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Temperature changes in the root ecosystem affect plant functionality

Climate change is increasing the frequency of extreme heat events that aggravate its negative impact on plant development and agricultural yield. Most experiments designed to study plant adaption to heat stress apply homogeneous high temperatures to both shoot and root. However, this treatment does...

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Autores principales: González-García, Mary Paz, Conesa, Carlos M., Lozano-Enguita, Alberto, Baca-González, Victoria, Simancas, Bárbara, Navarro-Neila, Sara, Sánchez-Bermúdez, María, Salas-González, Isai, Caro, Elena, Castrillo, Gabriel, del Pozo, Juan C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10203444/
https://www.ncbi.nlm.nih.gov/pubmed/36585788
http://dx.doi.org/10.1016/j.xplc.2022.100514
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author González-García, Mary Paz
Conesa, Carlos M.
Lozano-Enguita, Alberto
Baca-González, Victoria
Simancas, Bárbara
Navarro-Neila, Sara
Sánchez-Bermúdez, María
Salas-González, Isai
Caro, Elena
Castrillo, Gabriel
del Pozo, Juan C.
author_facet González-García, Mary Paz
Conesa, Carlos M.
Lozano-Enguita, Alberto
Baca-González, Victoria
Simancas, Bárbara
Navarro-Neila, Sara
Sánchez-Bermúdez, María
Salas-González, Isai
Caro, Elena
Castrillo, Gabriel
del Pozo, Juan C.
author_sort González-García, Mary Paz
collection PubMed
description Climate change is increasing the frequency of extreme heat events that aggravate its negative impact on plant development and agricultural yield. Most experiments designed to study plant adaption to heat stress apply homogeneous high temperatures to both shoot and root. However, this treatment does not mimic the conditions in natural fields, where roots grow in a dark environment with a descending temperature gradient. Excessively high temperatures severely decrease cell division in the root meristem, compromising root growth, while increasing the division of quiescent center cells, likely in an attempt to maintain the stem cell niche under such harsh conditions. Here, we engineered the TGRooZ, a device that generates a temperature gradient for in vitro or greenhouse growth assays. The root systems of plants exposed to high shoot temperatures but cultivated in the TGRooZ grow efficiently and maintain their functionality to sustain proper shoot growth and development. Furthermore, gene expression and rhizosphere or root microbiome composition are significantly less affected in TGRooZ-grown roots than in high-temperature-grown roots, correlating with higher root functionality. Our data indicate that use of the TGRooZ in heat-stress studies can improve our knowledge of plant response to high temperatures, demonstrating its applicability from laboratory studies to the field.
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spelling pubmed-102034442023-05-24 Temperature changes in the root ecosystem affect plant functionality González-García, Mary Paz Conesa, Carlos M. Lozano-Enguita, Alberto Baca-González, Victoria Simancas, Bárbara Navarro-Neila, Sara Sánchez-Bermúdez, María Salas-González, Isai Caro, Elena Castrillo, Gabriel del Pozo, Juan C. Plant Commun Research Article Climate change is increasing the frequency of extreme heat events that aggravate its negative impact on plant development and agricultural yield. Most experiments designed to study plant adaption to heat stress apply homogeneous high temperatures to both shoot and root. However, this treatment does not mimic the conditions in natural fields, where roots grow in a dark environment with a descending temperature gradient. Excessively high temperatures severely decrease cell division in the root meristem, compromising root growth, while increasing the division of quiescent center cells, likely in an attempt to maintain the stem cell niche under such harsh conditions. Here, we engineered the TGRooZ, a device that generates a temperature gradient for in vitro or greenhouse growth assays. The root systems of plants exposed to high shoot temperatures but cultivated in the TGRooZ grow efficiently and maintain their functionality to sustain proper shoot growth and development. Furthermore, gene expression and rhizosphere or root microbiome composition are significantly less affected in TGRooZ-grown roots than in high-temperature-grown roots, correlating with higher root functionality. Our data indicate that use of the TGRooZ in heat-stress studies can improve our knowledge of plant response to high temperatures, demonstrating its applicability from laboratory studies to the field. Elsevier 2022-12-30 /pmc/articles/PMC10203444/ /pubmed/36585788 http://dx.doi.org/10.1016/j.xplc.2022.100514 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
González-García, Mary Paz
Conesa, Carlos M.
Lozano-Enguita, Alberto
Baca-González, Victoria
Simancas, Bárbara
Navarro-Neila, Sara
Sánchez-Bermúdez, María
Salas-González, Isai
Caro, Elena
Castrillo, Gabriel
del Pozo, Juan C.
Temperature changes in the root ecosystem affect plant functionality
title Temperature changes in the root ecosystem affect plant functionality
title_full Temperature changes in the root ecosystem affect plant functionality
title_fullStr Temperature changes in the root ecosystem affect plant functionality
title_full_unstemmed Temperature changes in the root ecosystem affect plant functionality
title_short Temperature changes in the root ecosystem affect plant functionality
title_sort temperature changes in the root ecosystem affect plant functionality
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10203444/
https://www.ncbi.nlm.nih.gov/pubmed/36585788
http://dx.doi.org/10.1016/j.xplc.2022.100514
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