Comparative Genomics of Ecologically Differentiated Nitrososphaera-Related Ammonia-Oxidizing Archaea

Soil acidification strongly influences the ecology of terrestrial ammonia-oxidizing archaea (AOA). Within this group, the Nitrososphaera-related alpha (NS-α) and delta (NS-δ) lineages exhibit pronounced pH-associated ecological differentiation. In the preceding microcosm experiment, NS-α populations showed greater persistence than NS-δ during ammonium-driven soil acidification, yet the genomic basis underlying this ecological differentiation remains poorly understood. In this study, metagenomic sequencing of one near-neutral baseline microcosm (pH 7.35) and one acidified microcosm (pH 4.73) was used to reconstruct 12 Nitrososphaera-affiliated metagenome-assembled genomes (MAGs), including 2 NS-α and 10 NS-δ MAGs. These genomes were compared using genome-based phylogenetic analysis, amoA phylogeny, average amino acid identity (AAI), average nucleotide identity (ANI), and KEGG functional annotation to investigate lineage-level genomic differentiation and candidate functional genomic features. Genome-based phylogenetic and whole-genome similarity analyses supported clear differentiation between NS-α and NS-δ, while also revealing substantial genomic heterogeneity within NS-δ. Functions related to nitrogen acquisition and regulation, respiratory energy metabolism, autotrophic carbon fixation, and oxidative-stress defense were broadly distributed across both lineages and showed no clear NS-α-specific pattern. In contrast, Mre11, HerA, NurA, and RadA were detected in both reconstructed NS-α MAGs. Comparison with representative NS-α reference genomes, including the neutrophilic Nitrososphaera viennensis EN76, further showed that this DNA-repair-related gene repertoire is not restricted to acidic environments and is more consistent with a broader NS-α-associated genomic feature. Na+/H+ antiporters and Trk/Ktr-type K+ transport systems were not detected within either reconstructed NS-α MAG, although MAG-level non-detection was not interpreted as definitive lineage-level absence. Overall, the results identify genomic differences between NS-α and NS-δ but do not establish a functional advantage under acidification. The potential physiological significance of the DNA-repair-related pattern therefore remains to be experimentally tested.

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Journal
Microorganisms
Published
2026-10-04
DOI
https://doi.org/10.3390/microorganisms14102250
Primary Topic
Microbial Community Ecology and Physiology
Type
article
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article

Comparative Genomics of Ecologically Differentiated Nitrososphaera-Related Ammonia-Oxidizing Archaea

Yuxiang Song, Zhongjun Jia
Microorganisms
Microbial Community Ecology and Physiology
article

Comparative Genomics of Ecologically Differentiated Nitrososphaera-Related Ammonia-Oxidizing Archaea

Yuxiang Song, Zhongjun Jia
article en

Abstract

Soil acidification strongly influences the ecology of terrestrial ammonia-oxidizing archaea (AOA). Within this group, the Nitrososphaera-related alpha (NS-α) and delta (NS-δ) lineages exhibit pronounced pH-associated ecological differentiation. In the preceding microcosm experiment, NS-α populations showed greater persistence than NS-δ during ammonium-driven soil acidification, yet the genomic basis underlying this ecological differentiation remains poorly understood. In this study, metagenomic sequencing of one near-neutral baseline microcosm (pH 7.35) and one acidified microcosm (pH 4.73) was used to reconstruct 12 Nitrososphaera-affiliated metagenome-assembled genomes (MAGs), including 2 NS-α and 10 NS-δ MAGs. These genomes were compared using genome-based phylogenetic analysis, amoA phylogeny, average amino acid identity (AAI), average nucleotide identity (ANI), and KEGG functional annotation to investigate lineage-level genomic differentiation and candidate functional genomic features. Genome-based phylogenetic and whole-genome similarity analyses supported clear differentiation between NS-α and NS-δ, while also revealing substantial genomic heterogeneity within NS-δ. Functions related to nitrogen acquisition and regulation, respiratory energy metabolism, autotrophic carbon fixation, and oxidative-stress defense were broadly distributed across both lineages and showed no clear NS-α-specific pattern. In contrast, Mre11, HerA, NurA, and RadA were detected in both reconstructed NS-α MAGs. Comparison with representative NS-α reference genomes, including the neutrophilic Nitrososphaera viennensis EN76, further showed that this DNA-repair-related gene repertoire is not restricted to acidic environments and is more consistent with a broader NS-α-associated genomic feature. Na+/H+ antiporters and Trk/Ktr-type K+ transport systems were not detected within either reconstructed NS-α MAG, although MAG-level non-detection was not interpreted as definitive lineage-level absence. Overall, the results identify genomic differences between NS-α and NS-δ but do not establish a functional advantage under acidification. The potential physiological significance of the DNA-repair-related pattern therefore remains to be experimentally tested.

MicroorganismsVol. 14(10)
Chinese Academy of Sciences (CN), Northeast Institute of Geography and Agroecology (CN), University of Chinese Academy of Sciences (CN), Institute of Soil Science (CN), State Key Laboratory of Soil and Sustainable Agriculture
Openalex Percentile: Top 14%
Microbial Community Ecology and Physiology
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