Hong Min Jeong, Ko Chan Seop, Kim Dae Yeon
Advanced Radiation Technology Institute, Korea Atomic Energy Research Institute, 29 Geumgu, Jeongeup, 56212 Republic of Korea.
Department of Plant Resources, College of Industrial Sciences, Kongju National University, 54 Daehak-Ro, Yesan-Eup, 32439 Republic of Korea.
Physiol Mol Biol Plants. 2025 Feb;31(2):233-246. doi: 10.1007/s12298-025-01557-7. Epub 2025 Feb 10.
, a wheat U-box E3 ligase gene, was isolated and characterized for its role in drought stress tolerance. The gene encodes a 531 amino acid protein with a U-box domain at the N-terminal and a WD40 domain at the C-terminal. Subcellular localization studies using TaPRP19-GFP fusion in confirmed predominant nucleus localization. In vitro ubiquitination assays demonstrated that possesses E3 ligase activity. RT-qPCR analysis revealed higher expression of in wheat leaves, which increased under PEG, mannitol, and ABA treatments. Transgenic lines overexpressing exhibited improved seed germination rates and root elongation under mannitol and ABA stress, as well as enhanced survival rates under drought conditions compared to wild-type (WT) plants. Additionally, these transgenic lines showed upregulated expression of antioxidant-related and drought-marker genes, reduced ROS accumulation, and increased activities of antioxidant enzymes, suggesting enhanced oxidative stress mitigation. These findings highlight as a potential target for developing drought-tolerant crops, providing insights into its functional mechanisms and paving the way for future genetic engineering applications in wheat and other crops.
The online version contains supplementary material available at 10.1007/s12298-025-01557-7.
从小麦中分离出一个U-box E3连接酶基因,并对其在耐旱胁迫中的作用进行了表征。该基因编码一个531个氨基酸的蛋白质,在N端有一个U-box结构域,在C端有一个WD40结构域。使用TaPRP19-GFP融合蛋白在[具体实验体系]中的亚细胞定位研究证实其主要定位于细胞核。体外泛素化分析表明[该基因]具有E3连接酶活性。RT-qPCR分析显示该基因在小麦叶片中表达较高,在PEG、甘露醇和ABA处理下表达增加。与野生型(WT)植株相比,过表达[该基因]的转基因株系在甘露醇和ABA胁迫下表现出更高的种子发芽率和根伸长,以及在干旱条件下更高的存活率。此外,这些转基因株系显示抗氧化相关基因和干旱标记基因的表达上调,活性氧积累减少,抗氧化酶活性增加,表明氧化应激缓解能力增强。这些发现突出了[该基因]作为开发耐旱作物的潜在靶点,为其功能机制提供了见解,并为未来在小麦和其他作物中的基因工程应用铺平了道路。
在线版本包含可在10.1007/s12298-025-01557-7获取的补充材料。