Institute of Virology and Biotechnology, Zhejiang Academy of Agricultural Sciences, Hangzhou 310021, China.
State Key Laboratory for Managing Biotic and Chemical Threats to the Quality and Safety of Agro-Products, Zhejiang Academy of Agricultural Sciences, Hangzhou 310021, China.
Int J Mol Sci. 2023 Jul 7;24(13):11190. doi: 10.3390/ijms241311190.
(WUS) is a crucial transcription factor in regulating plant stem cell development, and its expression can also improve genetic transformation. However, the ectopic expression of WUS always causes pleiotropic effects during genetic transformation, making it important to understand the regulatory mechanisms underlying these phenomena. In our study, we found that the transient expression of the maize WUS ortholog caused severe leaf necrosis in . We performed transcriptomic and non-target metabolomic analyses on tobacco leaves during healthy to wilted states after transient overexpression. Transcriptomic analysis revealed that transformation caused active metabolism of inositol trisphosphate and glycerol-3-phosphate, while also upregulating plant hormone signaling and downregulating photosystem and protein folding pathways. Metabolomic analysis mainly identified changes in the synthesis of phenylpropanoid compounds and various lipid classes, including steroid synthesis. In addition, transcription factors such as ethylene-responsive factors (ERFs), the basic helix-loop-helix (bHLH) factors, and MYBs were found to be regulated by . By integrating these findings, we developed a WUS regulatory model that includes plant hormone accumulation, stress responses, lipid remodeling, and leaf necrosis. Our study sheds light on the mechanisms underlying WUS ectopic expression causing leaf necrosis and may inform the development of future genetic transformation strategies.
(WUS)是调节植物干细胞发育的关键转录因子,其表达也可以提高基因转化效率。然而,WUS 的异位表达在基因转化过程中总是会引起多效性效应,因此了解这些现象的调控机制非常重要。在我们的研究中,我们发现玉米 WUS 同源物的瞬时表达导致 出现严重的叶片坏死。我们对 瞬时过表达后从健康到萎蔫状态的烟草叶片进行了转录组和非靶向代谢组分析。转录组分析表明, 转化导致肌醇三磷酸和甘油-3-磷酸的代谢活性增强,同时上调植物激素信号通路,下调光系统和蛋白质折叠途径。代谢组分析主要鉴定了苯丙烷类化合物和各种脂质类(包括类固醇合成)的合成变化。此外,还发现转录因子如乙烯响应因子(ERFs)、碱性螺旋-环-螺旋(bHLH)因子和 MYB 受 调控。通过整合这些发现,我们构建了一个包括植物激素积累、应激反应、脂质重塑和叶片坏死的 WUS 调控模型。我们的研究揭示了 WUS 异位表达导致叶片坏死的机制,为未来的基因转化策略提供了信息。