Soil properties in agricultural systems affect microbial genomic traits

Tim Goodall, Susheel Bhanu Busi, Robert I Griffiths, Briony Jones, Richard F Pywell, Andrew Richards, Marek Nowakowski, Daniel S Read

Research output: Contribution to journalArticlepeer-review

14 Downloads (Pure)

Abstract

Understanding the relationships between bacteria, their ecological and genomic traits, and their environment is important to elucidate microbial community dynamics and their roles in ecosystem functioning. Here, we examined the relationships between soil properties and bacterial traits within highly managed agricultural soil systems subjected to arable crop rotations or management as permanent grass. We assessed the bacterial communities using metabarcoding and assigned each amplicon trait scores for rRNA copy number, genome size, and guanine-cytosine (GC) content, which are classically associated with potential growth rates and specialization. We also calculated the niche breadth trait of each amplicon as a measure of social ubiquity within the examined samples. Within this soil system, we demonstrated that pH was the primary driver of bacterial traits. The weighted mean trait scores of the samples revealed that bacterial communities associated with soils at lower pH (<7) tended to have larger genomes (potential plasticity), have more rRNA (higher growth rate potential), and are more ubiquitous (have less niche specialization) than the bacterial communities from higher pH soils. Our findings highlight not only the association between pH and bacterial community composition but also the importance of pH in driving community functionality by directly influencing genomic and niche traits.

Original languageEnglish
Article numberxtaf008
JournalFEMS microbes
Volume6
Early online date24 Jun 2025
DOIs
Publication statusPublished - 7 Jul 2025

Keywords

  • agricultural systems
  • genomic traits
  • land use
  • metabarcoding
  • microbial ecology
  • social niche breadth
  • soil properties

Fingerprint

Dive into the research topics of 'Soil properties in agricultural systems affect microbial genomic traits'. Together they form a unique fingerprint.

Cite this