The transcription factor BpERF1A enhances drought tolerance in Betula platyphylla by activating dehydrin and ROS scavenging through interaction with BpRAV1
Findings establish a central role for the BpERF1A regulatory module in drought acclimation and highlight its synergistic interaction with BpRAV1, providing an effective strategy to enhance drought tolerance through improved ROS scavenging capacity.
Abstract
Abstract Although ERF transcription factors (TFs) play critical roles in abiotic stress tolerance, the molecular mechanisms underlying this role remain incompletely understood. This study identified BpERF1A in birch (Betula platyphylla) as a drought-responsive TF through co-expression regulatory network analysis. Expression of BpERF1A was stalwartly induced by drought stress, and drought treatment markedly boosted its promoter activity. Functional analyses demonstrated that overexpression of BpERF1A markedly improved drought tolerance compared with wild-type (WT) birch, whereas its repression increased drought sensitivity. Overexpression lines also exhibited higher antioxidant enzyme activities and proline content relative to WT. Chromatin immunoprecipitation-polymerase chain reaction, yeast one-hybrid and dual-luciferase (dual-LUC) assays confirmed that BpERF1A directly binds to G-box elements in the promoters of BpDHN (dehydrin) and BpAOS (allene oxide synthase), activating their transcription. Furthermore, overexpression of BpDHN/BpAOS enhanced drought tolerance and promoted reactive oxygen species (ROS) scavenging in transgenic plants. Protein–protein interaction analysis using bimolecular fluorescence complementation revealed that BpERF1A interacts with BpRAV1 to form a heterodimer, which further enhances BpERF1A binding to the BpDHN promoter and its transcriptional activation. Collectively, these findings establish a central role for the BpERF1A regulatory module in drought acclimation and highlight its synergistic interaction with BpRAV1, providing an effective strategy to enhance drought tolerance through improved ROS scavenging capacity.
Birch (Betula platyphylla) is an important native species widely distributed in northeastern China. It faces various adverse environmental challenges during its natural growth, including drought and herbivory. Here, we identified a transcriptional regulatory module in birch, BpZAT10-BpWRKY31, that increases drought t...
Wenfang Dong, Qingjun Xie, Wenjun Ma et al.· Horticulture Research· 0 citations
Drought tolerance in plants requires rapid conversion of water-deficit signals into protective transcriptional and epigenetic programs. Although ERF transcription factors (TFs) are central regulators of stress-responsive gene expression, how drought-induced kinase signaling is coupled to chromatin regulation and antiox...
Zhi-Bo Wang, Zi-Hang He, Xiu-Ru Zhang et al.· New Phytologist· 0 citations
It is demonstrated that the miR156/SPL module enhances drought tolerance in birch by modulating ROS homeostasis and lateral root development, providing novel molecular insights and a theoretical foundation for drought resistance research in birch trees.
Peng Huang, Hong-Rui Zhang, Jia-Qian An et al.· Plant Cell Reports· 0 citations
U-box-type E3 ubiquitin ligases (PUBs) are critical for signaling homeostasis and abiotic stress responses via substrate ubiquitination, yet their upstream transcriptional regulation remains largely unexplored, especially in alfalfa drought adaptation. Through GWAS of 171 alfalfa accessions, we identified a novel U-box...
Drought and salt stress severely constrain tomato growth and yield. The B-box (BBX) zinc finger transcription factor family is widely known for its roles in core developmental processes such as photomorphogenesis and flowering regulation, and its regulatory functions in abiotic stress responses have attracted increasin...
Wen-Qi Li, Jing-Min Wang, Hai-Qing Wang et al.· Gene· 0 citations
The positive regulatory role of the GhDREB2B-GhRNG1L module in cotton drought response is revealed, for the first time, providing a clear upstream regulatory target and theoretical basis for molecular breeding of drought-tolerant cotton.
Mengyang Wang, Li An, Xiaokang Fu et al.· Plants· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.