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Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size

The physical environments in which microorganisms naturally reside rarely have homogeneous structure, and changes in their porous architecture may have effects on microbial activities that are not typically captured in conventional laboratory studies. In this study, to investigate the influence of e...

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Autores principales: Harvey, Harry J., Mitzakoff, Anna M. T., Wildman, Ricky D., Mooney, Sacha J., Avery, Simon V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8478441/
https://www.ncbi.nlm.nih.gov/pubmed/34347513
http://dx.doi.org/10.1128/AEM.01005-21
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author Harvey, Harry J.
Mitzakoff, Anna M. T.
Wildman, Ricky D.
Mooney, Sacha J.
Avery, Simon V.
author_facet Harvey, Harry J.
Mitzakoff, Anna M. T.
Wildman, Ricky D.
Mooney, Sacha J.
Avery, Simon V.
author_sort Harvey, Harry J.
collection PubMed
description The physical environments in which microorganisms naturally reside rarely have homogeneous structure, and changes in their porous architecture may have effects on microbial activities that are not typically captured in conventional laboratory studies. In this study, to investigate the influence of environmental structure on microbial responses to stress, we constructed structured environments with different pore properties (determined by X-ray computed tomography). First, using glass beads in different arrangements and inoculated with the soil yeast Saitozyma podzolica, increases in the average equivalent spherical diameters (ESD) of a structure’s porous architecture led to decreased survival of the yeast under a toxic metal challenge with lead nitrate. This relationship was reproduced when yeasts were introduced into additively manufactured lattice structures, comprising regular arrays with ESDs comparable to those of the bead structures. The pore ESD dependency of metal resistance was not attributable to differences in cell density in microenvironments delimited by different pore sizes, supporting the inference that pore size specifically was the important parameter in determining survival of stress. These findings highlight the importance of the physical architecture of an organism’s immediate environment for its response to environmental perturbation, while offering new tools for investigating these interactions in the laboratory. IMPORTANCE Interactions between cells and their structured environments are poorly understood but have significant implications for organismal success in both natural and nonnatural settings. This work used a multidisciplinary approach to develop laboratory models with which the influence of a key parameter of environmental structure—pore size—on cell activities can be dissected. Using these new methods in tandem with additive manufacturing, we demonstrated that resistance of yeast soil isolates to stress (from a common metal pollutant) is inversely related to pore size of their environment. This has important ramifications for understanding how microorganisms respond to stress in different environments. The findings also establish new pathways for resolving the effects of physical environment on microbial activity, enabling important understanding that is not readily attainable with traditional bulk sampling and analysis approaches.
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spelling pubmed-84784412021-10-18 Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size Harvey, Harry J. Mitzakoff, Anna M. T. Wildman, Ricky D. Mooney, Sacha J. Avery, Simon V. Appl Environ Microbiol Environmental Microbiology The physical environments in which microorganisms naturally reside rarely have homogeneous structure, and changes in their porous architecture may have effects on microbial activities that are not typically captured in conventional laboratory studies. In this study, to investigate the influence of environmental structure on microbial responses to stress, we constructed structured environments with different pore properties (determined by X-ray computed tomography). First, using glass beads in different arrangements and inoculated with the soil yeast Saitozyma podzolica, increases in the average equivalent spherical diameters (ESD) of a structure’s porous architecture led to decreased survival of the yeast under a toxic metal challenge with lead nitrate. This relationship was reproduced when yeasts were introduced into additively manufactured lattice structures, comprising regular arrays with ESDs comparable to those of the bead structures. The pore ESD dependency of metal resistance was not attributable to differences in cell density in microenvironments delimited by different pore sizes, supporting the inference that pore size specifically was the important parameter in determining survival of stress. These findings highlight the importance of the physical architecture of an organism’s immediate environment for its response to environmental perturbation, while offering new tools for investigating these interactions in the laboratory. IMPORTANCE Interactions between cells and their structured environments are poorly understood but have significant implications for organismal success in both natural and nonnatural settings. This work used a multidisciplinary approach to develop laboratory models with which the influence of a key parameter of environmental structure—pore size—on cell activities can be dissected. Using these new methods in tandem with additive manufacturing, we demonstrated that resistance of yeast soil isolates to stress (from a common metal pollutant) is inversely related to pore size of their environment. This has important ramifications for understanding how microorganisms respond to stress in different environments. The findings also establish new pathways for resolving the effects of physical environment on microbial activity, enabling important understanding that is not readily attainable with traditional bulk sampling and analysis approaches. American Society for Microbiology 2021-09-28 /pmc/articles/PMC8478441/ /pubmed/34347513 http://dx.doi.org/10.1128/AEM.01005-21 Text en Copyright © 2021 Harvey 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 Environmental Microbiology
Harvey, Harry J.
Mitzakoff, Anna M. T.
Wildman, Ricky D.
Mooney, Sacha J.
Avery, Simon V.
Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size
title Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size
title_full Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size
title_fullStr Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size
title_full_unstemmed Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size
title_short Microbial Metal Resistance within Structured Environments Is Inversely Related to Environmental Pore Size
title_sort microbial metal resistance within structured environments is inversely related to environmental pore size
topic Environmental Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8478441/
https://www.ncbi.nlm.nih.gov/pubmed/34347513
http://dx.doi.org/10.1128/AEM.01005-21
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