International Journal of Molecular Sciences (Sep 2022)

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

  • Hongsheng Gao,
  • Chunyan Yu,
  • Ruichao Liu,
  • Xiaoyan Li,
  • Huiqing Huang,
  • Xueting Wang,
  • Chao Zhang,
  • Ning Jiang,
  • Xiaofang Li,
  • Shuang Cheng,
  • Hongxia Zhang,
  • Bei Li

DOI
https://doi.org/10.3390/ijms231911288
Journal volume & issue
Vol. 23, no. 19
p. 11288

Abstract

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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.

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