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Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato

Tomato is a major crop in the Mediterranean basin, where the cultivation in the open field is often vulnerable to drought. In order to adapt and survive to naturally occurring cycles of drought stress and recovery, plants employ a coordinated array of physiological, biochemical, and molecular respon...

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Autores principales: Iovieno, Paolo, Punzo, Paola, Guida, Gianpiero, Mistretta, Carmela, Van Oosten, Michael J., Nurcato, Roberta, Bostan, Hamed, Colantuono, Chiara, Costa, Antonello, Bagnaresi, Paolo, Chiusano, Maria L., Albrizio, Rossella, Giorio, Pasquale, Batelli, Giorgia, Grillo, Stefania
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4814702/
https://www.ncbi.nlm.nih.gov/pubmed/27066027
http://dx.doi.org/10.3389/fpls.2016.00371
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author Iovieno, Paolo
Punzo, Paola
Guida, Gianpiero
Mistretta, Carmela
Van Oosten, Michael J.
Nurcato, Roberta
Bostan, Hamed
Colantuono, Chiara
Costa, Antonello
Bagnaresi, Paolo
Chiusano, Maria L.
Albrizio, Rossella
Giorio, Pasquale
Batelli, Giorgia
Grillo, Stefania
author_facet Iovieno, Paolo
Punzo, Paola
Guida, Gianpiero
Mistretta, Carmela
Van Oosten, Michael J.
Nurcato, Roberta
Bostan, Hamed
Colantuono, Chiara
Costa, Antonello
Bagnaresi, Paolo
Chiusano, Maria L.
Albrizio, Rossella
Giorio, Pasquale
Batelli, Giorgia
Grillo, Stefania
author_sort Iovieno, Paolo
collection PubMed
description Tomato is a major crop in the Mediterranean basin, where the cultivation in the open field is often vulnerable to drought. In order to adapt and survive to naturally occurring cycles of drought stress and recovery, plants employ a coordinated array of physiological, biochemical, and molecular responses. Transcriptomic studies on tomato responses to drought and subsequent recovery are few in number. As the search for novel traits to improve the genetic tolerance to drought increases, a better understanding of these responses is required. To address this need we designed a study in which we induced two cycles of prolonged drought stress and a single recovery by rewatering in tomato. In order to dissect the complexity of plant responses to drought, we analyzed the physiological responses (stomatal conductance, CO(2) assimilation, and chlorophyll fluorescence), abscisic acid (ABA), and proline contents. In addition to the physiological and metabolite assays, we generated transcriptomes for multiple points during the stress and recovery cycles. Cluster analysis of differentially expressed genes (DEGs) between the conditions has revealed potential novel components in stress response. The observed reduction in leaf gas exchanges and efficiency of the photosystem PSII was concomitant with a general down-regulation of genes belonging to the photosynthesis, light harvesting, and photosystem I and II category induced by drought stress. Gene ontology (GO) categories such as cell proliferation and cell cycle were also significantly enriched in the down-regulated fraction of genes upon drought stress, which may contribute to explain the observed growth reduction. Several histone variants were also repressed during drought stress, indicating that chromatin associated processes are also affected by drought. As expected, ABA accumulated after prolonged water deficit, driving the observed enrichment of stress related GOs in the up-regulated gene fractions, which included transcripts putatively involved in stomatal movements. This transcriptomic study has yielded promising candidate genes that merit further functional studies to confirm their involvement in drought tolerance and recovery. Together, our results contribute to a better understanding of the coordinated responses taking place under drought stress and recovery in adult plants of tomato.
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spelling pubmed-48147022016-04-08 Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato Iovieno, Paolo Punzo, Paola Guida, Gianpiero Mistretta, Carmela Van Oosten, Michael J. Nurcato, Roberta Bostan, Hamed Colantuono, Chiara Costa, Antonello Bagnaresi, Paolo Chiusano, Maria L. Albrizio, Rossella Giorio, Pasquale Batelli, Giorgia Grillo, Stefania Front Plant Sci Plant Science Tomato is a major crop in the Mediterranean basin, where the cultivation in the open field is often vulnerable to drought. In order to adapt and survive to naturally occurring cycles of drought stress and recovery, plants employ a coordinated array of physiological, biochemical, and molecular responses. Transcriptomic studies on tomato responses to drought and subsequent recovery are few in number. As the search for novel traits to improve the genetic tolerance to drought increases, a better understanding of these responses is required. To address this need we designed a study in which we induced two cycles of prolonged drought stress and a single recovery by rewatering in tomato. In order to dissect the complexity of plant responses to drought, we analyzed the physiological responses (stomatal conductance, CO(2) assimilation, and chlorophyll fluorescence), abscisic acid (ABA), and proline contents. In addition to the physiological and metabolite assays, we generated transcriptomes for multiple points during the stress and recovery cycles. Cluster analysis of differentially expressed genes (DEGs) between the conditions has revealed potential novel components in stress response. The observed reduction in leaf gas exchanges and efficiency of the photosystem PSII was concomitant with a general down-regulation of genes belonging to the photosynthesis, light harvesting, and photosystem I and II category induced by drought stress. Gene ontology (GO) categories such as cell proliferation and cell cycle were also significantly enriched in the down-regulated fraction of genes upon drought stress, which may contribute to explain the observed growth reduction. Several histone variants were also repressed during drought stress, indicating that chromatin associated processes are also affected by drought. As expected, ABA accumulated after prolonged water deficit, driving the observed enrichment of stress related GOs in the up-regulated gene fractions, which included transcripts putatively involved in stomatal movements. This transcriptomic study has yielded promising candidate genes that merit further functional studies to confirm their involvement in drought tolerance and recovery. Together, our results contribute to a better understanding of the coordinated responses taking place under drought stress and recovery in adult plants of tomato. Frontiers Media S.A. 2016-03-31 /pmc/articles/PMC4814702/ /pubmed/27066027 http://dx.doi.org/10.3389/fpls.2016.00371 Text en Copyright © 2016 Iovieno, Punzo, Guida, Mistretta, Van Oosten, Nurcato, Bostan, Colantuono, Costa, Bagnaresi, Chiusano, Albrizio, Giorio, Batelli and Grillo. http://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) or licensor 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
Iovieno, Paolo
Punzo, Paola
Guida, Gianpiero
Mistretta, Carmela
Van Oosten, Michael J.
Nurcato, Roberta
Bostan, Hamed
Colantuono, Chiara
Costa, Antonello
Bagnaresi, Paolo
Chiusano, Maria L.
Albrizio, Rossella
Giorio, Pasquale
Batelli, Giorgia
Grillo, Stefania
Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato
title Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato
title_full Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato
title_fullStr Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato
title_full_unstemmed Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato
title_short Transcriptomic Changes Drive Physiological Responses to Progressive Drought Stress and Rehydration in Tomato
title_sort transcriptomic changes drive physiological responses to progressive drought stress and rehydration in tomato
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4814702/
https://www.ncbi.nlm.nih.gov/pubmed/27066027
http://dx.doi.org/10.3389/fpls.2016.00371
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