Chen Kai, Tong Shaofei, Huang Heng, Li Jiacong, Shi Wensen, Li Yiling, Wang Weiwei, Xu Li, Luo Tiannan, Zhao Lulu, Zhang Lushui, Bai Qiuxian, Liu Jianquan, Ma Tao, Jiang Yuanzhong
Key Laboratory of Bio-Resource and Eco-Environment of Ministry of Education, College of Life Sciences, State Key Laboratory of Hydraulics and Mountain River Engineering, Sichuan University, Chengdu 610065, China.
Key Laboratory of Bio-Resource and Eco-Environment of Ministry of Education, College of Life Sciences, State Key Laboratory of Hydraulics and Mountain River Engineering, Sichuan University, Chengdu 610065, China; College of Forestry, Northwest A&F University, Yangling, Shaanxi Province 712100, China.
Cell Rep. 2025 Jun 24;44(6):115770. doi: 10.1016/j.celrep.2025.115770. Epub 2025 Jun 5.
Drought severely limits the growth and development of perennial trees, which activate the abscisic acid (ABA) signaling pathway to cope with this condition. Despite its importance, the transcriptional regulatory mechanisms associated with ABA in poplars remain poorly understood. In this study, we identified HIPP26-like (HIPP26L), a heavy-metal-associated isoprenylated plant protein gene in poplar, which localizes to the cytomembrane, cytoplasm, and nucleus under normal conditions but accumulates in the nucleus in response to ABA and mannitol treatment. Overexpression of HIPP26L increased drought tolerance in poplar, whereas silencing the gene reduced drought resistance. Biochemical assays, double-transgenic analysis, and multi-omics approaches revealed that the HIPP26L-SRMT (salt-responsive MYB transcription factor [TF]) complex modulates the transcription of ABA- and drought-responsive genes. Moreover, nuclear factor Y subunit C9 (NF-YC9) is required for ABA- and mannitol-induced translocation of HIPP26L. These findings demonstrate that the HIPP26L-NF-YC9-SRMT module plays a critical role in ABA signaling and transcriptional regulation, offering new molecular insights into poplar's adaptive responses to drought.
干旱严重限制多年生树木的生长发育,树木会激活脱落酸(ABA)信号通路来应对这种情况。尽管ABA很重要,但杨树中与ABA相关的转录调控机制仍知之甚少。在本研究中,我们鉴定了杨树中一种与重金属相关的异戊烯化植物蛋白基因HIPP26样蛋白(HIPP26L),在正常条件下它定位于细胞膜、细胞质和细胞核,但在ABA和甘露醇处理下会在细胞核中积累。过表达HIPP26L可提高杨树的耐旱性,而沉默该基因则降低抗旱性。生化分析、双转基因分析和多组学方法表明,HIPP26L-SRMT(盐响应MYB转录因子[TF])复合物调节ABA和干旱响应基因的转录。此外,核因子Y亚基C9(NF-YC9)是ABA和甘露醇诱导的HIPP26L易位所必需的。这些发现表明,HIPP26L-NF-YC9-SRMT模块在ABA信号传导和转录调控中起关键作用,为杨树对干旱的适应性反应提供了新的分子见解。