State Key Laboratory of Crop Stress Biology for Arid Areas, College of Life Science, Northwest A&F University, Yangling, Shaanxi, 712100, China.
State Key Laboratory of Crop Stress Biology for Arid Areas, Northwest A&F University, Yangling, Shaanxi, 712100, China.
New Phytol. 2023 Jan;237(1):232-250. doi: 10.1111/nph.18549. Epub 2022 Nov 15.
Drought stress limits wheat production and threatens food security world-wide. While ethylene-responsive factors (ERFs) are known to regulate plant response to drought stress, the regulatory mechanisms responsible for a tolerant phenotype remain unclear. Here, we describe the positive regulatory role of TaERF87 in mediating wheat tolerance to drought stress. TaERF87 overexpression (OE) enhances drought tolerance, while silencing leads to drought sensitivity in wheat. RNA sequencing with biochemical assays revealed that TaERF87 activates the expression of the proline biosynthesis genes TaP5CS1 and TaP5CR1 via direct binding to GCC-box elements. Furthermore, proline accumulates to higher levels in TaERF87- and TaP5CS1-OE lines than that in wild-type plants under well-watered and drought stress conditions concomitantly with enhanced drought tolerance in these transgenic lines. Moreover, the interaction between TaERF87 and the bHLH transcription factor TaAKS1 synergistically enhances TaP5CS1 and TaP5CR1 transcriptional activation. TaAKS1 OE also increases wheat drought tolerance by promoting proline accumulation. Additionally, our findings verified that TaERF87 and TaAKS1 are targets of abscisic acid-responsive element binding factor 2 (TaABF2). Together, our study elucidates the mechanisms underlying a positive response to drought stress mediated by the TaABF2-TaERF87/TaAKS1-TaP5CS1/TaP5CR1 module, and identifies candidate genes for the development of elite drought-tolerant wheat varieties.
干旱胁迫限制了小麦的产量,威胁到全球的粮食安全。虽然乙烯响应因子(ERFs)被认为可以调节植物对干旱胁迫的反应,但负责耐受表型的调控机制仍不清楚。在这里,我们描述了 TaERF87 在介导小麦对干旱胁迫的耐受性中的正向调节作用。TaERF87 的过表达(OE)增强了小麦的耐旱性,而沉默则导致小麦对干旱敏感。RNA 测序和生化分析表明,TaERF87 通过直接结合 GCC 盒元件,激活脯氨酸生物合成基因 TaP5CS1 和 TaP5CR1 的表达。此外,在正常供水和干旱胁迫条件下,TaERF87 和 TaP5CS1-OE 系中的脯氨酸积累水平高于野生型植物,同时这些转基因系的耐旱性增强。此外,TaERF87 与 bHLH 转录因子 TaAKS1 之间的相互作用协同增强了 TaP5CS1 和 TaP5CR1 的转录激活。TaAKS1 OE 还通过促进脯氨酸积累提高小麦的耐旱性。此外,我们的研究结果证实 TaERF87 和 TaAKS1 是脱落酸响应元件结合因子 2(TaABF2)的靶标。总之,我们的研究阐明了 TaABF2-TaERF87/TaAKS1-TaP5CS1/TaP5CR1 模块介导的对干旱胁迫的正向反应的机制,并鉴定了用于开发优良耐旱小麦品种的候选基因。