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The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities

Phosphorus (P) is an essential nutrient that is often in limited supply, with P availability constraining biomass production in many terrestrial ecosystems. Despite decades of work on plant responses to P deficiency and the importance of soil microbes to terrestrial ecosystem processes, how soil mic...

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Autores principales: Oliverio, Angela M., Bissett, Andrew, McGuire, Krista, Saltonstall, Kristin, Turner, Benjamin L., Fierer, Noah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7593963/
https://www.ncbi.nlm.nih.gov/pubmed/33109755
http://dx.doi.org/10.1128/mBio.01718-20
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author Oliverio, Angela M.
Bissett, Andrew
McGuire, Krista
Saltonstall, Kristin
Turner, Benjamin L.
Fierer, Noah
author_facet Oliverio, Angela M.
Bissett, Andrew
McGuire, Krista
Saltonstall, Kristin
Turner, Benjamin L.
Fierer, Noah
author_sort Oliverio, Angela M.
collection PubMed
description Phosphorus (P) is an essential nutrient that is often in limited supply, with P availability constraining biomass production in many terrestrial ecosystems. Despite decades of work on plant responses to P deficiency and the importance of soil microbes to terrestrial ecosystem processes, how soil microbes respond to, and cope with, P deficiencies remains poorly understood. We studied 583 soils from two independent sample sets that each span broad natural gradients in extractable soil P and collectively represent diverse biomes, including tropical forests, temperate grasslands, and arid shrublands. We paired marker gene and shotgun metagenomic analyses to determine how soil bacterial and archaeal communities respond to differences in soil P availability and to detect corresponding shifts in functional attributes. We identified microbial taxa that are consistently responsive to extractable soil P, with those taxa found in low P soils being more likely to have traits typical of oligotrophic life history strategies. Using environmental niche modeling of genes and gene pathways, we found an enriched abundance of key genes in low P soils linked to the carbon-phosphorus (C-P) lyase and phosphonotase degradation pathways, along with key components of the high-affinity phosphate-specific transporter (Pst) and phosphate regulon (Pho) systems. Taken together, these analyses suggest that catabolism of phosphonates is an important strategy used by bacteria to scavenge phosphate in P-limited soils. Surprisingly, these same pathways are important for bacterial growth in P-limited marine waters, highlighting the shared metabolic strategies used by both terrestrial and marine microbes to cope with P limitation.
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spelling pubmed-75939632020-10-30 The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities Oliverio, Angela M. Bissett, Andrew McGuire, Krista Saltonstall, Kristin Turner, Benjamin L. Fierer, Noah mBio Research Article Phosphorus (P) is an essential nutrient that is often in limited supply, with P availability constraining biomass production in many terrestrial ecosystems. Despite decades of work on plant responses to P deficiency and the importance of soil microbes to terrestrial ecosystem processes, how soil microbes respond to, and cope with, P deficiencies remains poorly understood. We studied 583 soils from two independent sample sets that each span broad natural gradients in extractable soil P and collectively represent diverse biomes, including tropical forests, temperate grasslands, and arid shrublands. We paired marker gene and shotgun metagenomic analyses to determine how soil bacterial and archaeal communities respond to differences in soil P availability and to detect corresponding shifts in functional attributes. We identified microbial taxa that are consistently responsive to extractable soil P, with those taxa found in low P soils being more likely to have traits typical of oligotrophic life history strategies. Using environmental niche modeling of genes and gene pathways, we found an enriched abundance of key genes in low P soils linked to the carbon-phosphorus (C-P) lyase and phosphonotase degradation pathways, along with key components of the high-affinity phosphate-specific transporter (Pst) and phosphate regulon (Pho) systems. Taken together, these analyses suggest that catabolism of phosphonates is an important strategy used by bacteria to scavenge phosphate in P-limited soils. Surprisingly, these same pathways are important for bacterial growth in P-limited marine waters, highlighting the shared metabolic strategies used by both terrestrial and marine microbes to cope with P limitation. American Society for Microbiology 2020-10-27 /pmc/articles/PMC7593963/ /pubmed/33109755 http://dx.doi.org/10.1128/mBio.01718-20 Text en Copyright © 2020 Oliverio et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Oliverio, Angela M.
Bissett, Andrew
McGuire, Krista
Saltonstall, Kristin
Turner, Benjamin L.
Fierer, Noah
The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities
title The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities
title_full The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities
title_fullStr The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities
title_full_unstemmed The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities
title_short The Role of Phosphorus Limitation in Shaping Soil Bacterial Communities and Their Metabolic Capabilities
title_sort role of phosphorus limitation in shaping soil bacterial communities and their metabolic capabilities
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7593963/
https://www.ncbi.nlm.nih.gov/pubmed/33109755
http://dx.doi.org/10.1128/mBio.01718-20
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