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Artificial Soils Reveal Individual Factor Controls on Microbial Processes

Soil matrix properties influence microbial behaviors that underlie nutrient cycling, greenhouse gas production, and soil formation. However, the dynamic and heterogeneous nature of soils makes it challenging to untangle the effects of different matrix properties on microbial behaviors. To address th...

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Autores principales: Del Valle, Ilenne, Gao, Xiaodong, Ghezzehei, Teamrat A., Silberg, Jonathan J., Masiello, Caroline A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9426496/
https://www.ncbi.nlm.nih.gov/pubmed/35880897
http://dx.doi.org/10.1128/msystems.00301-22
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author Del Valle, Ilenne
Gao, Xiaodong
Ghezzehei, Teamrat A.
Silberg, Jonathan J.
Masiello, Caroline A.
author_facet Del Valle, Ilenne
Gao, Xiaodong
Ghezzehei, Teamrat A.
Silberg, Jonathan J.
Masiello, Caroline A.
author_sort Del Valle, Ilenne
collection PubMed
description Soil matrix properties influence microbial behaviors that underlie nutrient cycling, greenhouse gas production, and soil formation. However, the dynamic and heterogeneous nature of soils makes it challenging to untangle the effects of different matrix properties on microbial behaviors. To address this challenge, we developed a tunable artificial soil recipe and used these materials to study the abiotic mechanisms driving soil microbial growth and communication. When we used standardized matrices with varying textures to culture gas-reporting biosensors, we found that a Gram-negative bacterium (Escherichia coli) grew best in synthetic silt soils, remaining active over a wide range of soil matric potentials, while a Gram-positive bacterium (Bacillus subtilis) preferred sandy soils, sporulating at low water potentials. Soil texture, mineralogy, and alkalinity all attenuated the bioavailability of an acyl-homoserine lactone (AHL) signaling molecule that controls community-level microbial behaviors. Texture controlled the timing of AHL sensing, while AHL bioavailability was decreased ~10(5)-fold by mineralogy and ~10(3)-fold by alkalinity. Finally, we built artificial soils with a range of complexities that converge on the properties of one Mollisol. As artificial soil complexity increased to more closely resemble the Mollisol, microbial behaviors approached those occurring in the natural soil, with the notable exception of organic matter. IMPORTANCE Understanding environmental controls on soil microbes is difficult because many abiotic parameters vary simultaneously and uncontrollably when different natural soils are compared, preventing mechanistic determination of any individual soil parameter’s effect on microbial behaviors. We describe how soil texture, mineralogy, pH, and organic matter content can be varied individually within artificial soils to study their effects on soil microbes. Using microbial biosensors that report by producing a rare indicator gas, we identify soil properties that control microbial growth and attenuate the bioavailability of a diffusible chemical used to control community-level behaviors. We find that artificial soils differentially affect signal bioavailability and the growth of Gram-negative (Escherichia coli) and Gram-positive (Bacillus subtilis) microbes. These artificial soils are useful for studying the mechanisms that underlie soil controls on microbial fitness, signaling, and gene transfer.
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spelling pubmed-94264962022-08-31 Artificial Soils Reveal Individual Factor Controls on Microbial Processes Del Valle, Ilenne Gao, Xiaodong Ghezzehei, Teamrat A. Silberg, Jonathan J. Masiello, Caroline A. mSystems Research Article Soil matrix properties influence microbial behaviors that underlie nutrient cycling, greenhouse gas production, and soil formation. However, the dynamic and heterogeneous nature of soils makes it challenging to untangle the effects of different matrix properties on microbial behaviors. To address this challenge, we developed a tunable artificial soil recipe and used these materials to study the abiotic mechanisms driving soil microbial growth and communication. When we used standardized matrices with varying textures to culture gas-reporting biosensors, we found that a Gram-negative bacterium (Escherichia coli) grew best in synthetic silt soils, remaining active over a wide range of soil matric potentials, while a Gram-positive bacterium (Bacillus subtilis) preferred sandy soils, sporulating at low water potentials. Soil texture, mineralogy, and alkalinity all attenuated the bioavailability of an acyl-homoserine lactone (AHL) signaling molecule that controls community-level microbial behaviors. Texture controlled the timing of AHL sensing, while AHL bioavailability was decreased ~10(5)-fold by mineralogy and ~10(3)-fold by alkalinity. Finally, we built artificial soils with a range of complexities that converge on the properties of one Mollisol. As artificial soil complexity increased to more closely resemble the Mollisol, microbial behaviors approached those occurring in the natural soil, with the notable exception of organic matter. IMPORTANCE Understanding environmental controls on soil microbes is difficult because many abiotic parameters vary simultaneously and uncontrollably when different natural soils are compared, preventing mechanistic determination of any individual soil parameter’s effect on microbial behaviors. We describe how soil texture, mineralogy, pH, and organic matter content can be varied individually within artificial soils to study their effects on soil microbes. Using microbial biosensors that report by producing a rare indicator gas, we identify soil properties that control microbial growth and attenuate the bioavailability of a diffusible chemical used to control community-level behaviors. We find that artificial soils differentially affect signal bioavailability and the growth of Gram-negative (Escherichia coli) and Gram-positive (Bacillus subtilis) microbes. These artificial soils are useful for studying the mechanisms that underlie soil controls on microbial fitness, signaling, and gene transfer. American Society for Microbiology 2022-07-26 /pmc/articles/PMC9426496/ /pubmed/35880897 http://dx.doi.org/10.1128/msystems.00301-22 Text en Copyright © 2022 Del Valle 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
Del Valle, Ilenne
Gao, Xiaodong
Ghezzehei, Teamrat A.
Silberg, Jonathan J.
Masiello, Caroline A.
Artificial Soils Reveal Individual Factor Controls on Microbial Processes
title Artificial Soils Reveal Individual Factor Controls on Microbial Processes
title_full Artificial Soils Reveal Individual Factor Controls on Microbial Processes
title_fullStr Artificial Soils Reveal Individual Factor Controls on Microbial Processes
title_full_unstemmed Artificial Soils Reveal Individual Factor Controls on Microbial Processes
title_short Artificial Soils Reveal Individual Factor Controls on Microbial Processes
title_sort artificial soils reveal individual factor controls on microbial processes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9426496/
https://www.ncbi.nlm.nih.gov/pubmed/35880897
http://dx.doi.org/10.1128/msystems.00301-22
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