Climate History and Metabolic Trade-offs shape the Bacterial Response to Drought
Bouskill, N.; Chacon, S.; Cusack, D.; Dietterich, L.; Chen, L.; Khurram, A.; Voriskova, J.; Holman, H.-Y.
Show abstract
Soil drying challenges microbial viability and survival, with bacteria employing various mechanisms to respond to shifts in osmolarity, including dormancy or metabolic upregulation of osmoprotectants. However, the extent to which these responses are shaped by an organisms phylogeny or the climate history of a given environment is poorly understood. This study examines the responses of phylogenetically similar bacteria from semi-arid and humid tropical forest soils to osmotic and matric stress using synchrotron radiation-based Fourier Transform Infrared spectromicroscopy. This non-destructive approach depicts the biochemical phenotype for whole cells under control and stress conditions. We observed that, under osmotic stress, bacteria upregulated cell-signaling pathways, rapidly turned over lipid-storage compounds, and increased osmolyte production. In contrast, matric stress induced a more muted response, typically elevating the production of carbohydrate stress compounds, such as glycine betaine and trehalose. While phylogenetically similar bacteria showed comparable biochemistry under control conditions, climate history played an important role in regulating responses to stress, whereby a stronger metabolic response was observed from semi-arid relative to tropical forest isolates. We conclude that bacterial stress response to drought can be more diverse than previously observed, and regulated by both phylogeny and climate history.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Bacterial secondary metabolite biosynthetic potential in soil varies with phylum, depth, and vegetation type 95%
- Quorum sensing mediates morphology and motility transitions in the model archaeon Haloferax volcanii 94%
- Genomic features predict bacterial life history strategies in soil, as identified by metagenomic stable isotope probing 94%
Similar papers in this journal
- A reproducible and tunable synthetic soil microbial community provides new insights into microbial ecology 94%
- Emergent properties in microbiome networks reveal the anthropogenic disturbance of farming practices in vineyard soil fungal communities 94%
- Metabolic Response of a Chemolithoautotrophic Archaeon to Carbon Limitation 93%
Similar papers in this journal
- Beyond taxonomic identification: integration of ecological responses to a soil bacterial 16S rRNA gene database. 93%
- Motile bacteria leverage bioconvection for eco-physiological benefits in a natural aquatic environment 93%
- Evolutionary Implications of Anoxygenic Phototrophy in the Bacterial Phylum Candidatus Palusbacterota (WPS-2) 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.