. Lenton
出处
期刊:Nature Ecology and Evolution [Springer Nature]
卷期号:6 (5): 520-532 被引量:100
标识
DOI:10.1038/s41559-022-01733-y
摘要

The endosymbiotic origin of mitochondria during eukaryogenesis has long been viewed as an adaptive response to the oxygenation of Earth’s surface environment, presuming a fundamentally aerobic lifestyle for the free-living bacterial ancestors of mitochondria. This oxygen-centric view has been robustly challenged by recent advances in the Earth and life sciences. While the permanent oxygenation of the atmosphere above trace concentrations is now thought to have occurred 2.2 billion years ago, large parts of the deep ocean remained anoxic until less than 0.5 billion years ago. Neither fossils nor molecular clocks correlate the origin of mitochondria, or eukaryogenesis more broadly, to either of these planetary redox transitions. Instead, mitochondria-bearing eukaryotes are consistently dated to between these two oxygenation events, during an interval of pervasive deep-sea anoxia and variable surface-water oxygenation. The discovery and cultivation of the Asgard archaea has reinforced metabolic evidence that eukaryogenesis was initially mediated by syntrophic H2 exchange between an archaeal host and an α-proteobacterial symbiont living under anoxia. Together, these results temporally, spatially and metabolically decouple the earliest stages of eukaryogenesis from the oxygen content of the surface ocean and atmosphere. Rather than reflecting the ancestral metabolic state, obligate aerobiosis in eukaryotes is most probably derived, having only become globally widespread over the past 1 billion years as atmospheric oxygen approached modern levels. For decades, the origin of mitochondria during eukaryogenesis has been viewed as a response to Earth’s oxygenation, but this has been challenged by more recent research. Here, the authors review recent literature, concluding that eukaryogenesis and the rise of oxygen were decoupled, and obligate aerosis in eukaryotes has only become widespread in the past 1 billion years
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