Codon bias, nucleotide selection, and genome size predict in situ bacterial growth rate and transcription in rewetted soil

P Peter F. Chuckran (Department of Environmental Science, Policy, and Management, University of California) K Katerina Estera-Molina (Department of Environmental Science, Policy, and Management, University of California) A Alexa M. Nicolas (Department of Environmental Science, Policy, and Management, University of California) E Ella T. Sieradzki (Department of Environmental Science, Policy, and Management, University of California) P Paul Dijkstra (Department of Biological Sciences, Center for Ecosystem Science and Society, Northern Arizona University) M Mary K. Firestone (Department of Environmental Science, Policy, and Management, University of California) J Jennifer Pett-Ridge (Physical and Life Sciences Directorate, Lawrence Livermore National Lab) S Steven J. Blazewicz (Physical and Life Sciences Directorate, Lawrence Livermore National Laboratory)

Abstract

In soils, the first rain after a prolonged dry period represents a major pulse event impacting soil microbial community function, yet we lack a full understanding of the genomic traits associated with the microbial response to rewetting. Genomic traits such as codon usage bias and genome size have been linked to bacterial growth in soils—however, often through measurements in culture. Here, we used metagenome-assembled genomes (MAGs) with 18 O-water stable isotope probing and metatranscriptomics to track genomic traits associated with growth and transcription of soil microorganisms over one week following rewetting of a grassland soil. We found that codon bias in ribosomal protein genes was the strongest predictor of growth rate. We also found higher growth rates in bacteria with smaller genomes, suggesting that reduced genome size enables a faster response to pulses in soil bacteria. Faster transcriptional upregulation of ribosomal protein genes was associated with high codon bias and increased nucleotide skew. We found that several of these relationships existed within phyla, indicating that these associations between genomic traits and activity could be generalized characteristics of soil bacteria. Finally, we used publicly available metagenomes to assess the distribution of codon bias across a pH gradient and found that microbial communities in higher pH soils—which are often more water limited and pulse driven—have higher codon usage bias in their ribosomal protein genes. Together, these results provide evidence that genomic characteristics affect soil microbial activity during rewetting and pose a potential fitness advantage for soil bacteria where water and nutrient availability are episodic.

Article Details

Volume / Issue Vol. 122, Issue 3
Published January 21, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

P

Peter F. Chuckran

Department of Environmental Science, Policy, and Management, University of California

K

Katerina Estera-Molina

Department of Environmental Science, Policy, and Management, University of California

A

Alexa M. Nicolas

Department of Environmental Science, Policy, and Management, University of California

E

Ella T. Sieradzki

Department of Environmental Science, Policy, and Management, University of California

P

Paul Dijkstra

Department of Biological Sciences, Center for Ecosystem Science and Society, Northern Arizona University

M

Mary K. Firestone

Department of Environmental Science, Policy, and Management, University of California

J

Jennifer Pett-Ridge

Physical and Life Sciences Directorate, Lawrence Livermore National Lab

S

Steven J. Blazewicz

Physical and Life Sciences Directorate, Lawrence Livermore National Laboratory