Wang Kaituo, Li Chunhong, Cao Shifeng, Lei Changyi, Ji Nana, Zou Yanyu, Tan Meilin, Wang Jinsong, Zheng Yonghua, Gao Haiyan
College of Food Science and Technology, Nanjing Agricultural University, Nanjing, 210095, Jiangsu, P.R. China.
College of Biology and Food Engineering, Chongqing Three Gorges University, Chongqing, 404000, P.R. China.
Plant J. 2025 Jan;121(1):e17176. doi: 10.1111/tpj.17176. Epub 2024 Dec 2.
Vascular plant one-zinc finger (VOZ) transcription factors (TFs) play crucial roles in plant immunity. Nevertheless, how VOZs modulate defense signaling in response to elicitor-induced resistance is not fully understood. Here, the defense elicitor β-aminobutyric acid (BABA) resulted in the visible suppression of Rhizopus rot disease of peach fruit caused by Rhizopus stolonifer. Defense priming by BABA was notably associated with increased levels of salicylic acid (SA) and SA-dependent gene expression. Data-independent acquisition proteomic analysis revealed that two VOZ proteins (PpVOZ1 and PpVOZ2) were substantially upregulated in BABA-induced resistance (BABA-IR). Furthermore, the interaction of PpVOZ1 and PpVOZ2 and their potential target of the TEOSINTE-BRANCHED1/CYCLOIDEA/PCF (TCP)-family protein PpTCP2 screened from protein-protein interaction networks was confirmed by yeast two-hybrid (Y2H), luciferase complementation imaging and glutathione S-transferase pull-down assays. Furthermore, subcellular localization, yeast one-hybrid, electrophoretic mobility shift assay and dual-luciferase reporter assays demonstrated that nuclear localization of both PpVOZ1 and PpVOZ2 was critical for their contribution to BABA-IR, as these proteins potentiated the PpTCP2-mediated transcriptional activation of isochorismate synthase genes (ICS1/2). The overexpression of both PpVOZ1 and PpVOZ2 could activate the transcription of SA-dependent genes and provide disease resistance in transgenic Arabidopsis. In contrast, the ppvoz1 and ppvoz2 loss-of-function mutations and the voz1 voz2 double mutation attenuated BABA-IR against R. stolonifer. Therefore, the three identified positive TFs, PpVOZ1, PpVOZ2, and PpTCP2, synergistically contribute to the BABA-activated priming of systemic acquired resistance in postharvest peach fruit by a VOZ-TCP-ICS regulatory module.
维管植物单锌指(VOZ)转录因子在植物免疫中发挥着关键作用。然而,VOZ如何响应激发子诱导的抗性来调节防御信号传导尚未完全清楚。在此,防御激发子β-氨基丁酸(BABA)导致由匍枝根霉引起的桃果实根霉腐烂病明显受到抑制。BABA引发的防御作用显著与水杨酸(SA)水平的升高和SA依赖性基因表达相关。非数据依赖型采集蛋白质组学分析表明,两种VOZ蛋白(PpVOZ1和PpVOZ2)在BABA诱导的抗性(BABA-IR)中显著上调。此外,通过酵母双杂交(Y2H)、荧光素酶互补成像和谷胱甘肽S-转移酶下拉试验证实了PpVOZ1和PpVOZ2之间的相互作用以及它们从蛋白质-蛋白质相互作用网络中筛选出的TEOSINTE-BRANCHED1/CYCLOIDEA/PCF(TCP)家族蛋白PpTCP2的潜在靶点。此外,亚细胞定位、酵母单杂交、电泳迁移率变动分析和双荧光素酶报告试验表明,PpVOZ1和PpVOZ2的核定位对它们在BABA-IR中的作用至关重要,因为这些蛋白增强了PpTCP2介导的异分支酸合酶基因(ICS1/2)的转录激活。PpVOZ1和PpVOZ2的过表达均可激活SA依赖性基因转录并在转基因拟南芥中提供抗病性。相反,ppvoz1和ppvoz2功能缺失突变以及voz1 voz2双突变减弱了BABA对匍枝根霉的抗性。因此,鉴定出的三个正向转录因子PpVOZ1、PpVOZ2和PpTCP2通过VOZ-TCP-ICS调控模块协同促进采后桃果实中BABA激活的系统获得性抗性引发。