Ziyan Zhao, Ying Zhang, Caixia Yan, Kaiyue Dong, Jing Li, Kexin Yin, Zhe Liu, Rui Shi, Jianfei Xu, Rui Zhao, Nan Zhao, Shaoliang Chen
Populus euphratica downregulates the transcription factor PeNAC029 during prolonged salinity, thereby promoting long-term acclimation to salt stress. To elucidate this regulatory network, we identified PeIDD5, an INDETERMINATE DOMAIN (IDD) family member, as a direct transcriptional activator of PeNAC029. This study investigates the role of the PeIDD5-NAC029 transcriptional module in the salt tolerance of two contrasting poplars, P. euphratica (salt-tolerant) and P. × canescens (salt-sensitive). PeIDD5 directly binds the conserved cis-element TTTGTCC in the promoter regions of PeNAC029 and PcNAC029. In P. × canescens, PeIDD5 overexpression increased PcNAC029 transcript abundance, whereas virus-induced gene silencing of PeIDD5 in P. euphratica leaves reduced PeNAC029 transcript levels. Notably, overexpression of PeIDD5 or PeNAC029 in P. × canescens reduced phospholipase D (PLD) and phosphatidic acid (PA) levels, impairing growth and photosynthesis, increasing Na+ accumulation, and diminishing antioxidant activity relative to wild-type controls after treatment with 150 mM NaCl for 15 d. Conversely, silencing the PeIDD5-PeNAC029 module in P. euphratica leaves enhanced PLD activity and PA accumulation, thereby promoting Na+ and ROS homeostasis under short-term salt stress (150 mM NaCl, 48 h). Thus, PeIDD5 activates PeNAC029 and PcNAC029, suppressing PLD activity and reducing PA accumulation, which disrupts ionic and redox homeostasis in salt-stressed poplars. In P. euphratica, salt-induced suppression of PeIDD5 reduces PeNAC029 levels, thereby promoting long-term salt adaptation. Therefore, genetic engineering to suppress the PeIDD5-NAC029 regulatory pathway represents a promising approach to developing salt-tolerant poplars.