Wang Qing, Wang Da-Ru, Liu Xin, Chen Guo-Lin, Li He-Dan, Ji Wen-Long, Qu Man-Shu, Yang Rui, You Chun-Xiang
Apple technology innovation center of Shandong Province, Shandong Collaborative Innovation Center of Fruit & Vegetable Quality and Efficient Production, National Key Laboratory of Wheat Improvement, College of Horticulture Science and Engineering, Shandong Agricultural University, Tai-An, 271018, Shandong, China.
Apple technology innovation center of Shandong Province, Shandong Collaborative Innovation Center of Fruit & Vegetable Quality and Efficient Production, National Key Laboratory of Wheat Improvement, College of Horticulture Science and Engineering, Shandong Agricultural University, Tai-An, 271018, Shandong, China.
J Plant Physiol. 2025 Feb;305:154415. doi: 10.1016/j.jplph.2024.154415. Epub 2024 Dec 24.
Plants are vulnerable to various abiotic stresses in the natural growing environment, among which salt stress can seriously affect plant growth, development and yield. Protein families containing trimeric tetrapeptide repeat sequences have a crucial function in plant resilience to non-living factors and participate in multiple aspects of plant growth and development. For this investigation, we acquired the apple MdTPR16 gene. The research demonstrated that ectopic expression of MdTPR16 in Arabidopsis resulted in increased resistance to salt stress. This was observed by a drop in malondialdehyde (MDA) levels and a reduction in the buildup of reactive oxygen species (ROS) under salt stress conditions. Meanwhile, apple calli, apple seedlings and apple rooting seedlings overexpressing MdTPR16 showed reduced sensitivity to salt stress. The results indicate that MdTPR16 has a critical positive regulatory function under salt stress, which may lay the foundation for a deeper understanding of the molecular pathways of salt tolerance in apple.
植物在自然生长环境中易受各种非生物胁迫,其中盐胁迫会严重影响植物的生长、发育和产量。含有三聚体四肽重复序列的蛋白质家族在植物对非生物因子的抗性中起关键作用,并参与植物生长发育的多个方面。在本研究中,我们获得了苹果MdTPR16基因。研究表明,MdTPR16在拟南芥中的异位表达导致对盐胁迫的抗性增强。这一现象表现为在盐胁迫条件下丙二醛(MDA)水平下降以及活性氧(ROS)积累减少。同时,过表达MdTPR16的苹果愈伤组织、苹果幼苗和苹果生根苗对盐胁迫的敏感性降低。结果表明,MdTPR16在盐胁迫下具有关键的正向调节功能,这可能为深入了解苹果耐盐分子途径奠定基础。