门
太古宙
生物
生命之树(生物学)
元古代
化石记录
地质记录
系统发育树
进化生物学
古生物学
系统发育学
生态学
分子钟
大气氧
平行进化
细菌
氧气
遗传学
基因
化学
有机化学
构造学
作者
Adrián Davín,Ben J. Woodcroft,Rochelle M. Soo,Benoît Morel,Ranjani Murali,Dominik Schrempf,James Clark,Sandra Álvarez-Carretero,Bastien Boussau,Edmund R. R. Moody,Lénárd L. Szánthó,Étienne Richy,Davide Pisani,James Hemp,Woodward W. Fischer,Philip C. J. Donoghue,Anja Spang,Philip Hugenholtz,Tom A. Williams,Gergely J. Szöllősi
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2025-04-04
卷期号:388 (6742)
标识
DOI:10.1126/science.adp1853
摘要
Microbial life has dominated Earth’s history but left a sparse fossil record, greatly hindering our understanding of evolution in deep time. However, bacterial metabolism has left signatures in the geochemical record, most conspicuously the Great Oxidation Event (GOE). We combine machine learning and phylogenetic reconciliation to infer ancestral bacterial transitions to aerobic lifestyles, linking them to the GOE to calibrate the bacterial time tree. Extant bacterial phyla trace their diversity to the Archaean and Proterozoic, and bacterial families prior to the Phanerozoic. We infer that most bacterial phyla were ancestrally anaerobic and adopted aerobic lifestyles after the GOE. However, in the cyanobacterial ancestor, aerobic metabolism likely predated the GOE, which may have facilitated the evolution of oxygenic photosynthesis.
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