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The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice

The enhancement of heat stress tolerance in crops is an important challenge for food security to facilitate adaptation to global warming. In Arabidopsis thaliana, the transcriptional regulator DNA polymerase II subunit B3‐1 (DPB3‐1)/nuclear factor Y subunit C10 (NF‐YC10) has been reported as a posit...

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Autores principales: Sato, Hikaru, Todaka, Daisuke, Kudo, Madoka, Mizoi, Junya, Kidokoro, Satoshi, Zhao, Yu, Shinozaki, Kazuo, Yamaguchi‐Shinozaki, Kazuko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5067654/
https://www.ncbi.nlm.nih.gov/pubmed/26841113
http://dx.doi.org/10.1111/pbi.12535
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author Sato, Hikaru
Todaka, Daisuke
Kudo, Madoka
Mizoi, Junya
Kidokoro, Satoshi
Zhao, Yu
Shinozaki, Kazuo
Yamaguchi‐Shinozaki, Kazuko
author_facet Sato, Hikaru
Todaka, Daisuke
Kudo, Madoka
Mizoi, Junya
Kidokoro, Satoshi
Zhao, Yu
Shinozaki, Kazuo
Yamaguchi‐Shinozaki, Kazuko
author_sort Sato, Hikaru
collection PubMed
description The enhancement of heat stress tolerance in crops is an important challenge for food security to facilitate adaptation to global warming. In Arabidopsis thaliana, the transcriptional regulator DNA polymerase II subunit B3‐1 (DPB3‐1)/nuclear factor Y subunit C10 (NF‐YC10) has been reported as a positive regulator of Dehydration‐responsive element binding protein 2A (DREB2A), and the overexpression of DPB3‐1 enhances heat stress tolerance without growth retardation. Here, we show that DPB3‐1 interacts with DREB2A homologues in rice and soya bean. Transactivation analyses with Arabidopsis and rice mesophyll protoplasts indicate that DPB3‐1 and its rice homologue OsDPB3‐2 function as positive regulators of DREB2A homologues. Overexpression of DPB3‐1 did not affect plant growth or yield in rice under nonstress conditions. Moreover, DPB3‐1‐overexpressing rice showed enhanced heat stress tolerance. Microarray analysis revealed that many heat stress‐inducible genes were up‐regulated in DPB3‐1‐overexpressing rice under heat stress conditions. However, the overexpression of DPB3‐1 using a constitutive promoter had almost no effect on the expression of these genes under nonstress conditions. This may be because DPB3‐1 is a coactivator and thus lacks inherent transcriptional activity. We conclude that DPB3‐1, a coactivator that functions specifically under abiotic stress conditions, could be utilized to increase heat stress tolerance in crops without negative effects on vegetative and reproductive growth.
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spelling pubmed-50676542016-11-01 The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice Sato, Hikaru Todaka, Daisuke Kudo, Madoka Mizoi, Junya Kidokoro, Satoshi Zhao, Yu Shinozaki, Kazuo Yamaguchi‐Shinozaki, Kazuko Plant Biotechnol J Research Articles The enhancement of heat stress tolerance in crops is an important challenge for food security to facilitate adaptation to global warming. In Arabidopsis thaliana, the transcriptional regulator DNA polymerase II subunit B3‐1 (DPB3‐1)/nuclear factor Y subunit C10 (NF‐YC10) has been reported as a positive regulator of Dehydration‐responsive element binding protein 2A (DREB2A), and the overexpression of DPB3‐1 enhances heat stress tolerance without growth retardation. Here, we show that DPB3‐1 interacts with DREB2A homologues in rice and soya bean. Transactivation analyses with Arabidopsis and rice mesophyll protoplasts indicate that DPB3‐1 and its rice homologue OsDPB3‐2 function as positive regulators of DREB2A homologues. Overexpression of DPB3‐1 did not affect plant growth or yield in rice under nonstress conditions. Moreover, DPB3‐1‐overexpressing rice showed enhanced heat stress tolerance. Microarray analysis revealed that many heat stress‐inducible genes were up‐regulated in DPB3‐1‐overexpressing rice under heat stress conditions. However, the overexpression of DPB3‐1 using a constitutive promoter had almost no effect on the expression of these genes under nonstress conditions. This may be because DPB3‐1 is a coactivator and thus lacks inherent transcriptional activity. We conclude that DPB3‐1, a coactivator that functions specifically under abiotic stress conditions, could be utilized to increase heat stress tolerance in crops without negative effects on vegetative and reproductive growth. John Wiley and Sons Inc. 2016-02-03 2016-08 /pmc/articles/PMC5067654/ /pubmed/26841113 http://dx.doi.org/10.1111/pbi.12535 Text en © 2016 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Sato, Hikaru
Todaka, Daisuke
Kudo, Madoka
Mizoi, Junya
Kidokoro, Satoshi
Zhao, Yu
Shinozaki, Kazuo
Yamaguchi‐Shinozaki, Kazuko
The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice
title The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice
title_full The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice
title_fullStr The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice
title_full_unstemmed The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice
title_short The Arabidopsis transcriptional regulator DPB3‐1 enhances heat stress tolerance without growth retardation in rice
title_sort arabidopsis transcriptional regulator dpb3‐1 enhances heat stress tolerance without growth retardation in rice
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5067654/
https://www.ncbi.nlm.nih.gov/pubmed/26841113
http://dx.doi.org/10.1111/pbi.12535
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