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The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses

Soil biosolarization (SBS) is an alternative technique for soil pest control to standard techniques such as soil fumigation and soil solarization (SS). By using both solar heating and fermentation of organic amendments, faster and more effective control of soilborne pathogens can be achieved. A circ...

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Autores principales: Haber, Zechariah, Wilhelmi, María del Mar Rubio, Fernández-Bayo, Jesus D., Harrold, Duff R., Stapleton, James J., Toubiana, David, VanderGheynst, Jean S., Blumwald, Eduardo, Simmons, Christopher W., Sade, Nir, Achmon, Yigal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9679285/
https://www.ncbi.nlm.nih.gov/pubmed/36426148
http://dx.doi.org/10.3389/fpls.2022.1009956
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author Haber, Zechariah
Wilhelmi, María del Mar Rubio
Fernández-Bayo, Jesus D.
Harrold, Duff R.
Stapleton, James J.
Toubiana, David
VanderGheynst, Jean S.
Blumwald, Eduardo
Simmons, Christopher W.
Sade, Nir
Achmon, Yigal
author_facet Haber, Zechariah
Wilhelmi, María del Mar Rubio
Fernández-Bayo, Jesus D.
Harrold, Duff R.
Stapleton, James J.
Toubiana, David
VanderGheynst, Jean S.
Blumwald, Eduardo
Simmons, Christopher W.
Sade, Nir
Achmon, Yigal
author_sort Haber, Zechariah
collection PubMed
description Soil biosolarization (SBS) is an alternative technique for soil pest control to standard techniques such as soil fumigation and soil solarization (SS). By using both solar heating and fermentation of organic amendments, faster and more effective control of soilborne pathogens can be achieved. A circular economy may be created by using the residues of a given crop as organic amendments to biosolarize fields that produce that crop, which is termed circular soil biosolarization (CSBS). In this study, CSBS was employed by biosolarizing soil with amended tomato pomace (TP) residues and examining its impact on tomato cropping under conditions of abiotic stresses, specifically high salinity and nitrogen deficiency. The results showed that in the absence of abiotic stress, CSBS can benefit plant physiological performance, growth and yield relative to SS. Moreover, CSBS significantly mitigated the impacts of abiotic stress conditions. The results also showed that CSBS impacted the soil microbiome and plant metabolome. Mycoplana and Kaistobacter genera were found to be positively correlated with benefits to tomato plants health under abiotic stress conditions. Conversely, the relative abundance of the orders RB41, MND1, and the family Ellin6075 and were negatively correlated with tomato plants health. Moreover, several metabolites were significantly affected in plants grown in SS- and CSBS-treated soils under abiotic stress conditions. The metabolite xylonic acid isomer was found to be significantly negatively correlated with tomato plants health performance across all treatments. These findings improve understanding of the interactions between CSBS, soil ecology, and crop physiology under abiotic stress conditions.
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spelling pubmed-96792852022-11-23 The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses Haber, Zechariah Wilhelmi, María del Mar Rubio Fernández-Bayo, Jesus D. Harrold, Duff R. Stapleton, James J. Toubiana, David VanderGheynst, Jean S. Blumwald, Eduardo Simmons, Christopher W. Sade, Nir Achmon, Yigal Front Plant Sci Plant Science Soil biosolarization (SBS) is an alternative technique for soil pest control to standard techniques such as soil fumigation and soil solarization (SS). By using both solar heating and fermentation of organic amendments, faster and more effective control of soilborne pathogens can be achieved. A circular economy may be created by using the residues of a given crop as organic amendments to biosolarize fields that produce that crop, which is termed circular soil biosolarization (CSBS). In this study, CSBS was employed by biosolarizing soil with amended tomato pomace (TP) residues and examining its impact on tomato cropping under conditions of abiotic stresses, specifically high salinity and nitrogen deficiency. The results showed that in the absence of abiotic stress, CSBS can benefit plant physiological performance, growth and yield relative to SS. Moreover, CSBS significantly mitigated the impacts of abiotic stress conditions. The results also showed that CSBS impacted the soil microbiome and plant metabolome. Mycoplana and Kaistobacter genera were found to be positively correlated with benefits to tomato plants health under abiotic stress conditions. Conversely, the relative abundance of the orders RB41, MND1, and the family Ellin6075 and were negatively correlated with tomato plants health. Moreover, several metabolites were significantly affected in plants grown in SS- and CSBS-treated soils under abiotic stress conditions. The metabolite xylonic acid isomer was found to be significantly negatively correlated with tomato plants health performance across all treatments. These findings improve understanding of the interactions between CSBS, soil ecology, and crop physiology under abiotic stress conditions. Frontiers Media S.A. 2022-11-08 /pmc/articles/PMC9679285/ /pubmed/36426148 http://dx.doi.org/10.3389/fpls.2022.1009956 Text en Copyright © 2022 Haber, Wilhelmi, Fernández-Bayo, Harrold, Stapleton, Toubiana, VanderGheynst, Blumwald, Simmons, Sade and Achmon https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Haber, Zechariah
Wilhelmi, María del Mar Rubio
Fernández-Bayo, Jesus D.
Harrold, Duff R.
Stapleton, James J.
Toubiana, David
VanderGheynst, Jean S.
Blumwald, Eduardo
Simmons, Christopher W.
Sade, Nir
Achmon, Yigal
The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses
title The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses
title_full The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses
title_fullStr The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses
title_full_unstemmed The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses
title_short The effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses
title_sort effect of circular soil biosolarization treatment on the physiology, metabolomics, and microbiome of tomato plants under certain abiotic stresses
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9679285/
https://www.ncbi.nlm.nih.gov/pubmed/36426148
http://dx.doi.org/10.3389/fpls.2022.1009956
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