Yuan Chao, He Lilong, Chen Donghua, Gao Jianwei, Zhang Wei
Key Laboratory of Plant Development and Environmental Adaption Biology, Ministry of Education, School of Life Science, Shandong University, Qingdao, China.
Shandong Key Laboratory of Greenhouse Vegetable Biology, Institute of Vegetables and Flowers, Shandong Academy of Agricultural Sciences, Jinan, China.
Plant Signal Behav. 2025 Dec;20(1):2526765. doi: 10.1080/15592324.2025.2526765. Epub 2025 Jul 14.
Aluminum stress is a critical limiting factor in crop productivity, as it rapidly inhibits root elongation, impairs water and nutrient uptake, and ultimately leads to substantial yield reductions. To address this challenge, it is essential to elucidate the mechanisms underlying plant aluminum toxicity and tolerance, thereby enhancing crop resilience to aluminum stress. In this study, we employed transcriptomic and metabolomic analyses to identify the protein TSJT1, which is induced by aluminum exposure and plays an essential role in the plant's response to aluminum. Notably, expression was significantly up-regulated in mpc1 mutants; furthermore, overexpression of markedly enhanced the plant's resistance to aluminum stress. Our integrated analysis also revealed significant differences in glutamate metabolites as well as a protein encoding glutamate synthetase during this process. Through exogenous glutamate supplementation, we demonstrated that glutamate plays a critical role in the MPC1-mediated response to aluminum stress.
铝胁迫是作物生产力的一个关键限制因素,因为它会迅速抑制根系伸长,损害水分和养分吸收,并最终导致大幅减产。为应对这一挑战,阐明植物铝毒性和耐受性的潜在机制至关重要,从而提高作物对铝胁迫的恢复力。在本研究中,我们采用转录组学和代谢组学分析来鉴定蛋白质TSJT1,它由铝暴露诱导,并在植物对铝的反应中起重要作用。值得注意的是,其在mpc1突变体中的表达显著上调;此外,TSJT1的过表达显著增强了植物对铝胁迫的抗性。我们的综合分析还揭示了在此过程中谷氨酸代谢物以及编码谷氨酸合成酶的一种蛋白质存在显著差异。通过外源补充谷氨酸,我们证明谷氨酸在MPC1介导的铝胁迫反应中起关键作用。