Cargando…
Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms
Two grain amaranth transcription factor (TF) genes were overexpressed in Arabidopsis plants. The first, coding for a group VII ethylene response factor TF (i.e., AhERF-VII) conferred tolerance to water-deficit stress (WS) in transgenic Arabidopsis without affecting vegetative or reproductive growth....
Autores principales: | , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2016
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5066980/ https://www.ncbi.nlm.nih.gov/pubmed/27749893 http://dx.doi.org/10.1371/journal.pone.0164280 |
_version_ | 1782460574962024448 |
---|---|
author | Massange-Sánchez, Julio A. Palmeros-Suárez, Paola A. Espitia-Rangel, Eduardo Rodríguez-Arévalo, Isaac Sánchez-Segura, Lino Martínez-Gallardo, Norma A. Alatorre-Cobos, Fulgencio Tiessen, Axel Délano-Frier, John P. |
author_facet | Massange-Sánchez, Julio A. Palmeros-Suárez, Paola A. Espitia-Rangel, Eduardo Rodríguez-Arévalo, Isaac Sánchez-Segura, Lino Martínez-Gallardo, Norma A. Alatorre-Cobos, Fulgencio Tiessen, Axel Délano-Frier, John P. |
author_sort | Massange-Sánchez, Julio A. |
collection | PubMed |
description | Two grain amaranth transcription factor (TF) genes were overexpressed in Arabidopsis plants. The first, coding for a group VII ethylene response factor TF (i.e., AhERF-VII) conferred tolerance to water-deficit stress (WS) in transgenic Arabidopsis without affecting vegetative or reproductive growth. A significantly lower water-loss rate in detached leaves coupled to a reduced stomatal opening in leaves of plants subjected to WS was associated with this trait. WS tolerance was also associated with an increased antioxidant enzyme activity and the accumulation of putative stress-related secondary metabolites. However, microarray and GO data did not indicate an obvious correlation between WS tolerance, stomatal closure, and abscisic acid (ABA)-related signaling. This scenario suggested that stomatal closure during WS in these plants involved ABA-independent mechanisms, possibly involving reactive oxygen species (ROS). WS tolerance may have also involved other protective processes, such as those employed for methyl glyoxal detoxification. The second, coding for a class A and cluster I DNA binding with one finger TF (i.e., AhDof-AI) provided salt-stress (SS) tolerance with no evident fitness penalties. The lack of an obvious development-related phenotype contrasted with microarray and GO data showing an enrichment of categories and genes related to developmental processes, particularly flowering. SS tolerance also correlated with increased superoxide dismutase activity but not with augmented stomatal closure. Additionally, microarray and GO data indicated that, contrary to AhERF-VII, SS tolerance conferred by AhDof-AI in Arabidopsis involved ABA-dependent and ABA-independent stress amelioration mechanisms. |
format | Online Article Text |
id | pubmed-5066980 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2016 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-50669802016-10-27 Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms Massange-Sánchez, Julio A. Palmeros-Suárez, Paola A. Espitia-Rangel, Eduardo Rodríguez-Arévalo, Isaac Sánchez-Segura, Lino Martínez-Gallardo, Norma A. Alatorre-Cobos, Fulgencio Tiessen, Axel Délano-Frier, John P. PLoS One Research Article Two grain amaranth transcription factor (TF) genes were overexpressed in Arabidopsis plants. The first, coding for a group VII ethylene response factor TF (i.e., AhERF-VII) conferred tolerance to water-deficit stress (WS) in transgenic Arabidopsis without affecting vegetative or reproductive growth. A significantly lower water-loss rate in detached leaves coupled to a reduced stomatal opening in leaves of plants subjected to WS was associated with this trait. WS tolerance was also associated with an increased antioxidant enzyme activity and the accumulation of putative stress-related secondary metabolites. However, microarray and GO data did not indicate an obvious correlation between WS tolerance, stomatal closure, and abscisic acid (ABA)-related signaling. This scenario suggested that stomatal closure during WS in these plants involved ABA-independent mechanisms, possibly involving reactive oxygen species (ROS). WS tolerance may have also involved other protective processes, such as those employed for methyl glyoxal detoxification. The second, coding for a class A and cluster I DNA binding with one finger TF (i.e., AhDof-AI) provided salt-stress (SS) tolerance with no evident fitness penalties. The lack of an obvious development-related phenotype contrasted with microarray and GO data showing an enrichment of categories and genes related to developmental processes, particularly flowering. SS tolerance also correlated with increased superoxide dismutase activity but not with augmented stomatal closure. Additionally, microarray and GO data indicated that, contrary to AhERF-VII, SS tolerance conferred by AhDof-AI in Arabidopsis involved ABA-dependent and ABA-independent stress amelioration mechanisms. Public Library of Science 2016-10-17 /pmc/articles/PMC5066980/ /pubmed/27749893 http://dx.doi.org/10.1371/journal.pone.0164280 Text en © 2016 Massange-Sánchez et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. |
spellingShingle | Research Article Massange-Sánchez, Julio A. Palmeros-Suárez, Paola A. Espitia-Rangel, Eduardo Rodríguez-Arévalo, Isaac Sánchez-Segura, Lino Martínez-Gallardo, Norma A. Alatorre-Cobos, Fulgencio Tiessen, Axel Délano-Frier, John P. Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms |
title | Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms |
title_full | Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms |
title_fullStr | Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms |
title_full_unstemmed | Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms |
title_short | Overexpression of Grain Amaranth (Amaranthus hypochondriacus) AhERF or AhDOF Transcription Factors in Arabidopsis thaliana Increases Water Deficit- and Salt-Stress Tolerance, Respectively, via Contrasting Stress-Amelioration Mechanisms |
title_sort | overexpression of grain amaranth (amaranthus hypochondriacus) aherf or ahdof transcription factors in arabidopsis thaliana increases water deficit- and salt-stress tolerance, respectively, via contrasting stress-amelioration mechanisms |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5066980/ https://www.ncbi.nlm.nih.gov/pubmed/27749893 http://dx.doi.org/10.1371/journal.pone.0164280 |
work_keys_str_mv | AT massangesanchezjulioa overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT palmerossuarezpaolaa overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT espitiarangeleduardo overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT rodriguezarevaloisaac overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT sanchezseguralino overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT martinezgallardonormaa overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT alatorrecobosfulgencio overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT tiessenaxel overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms AT delanofrierjohnp overexpressionofgrainamaranthamaranthushypochondriacusaherforahdoftranscriptionfactorsinarabidopsisthalianaincreaseswaterdeficitandsaltstresstolerancerespectivelyviacontrastingstressameliorationmechanisms |