Related Experiment Video
Updated: Jan 7, 2026

Analysis of Effect of Compound Salt Stress on Seed Germination and Salt Tolerance Analysis of Pepper Capsicum annuum L.
Published on: November 30, 2022
Populus euphratica PeNAC029 suppresses phospholipase D and phosphatidic acid signaling under salt stress
Ziyan Zhao1, Rui Shi1, Ying Zhang1
1Key Laboratory of Forest and Flower Genetics and Breeding of Ministry of Education, College of Biological Science and Biotechnology, Beijing Forestry University, Beijing, 100083, China.
Abstract:
Populus euphratica phospholipase Dδ (PePLDδ) was previously shown to mediate Na+ and reactive oxygen species (ROS) homeostasis during salt stress. To explore the transcriptional regulation of PLDs in salt response, DNA pull-down and mass spectrometry was used to identify the potential transcription factor for binding the promoter of PePLDδ. The target transcription factor PeNAC029 contains a conserved NAC transcription repression domain (NARD-like domain) with LVFY motif in the N-terminal from 102 to 136 amino acid residues. The PeNAC029-regulated expression of PLDs were investigated in Arabidopsis and P. euphratica, the two contrasting species differing in salt tolerance. PeNAC029 overexpression increased the sensitivity to salt stress in the two species, attributed to downregulated expression of PLD family genes, diminished PLD activity and lower phosphatidic acid (PA) levels in PeNAC029-transgenic Arabidopsis and P. euphratica. PeNAC029 was discovered to bind to a particular cis-element (ACGT motif) in the promoters and suppress the expression of AtPLDδ, PePLDα3, and PePLDβ2 under saline conditions. The PeNAC029 repression of PLD-PA signaling adversely affects the plant capacity to maintain Na+ homeostasis by inhibiting the expression of Na+/H+ antiporter genes AtSOS1 and PeSOS1 under salt conditions. Furthermore, PeNAC029-repressed PLD-PA signaling also hinders the ability to maintain ROS homeostasis by inhibiting the transcription and activities of antioxidant enzymes during salt stress. Notably, PeNAC029 expression was downregulated in response to prolonged NaCl exposure, potentially allowing the salt-resistant poplar to mitigate the detrimental effects of salinity. We propose a transcriptional regulatory network to highlight the salt response of PeNAC029-transgenic Arabidopsis and P. euphratica.
Related Concept Videos
Responses to Salt Stress
Adaptations that Reduce Water Loss
Responses to Drought and Flooding
Regulation of Transpiration by Stomata
Other Stress Responses in Bacteria
Stringent Response in E. coli

