Rice Research Institute, Collaborative Innovation Center for Genetic Improvement and High Quality and Efficiency Production of Northeast Japonica Rice in China, Shenyang Agricultural University, Shenyang, 110866, China.
BMC Plant Biol. 2024 Jun 28;24(1):618. doi: 10.1186/s12870-024-05298-9.
In acidic soils, aluminum (Al) toxicity inhibits the growth and development of plant roots and affects nutrient and water absorption, leading to reduced yield and quality. Therefore, it is crucial to investigate and identify candidate genes for Al tolerance and elucidate their physiological and molecular mechanisms under Al stress. In this study, we identified a new gene OsAlR3 regulating Al tolerance, and analyzed its mechanism from physiological, transcriptional and metabolic levels. Compared with the WT, malondialdehyde (MDA) and hydrogen peroxide (HO) content were significantly increased, superoxide dismutase (SOD) activity and citric acid (CA) content were significantly decreased in the osalr3 mutant lines when exposed to Al stress. Under Al stress, the osalr3 exhibited decreased expression of antioxidant-related genes and lower organic acid content compared with WT. Integrated transcriptome and metabolome analysis showed the phenylpropanoid biosynthetic pathway plays an important role in OsAlR3-mediated Al tolerance. Exogenous CA and oxalic acid (OA) could increase total root length and enhance the antioxidant capacity in the mutant lines under Al stress. Conclusively, we found a new gene OsAlR3 that positively regulates Al tolerance by promoting the chelation of Al ions through the secretion of organic acids, and increasing the expression of antioxidant genes.
在酸性土壤中,铝(Al)毒性会抑制植物根系的生长和发育,并影响养分和水分的吸收,从而导致产量和质量下降。因此,研究和鉴定耐铝候选基因,并阐明它们在 Al 胁迫下的生理和分子机制至关重要。在这项研究中,我们鉴定了一个新的基因 OsAlR3,它可以调节 Al 耐受性,并从生理、转录和代谢水平分析其机制。与 WT 相比,osalr3 突变体在暴露于 Al 胁迫时丙二醛(MDA)和过氧化氢(HO)的含量显著增加,超氧化物歧化酶(SOD)活性和柠檬酸(CA)的含量显著降低。在 Al 胁迫下,osalr3 表现出抗氧化相关基因表达降低和有机酸含量低于 WT。整合转录组和代谢组分析表明,苯丙烷生物合成途径在 OsAlR3 介导的 Al 耐受性中起重要作用。在 Al 胁迫下,外源 CA 和草酸(OA)可以增加总根长,并增强突变体的抗氧化能力。总之,我们发现了一个新的基因 OsAlR3,它通过分泌有机酸螯合 Al 离子,并增加抗氧化基因的表达,正向调节 Al 耐受性。