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Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar

Soil salinity is an important determinant of crop productivity and triggers salt stress response pathways in plants. The salt stress response is controlled by transcriptional regulatory networks that maintain regulatory homeostasis through combinations of transcription factor (TF)–DNA and TF–TF inte...

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Autores principales: Xu, Weijie, Wang, Yue, Xie, Jianbo, Tan, Shuxian, Wang, Haofei, Zhao, Yiyang, Liu, Qing, El-Kassaby, Yousry A, Zhang, Deqiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10069893/
https://www.ncbi.nlm.nih.gov/pubmed/36567515
http://dx.doi.org/10.1093/plphys/kiac600
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author Xu, Weijie
Wang, Yue
Xie, Jianbo
Tan, Shuxian
Wang, Haofei
Zhao, Yiyang
Liu, Qing
El-Kassaby, Yousry A
Zhang, Deqiang
author_facet Xu, Weijie
Wang, Yue
Xie, Jianbo
Tan, Shuxian
Wang, Haofei
Zhao, Yiyang
Liu, Qing
El-Kassaby, Yousry A
Zhang, Deqiang
author_sort Xu, Weijie
collection PubMed
description Soil salinity is an important determinant of crop productivity and triggers salt stress response pathways in plants. The salt stress response is controlled by transcriptional regulatory networks that maintain regulatory homeostasis through combinations of transcription factor (TF)–DNA and TF–TF interactions. We investigated the transcriptome of poplar 84 K (Populus alba × Populus glandulosa) under salt stress using samples collected at 4- or 6-h intervals within 2 days of salt stress treatment. We detected 24,973 differentially expressed genes, including 2,231 TFs that might be responsive to salt stress. To explore these interactions and targets of TFs in perennial woody plants, we combined gene regulatory networks, DNA affinity purification sequencing, yeast two-hybrid-sequencing, and multi-gene association approaches. Growth-regulating factor 15 (PagGRF15) and its target, high-affinity K(+) transporter 6 (PagHAK6), were identified as an important regulatory module in the salt stress response. Overexpression of PagGRF15 and PagHAK6 in transgenic lines improved salt tolerance by enhancing Na(+) transport and modulating H(2)O(2) accumulation in poplar. Yeast two-hybrid assays identified more than 420 PagGRF15-interacting proteins, including ETHYLENE RESPONSE FACTOR TFs and a zinc finger protein (C2H2) that are produced in response to a variety of phytohormones and environmental signals and are likely involved in abiotic stress. Therefore, our findings demonstrate that PagGRF15 is a multifunctional TF involved in growth, development, and salt stress tolerance, highlighting the capability of a multifaceted approach in identifying regulatory nodes in plants.
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spelling pubmed-100698932023-04-04 Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar Xu, Weijie Wang, Yue Xie, Jianbo Tan, Shuxian Wang, Haofei Zhao, Yiyang Liu, Qing El-Kassaby, Yousry A Zhang, Deqiang Plant Physiol Research Article Soil salinity is an important determinant of crop productivity and triggers salt stress response pathways in plants. The salt stress response is controlled by transcriptional regulatory networks that maintain regulatory homeostasis through combinations of transcription factor (TF)–DNA and TF–TF interactions. We investigated the transcriptome of poplar 84 K (Populus alba × Populus glandulosa) under salt stress using samples collected at 4- or 6-h intervals within 2 days of salt stress treatment. We detected 24,973 differentially expressed genes, including 2,231 TFs that might be responsive to salt stress. To explore these interactions and targets of TFs in perennial woody plants, we combined gene regulatory networks, DNA affinity purification sequencing, yeast two-hybrid-sequencing, and multi-gene association approaches. Growth-regulating factor 15 (PagGRF15) and its target, high-affinity K(+) transporter 6 (PagHAK6), were identified as an important regulatory module in the salt stress response. Overexpression of PagGRF15 and PagHAK6 in transgenic lines improved salt tolerance by enhancing Na(+) transport and modulating H(2)O(2) accumulation in poplar. Yeast two-hybrid assays identified more than 420 PagGRF15-interacting proteins, including ETHYLENE RESPONSE FACTOR TFs and a zinc finger protein (C2H2) that are produced in response to a variety of phytohormones and environmental signals and are likely involved in abiotic stress. Therefore, our findings demonstrate that PagGRF15 is a multifunctional TF involved in growth, development, and salt stress tolerance, highlighting the capability of a multifaceted approach in identifying regulatory nodes in plants. Oxford University Press 2022-12-26 /pmc/articles/PMC10069893/ /pubmed/36567515 http://dx.doi.org/10.1093/plphys/kiac600 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of American Society of Plant Biologists. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Xu, Weijie
Wang, Yue
Xie, Jianbo
Tan, Shuxian
Wang, Haofei
Zhao, Yiyang
Liu, Qing
El-Kassaby, Yousry A
Zhang, Deqiang
Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar
title Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar
title_full Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar
title_fullStr Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar
title_full_unstemmed Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar
title_short Growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar
title_sort growth-regulating factor 15-mediated gene regulatory network enhances salt tolerance in poplar
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10069893/
https://www.ncbi.nlm.nih.gov/pubmed/36567515
http://dx.doi.org/10.1093/plphys/kiac600
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