Agriculture alters protein evolution of nitrogen cycling genes in soil bacteria at a global scale
Ghaly, T. M.; Shah, B. S.; Coleman, N. V.; Elbourne, L.; Le Roux, J.; Gillings, M.; Paulsen, I. T.; Tetu, S. G.
Show abstract
Humans are the worlds greatest evolutionary force. Yet, our impacts on the evolution of Earths microbiomes and their biogeochemical processes remain poorly understood. Notably, the overlooked potential for the intensive use of agricultural fertiliser to drive evolutionary changes in soil nutrient cycling genes warrants urgent attention. Here, analysing >2,500 soil metagenomes from across the globe, we identify increased rates of diversifying positive selection on genes involved in the reduction of nitrate (a key component of nitrogen fertilisers) in agricultural, but not natural land systems. Altered selection on genes encoding the respiratory nitrate reductase were specific to Burkholderiales, a major group of denitrifying bacteria. We provide evidence that agriculture is driving evolution of protein regions implicated in substrate access to the enzymes active site, possibly resulting in increased rates of nitrate reduction. We hypothesise that increasing substrate turnover would be evolutionarily advantageous under excess nitrate availability, ultimately enhancing growth rates despite potential enzymatic trade-offs. As Burkholderiales are dominant denitrifiers globally, such evolutionary consequences of agriculture on this lineage could have cascading ecological impacts. These findings indicate that anthropogenic selection can alter protein-level evolution of vital microbial biogeochemical processes.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Plant-associated microbiomes promote nutrient turnover in impoverished substrates of a biodiversity hotspot 95%
- The ecological relevance of flagellar motility in soil bacterial communities 95%
- Copiotrophs dominate rhizosphere microbiomes and growth rate potential is a major factor explaining the rhizosphere effect 94%
Similar papers in this journal
- Estimating maximal microbial growth rates from cultures, metagenomes, and single cells via codon usage patterns 94%
- Macroevolutionary changes in natural selection on codon usage reflects evolution of the tRNA pool across a budding yeast subphylum 93%
- Compensatory Relationship between Low Complexity Regions and Gene Paralogy in the Evolution of Prokaryotes 93%
Similar papers in this journal
- Intragenomic conflicts with plasmids and chromosomal mobile genetic elements drive the evolution of natural transformation within species 93%
- Adaptive evolution shapes the present-day distribution of the thermal sensitivity of population growth rate 93%
- Eukaryotic antiviral immune proteins arose via convergence, horizontal transfer, and ancient inheritance 93%
Similar papers in this journal
- Linking high GC content to the repair of double strand breaks in prokaryotic genomes 94%
- Evolutionarily stable gene clusters shed light on the common grounds of pathogenicity in the Acinetobacter calcoaceticus-baumanniicomplex 94%
- Episodic evolution of coadapted sets of amino acid sites in mitochondrial proteins 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.