Yang Wen, Li Renhan, Feng Man, Qin Zhen, Zhang Yumei, Peng Huiru, Yao Yingyin, Hu Zhaorong, Ni Zhongfu, Song Wen, Qin Feng, Takahashi Fuminori, Sun Qixin, Xin Mingming
China Agricultural University, Beijing 100193, China.
Qingdao Agricultural University, Qingdao 266109, China.
Sci Adv. 2025 Sep 5;11(36):eady1949. doi: 10.1126/sciadv.ady1949. Epub 2025 Sep 3.
Drought stress poses an environmental challenge affecting crop yield. Small signaling peptides play crucial roles in the regulation of stress responses in plants. Here, we unveil that the TaCEP15 peptide interacts with the leucine-rich repeat receptor-like kinase TaCEPRL. Knockout of or increases primary root length and enhances drought tolerance in wheat. TaCEPRL interacts with and phosphorylates TaSnRK1α, leading to the degradation of TaSnRK1α. The presence of TaCEP15 intensifies the phosphorylation and degradation of TaSnRK1α. Consistently, overexpressing α boosts primary root elongation and augments drought tolerance. In addition, we identify the transcription factor TabZIP9, which binds to the promoter and suppresses its transcription. A-to-T substitution in the promoter decreases the binding affinity of TabZIP9. As expected, transgenic plants with knockout or overexpression exhibit noteworthy changes in primary root length and drought tolerance. Our findings shed light on the importance of the peptide signaling pathway in regulating primary root length and responding to drought stress in wheat.
干旱胁迫构成了影响作物产量的环境挑战。小信号肽在植物应激反应的调节中发挥着关键作用。在此,我们揭示TaCEP15肽与富含亮氨酸重复序列的受体样激酶TaCEPRL相互作用。敲除或增加小麦的初生根长度并增强其耐旱性。TaCEPRL与TaSnRK1α相互作用并使其磷酸化,导致TaSnRK1α降解。TaCEP15的存在增强了TaSnRK1α的磷酸化和降解。一致地,过表达α促进初生根伸长并增强耐旱性。此外,我们鉴定了转录因子TabZIP9,它与启动子结合并抑制其转录。启动子中的A到T替换降低了TabZIP9的结合亲和力。正如预期的那样,敲除或过表达的转基因植物在初生根长度和耐旱性方面表现出显著变化。我们的研究结果揭示了肽信号通路在调节小麦初生根长度和应对干旱胁迫中的重要性。