Noncanonical genetic markers resolve the pre-GOE emergence of aerobic bacteria in Earth’s history

T Tianhua Liao (Simon F. S. Li Marine Science Laboratory, School of Life Sciences and State Key Laboratory of Agrobiotechnology, The Chinese University of Hong Kong) S Shanshan Chen S Sishuo Wang (Department of Microbiology, Faculty of Medicine, The Chinese University of Hong Kong) Y Yongjie Huang S Stephen Kwok Wing Tsui (School of Biomedical Sciences, Faculty of Medicine, The Chinese University of Hong Kong) E Eva E. Stüeken (School of Earth and Environmental Sciences, University of St. Andrews) Q Qin Cao (School of Biomedical Sciences, Faculty of Medicine, The Chinese University of Hong Kong) H Haiwei Luo (Simon F. S. Li Marine Science Laboratory, School of Life Sciences and State Key Laboratory of Agrobiotechnology, The Chinese University of Hong Kong)

Abstract

The transition from anaerobic to aerobic life was a pivotal adaptation in Earth’s history, yet the timing and genomic drivers remain poorly resolved. Traditional approaches relying on oxygen-utilizing genes need improvement for obligate anaerobes and fragmentary environmental genomes, where gene absence may reflect poor assembly rather than phenotype. We developed a machine learning model (GBDT40-LR) to predict microbial oxygen requirements using 40 broadly conserved genes, 35 without direct oxygen roles. This approach overcomes incompleteness biases in environmental genomes. Applied to 80,787 bacterial genomes [including metagenome-derived assemblies (MAGs)], the model classified 42,014 aerobes and 38,775 anaerobes, enabling large-scale ancestral reconstruction. Molecular clock dating indicates an emergence of aerobic bacterium prior to the Great Oxidation Event (GOE, 2.5 to 2.3 Ga), likely around ~2.7 Ga. Aerobic lineages subsequently diversified during the GOE and Neoproterozoic Oxygenation Event (NOE, 0.8 to 0.55 Ga), with persistent anaerobe diversity across Earth’s oxygenation. This establishes that aerobic bacteria originated planetary oxygenation, potentially by 200 to 400 My, providing insights into phenotypic evolution and prolonged anaerobe–aerobe coexistence.

Article Details

Volume / Issue Vol. 123, Issue 4
Published January 27, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

T

Tianhua Liao

Simon F. S. Li Marine Science Laboratory, School of Life Sciences and State Key Laboratory of Agrobiotechnology, The Chinese University of Hong Kong

S

Shanshan Chen

S

Sishuo Wang

Department of Microbiology, Faculty of Medicine, The Chinese University of Hong Kong

Y

Yongjie Huang

S

Stephen Kwok Wing Tsui

School of Biomedical Sciences, Faculty of Medicine, The Chinese University of Hong Kong

E

Eva E. Stüeken

School of Earth and Environmental Sciences, University of St. Andrews

Q

Qin Cao

School of Biomedical Sciences, Faculty of Medicine, The Chinese University of Hong Kong

H

Haiwei Luo

Simon F. S. Li Marine Science Laboratory, School of Life Sciences and State Key Laboratory of Agrobiotechnology, The Chinese University of Hong Kong