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Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype

Plant-associated microbial assemblages are known to shift at time scales aligned with plant phenology, as influenced by the changes in plant-derived nutrient concentrations and abiotic conditions observed over a growing season. But these same factors can change dramatically in a sub-24-hour period,...

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Autores principales: Hubbard, Charley J., Harrison, Joshua G., McMinn, Robby, Bennett Ponsford, Julian C., Maignien, Lois, Ewers, Brent, Weinig, Cynthia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10308896/
https://www.ncbi.nlm.nih.gov/pubmed/37212579
http://dx.doi.org/10.1128/msystems.01487-21
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author Hubbard, Charley J.
Harrison, Joshua G.
McMinn, Robby
Bennett Ponsford, Julian C.
Maignien, Lois
Ewers, Brent
Weinig, Cynthia
author_facet Hubbard, Charley J.
Harrison, Joshua G.
McMinn, Robby
Bennett Ponsford, Julian C.
Maignien, Lois
Ewers, Brent
Weinig, Cynthia
author_sort Hubbard, Charley J.
collection PubMed
description Plant-associated microbial assemblages are known to shift at time scales aligned with plant phenology, as influenced by the changes in plant-derived nutrient concentrations and abiotic conditions observed over a growing season. But these same factors can change dramatically in a sub-24-hour period, and it is poorly understood how such diel cycling may influence plant-associated microbiomes. Plants respond to the change from day to night via mechanisms collectively referred to as the internal “clock,” and clock phenotypes are associated with shifts in rhizosphere exudates and other changes that we hypothesize could affect rhizosphere microbes. The mustard Boechera stricta has wild populations that contain multiple clock phenotypes of either a 21- or a 24-hour cycle. We grew plants of both phenotypes (two genotypes per phenotype) in incubators that simulated natural diel cycling or that maintained constant light and temperature. Under both cycling and constant conditions, the extracted DNA concentration and the composition of rhizosphere microbial assemblages differed between time points, with daytime DNA concentrations often triple what were observed at night and microbial community composition differing by, for instance, up to 17%. While we found that plants of different genotypes were associated with variation in rhizosphere assemblages, we did not see an effect on soil conditioned by a particular host plant circadian phenotype on subsequent generations of plants. Our results suggest that rhizosphere microbiomes are dynamic at sub-24-hour periods, and those dynamics are shaped by diel cycling in host plant phenotype. IMPORTANCE: We find that the rhizosphere microbiome shifts in composition and extractable DNA concentration in sub-24-hour periods as influenced by the plant host’s internal clock. These results suggest that host plant clock phenotypes could be an important determinant of variation in rhizosphere microbiomes.
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spelling pubmed-103088962023-06-30 Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype Hubbard, Charley J. Harrison, Joshua G. McMinn, Robby Bennett Ponsford, Julian C. Maignien, Lois Ewers, Brent Weinig, Cynthia mSystems Research Article Plant-associated microbial assemblages are known to shift at time scales aligned with plant phenology, as influenced by the changes in plant-derived nutrient concentrations and abiotic conditions observed over a growing season. But these same factors can change dramatically in a sub-24-hour period, and it is poorly understood how such diel cycling may influence plant-associated microbiomes. Plants respond to the change from day to night via mechanisms collectively referred to as the internal “clock,” and clock phenotypes are associated with shifts in rhizosphere exudates and other changes that we hypothesize could affect rhizosphere microbes. The mustard Boechera stricta has wild populations that contain multiple clock phenotypes of either a 21- or a 24-hour cycle. We grew plants of both phenotypes (two genotypes per phenotype) in incubators that simulated natural diel cycling or that maintained constant light and temperature. Under both cycling and constant conditions, the extracted DNA concentration and the composition of rhizosphere microbial assemblages differed between time points, with daytime DNA concentrations often triple what were observed at night and microbial community composition differing by, for instance, up to 17%. While we found that plants of different genotypes were associated with variation in rhizosphere assemblages, we did not see an effect on soil conditioned by a particular host plant circadian phenotype on subsequent generations of plants. Our results suggest that rhizosphere microbiomes are dynamic at sub-24-hour periods, and those dynamics are shaped by diel cycling in host plant phenotype. IMPORTANCE: We find that the rhizosphere microbiome shifts in composition and extractable DNA concentration in sub-24-hour periods as influenced by the plant host’s internal clock. These results suggest that host plant clock phenotypes could be an important determinant of variation in rhizosphere microbiomes. American Society for Microbiology 2023-05-22 /pmc/articles/PMC10308896/ /pubmed/37212579 http://dx.doi.org/10.1128/msystems.01487-21 Text en Copyright © 2023 Hubbard 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
Hubbard, Charley J.
Harrison, Joshua G.
McMinn, Robby
Bennett Ponsford, Julian C.
Maignien, Lois
Ewers, Brent
Weinig, Cynthia
Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype
title Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype
title_full Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype
title_fullStr Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype
title_full_unstemmed Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype
title_short Rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype
title_sort rhizosphere microbial community composition shifts diurnally and in response to natural variation in host clock phenotype
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10308896/
https://www.ncbi.nlm.nih.gov/pubmed/37212579
http://dx.doi.org/10.1128/msystems.01487-21
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