Cargando…

The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar

Glutathione S-transferases (GSTs) play an essential role in plant cell detoxification and secondary metabolism. However, their accurate functions in the growth and response to abiotic stress in woody plants are still largely unknown. In this work, a Phi class Glutathione S-transferase encoding gene...

Descripción completa

Detalles Bibliográficos
Autores principales: Gao, Hongsheng, Yu, Chunyan, Liu, Ruichao, Li, Xiaoyan, Huang, Huiqing, Wang, Xueting, Zhang, Chao, Jiang, Ning, Li, Xiaofang, Cheng, Shuang, Zhang, Hongxia, Li, Bei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9569880/
https://www.ncbi.nlm.nih.gov/pubmed/36232609
http://dx.doi.org/10.3390/ijms231911288
_version_ 1784809965003735040
author Gao, Hongsheng
Yu, Chunyan
Liu, Ruichao
Li, Xiaoyan
Huang, Huiqing
Wang, Xueting
Zhang, Chao
Jiang, Ning
Li, Xiaofang
Cheng, Shuang
Zhang, Hongxia
Li, Bei
author_facet Gao, Hongsheng
Yu, Chunyan
Liu, Ruichao
Li, Xiaoyan
Huang, Huiqing
Wang, Xueting
Zhang, Chao
Jiang, Ning
Li, Xiaofang
Cheng, Shuang
Zhang, Hongxia
Li, Bei
author_sort Gao, Hongsheng
collection PubMed
description Glutathione S-transferases (GSTs) play an essential role in plant cell detoxification and secondary metabolism. However, their accurate functions in the growth and response to abiotic stress in woody plants are still largely unknown. In this work, a Phi class Glutathione S-transferase encoding gene PtGSTF1 was isolated from poplar (P. trichocarpa), and its biological functions in the regulation of biomass production and salt tolerance were investigated in transgenic poplar. PtGSTF1 was ubiquitously expressed in various tissues and organs, with a predominant expression in leaves and inducible expression by salt stress. Transgenic poplar overexpressing PtGSTF1 showed improved shoot growth, wood formation and improved salt tolerance, consistent with the increased xylem cell number and size under normal condition, and the optimized Na(+) and K(+) homeostasis and strengthened reactive oxygen species scavenging during salt stress. Further transcriptome analyses demonstrated that the expressions of genes related to hydrolase, cell wall modification, ion homeostasis and ROS scavenging were up- or down-regulated in transgenic plants. Our findings imply that PtGSTF1 improves both biomass production and salt tolerance through regulating hydrolase activity, cell wall modification, ion homeostasis and ROS scavenging in transgenic poplar, and that it can be considered as a useful gene candidate for the genetic breeding of new tree varieties with improved growth under salt stress conditions.
format Online
Article
Text
id pubmed-9569880
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-95698802022-10-17 The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar Gao, Hongsheng Yu, Chunyan Liu, Ruichao Li, Xiaoyan Huang, Huiqing Wang, Xueting Zhang, Chao Jiang, Ning Li, Xiaofang Cheng, Shuang Zhang, Hongxia Li, Bei Int J Mol Sci Article Glutathione S-transferases (GSTs) play an essential role in plant cell detoxification and secondary metabolism. However, their accurate functions in the growth and response to abiotic stress in woody plants are still largely unknown. In this work, a Phi class Glutathione S-transferase encoding gene PtGSTF1 was isolated from poplar (P. trichocarpa), and its biological functions in the regulation of biomass production and salt tolerance were investigated in transgenic poplar. PtGSTF1 was ubiquitously expressed in various tissues and organs, with a predominant expression in leaves and inducible expression by salt stress. Transgenic poplar overexpressing PtGSTF1 showed improved shoot growth, wood formation and improved salt tolerance, consistent with the increased xylem cell number and size under normal condition, and the optimized Na(+) and K(+) homeostasis and strengthened reactive oxygen species scavenging during salt stress. Further transcriptome analyses demonstrated that the expressions of genes related to hydrolase, cell wall modification, ion homeostasis and ROS scavenging were up- or down-regulated in transgenic plants. Our findings imply that PtGSTF1 improves both biomass production and salt tolerance through regulating hydrolase activity, cell wall modification, ion homeostasis and ROS scavenging in transgenic poplar, and that it can be considered as a useful gene candidate for the genetic breeding of new tree varieties with improved growth under salt stress conditions. MDPI 2022-09-25 /pmc/articles/PMC9569880/ /pubmed/36232609 http://dx.doi.org/10.3390/ijms231911288 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gao, Hongsheng
Yu, Chunyan
Liu, Ruichao
Li, Xiaoyan
Huang, Huiqing
Wang, Xueting
Zhang, Chao
Jiang, Ning
Li, Xiaofang
Cheng, Shuang
Zhang, Hongxia
Li, Bei
The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar
title The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar
title_full The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar
title_fullStr The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar
title_full_unstemmed The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar
title_short The Glutathione S-Transferase PtGSTF1 Improves Biomass Production and Salt Tolerance through Regulating Xylem Cell Proliferation, Ion Homeostasis and Reactive Oxygen Species Scavenging in Poplar
title_sort glutathione s-transferase ptgstf1 improves biomass production and salt tolerance through regulating xylem cell proliferation, ion homeostasis and reactive oxygen species scavenging in poplar
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9569880/
https://www.ncbi.nlm.nih.gov/pubmed/36232609
http://dx.doi.org/10.3390/ijms231911288
work_keys_str_mv AT gaohongsheng theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT yuchunyan theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT liuruichao theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT lixiaoyan theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT huanghuiqing theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT wangxueting theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT zhangchao theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT jiangning theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT lixiaofang theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT chengshuang theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT zhanghongxia theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT libei theglutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT gaohongsheng glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT yuchunyan glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT liuruichao glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT lixiaoyan glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT huanghuiqing glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT wangxueting glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT zhangchao glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT jiangning glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT lixiaofang glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT chengshuang glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT zhanghongxia glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar
AT libei glutathionestransferaseptgstf1improvesbiomassproductionandsalttolerancethroughregulatingxylemcellproliferationionhomeostasisandreactiveoxygenspeciesscavenginginpoplar