The protective roles of boron against copper excess in citrus roots: Insights from physiology, transcriptome, and metabolome

被引:0
作者
Chen, Xu-Feng [1 ]
Huang, Wei-Tao [1 ]
Shen, Qian [1 ]
Huang, Wei-Lin [1 ]
Lu, Fei [1 ]
Yang, Lin-Tong [1 ]
Lai, Ning-Wei [1 ]
Huang, Zeng-Rong [1 ]
Chen, Li-Song [1 ]
机构
[1] Fujian Agr & Forestry Univ, Coll Resources & Environm, 15 Shangxiadian Rd, Fuzhou 350002, Peoples R China
关键词
Cell wall; Methylglyoxal; Primary metabolism; Reactive oxygen species; Secondary metabolism; RICE ORYZA-SATIVA; OXIDATIVE STRESS; CARBOHYDRATE-METABOLISM; ARABIDOPSIS; TOLERANCE; MEMBRANES; L; BIOSYNTHESIS; ACCUMULATION; EXPRESSION;
D O I
10.1016/j.plaphy.2025.109588
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Boron (B) deficiency and copper (Cu) excess are common problems in citrus orchard soils. Citrus sinensis seedlings were exposed to 25 (B25) or 2.5 (B2.5) mu M H3BO3 and 0.5 (Cu0.5) or 350 (Cu350) mu M CuCl3 for 24 weeks. Cu350 upregulated 2210 (1012) genes and 482 (341) metabolites and downregulated 3201 (695) genes and 175 (43) metabolites in roots at B2.5 (B25). Further analysis showed that the B-mediated mitigation of Cu toxicity in roots involved the coordination of the following aspects: (a) enhancing the ability to maintain cell wall and plasma membrane stability and function; (b) lowering the impairment of Cu350 to primary and secondary metabolisms and enhancing their adaptability to Cu350; and (c) alleviating Cu350-induced oxidative stress via the coordination of reactive oxygen species (ROS) and methylglyoxal detoxification systems. Cu350 upregulated the abundances of some saccharides, amino acids and derivatives, phospholipids, secondary metabolites, and vitamins, and the expression of several ROS detoxification-related genes in roots of B2.5-treated seedlings (RB2.5), but these adaptive responses did not prevent RB2.5 from Cu-toxicity (oxidative damage). The study identified some genes, metabolites, and metabolic processes/pathways possibly involved in root Cu tolerance. Additionally, the responses of gene expression and metabolite profiling to Cu-B treatments differed between leaves and roots. Therefore, this study provided novel information for B to reduce Cu toxicity in roots and might contribute to the development of soil amendments targeting Cu excess in citrus and other crops.
引用
收藏
页数:19
相关论文
共 95 条
  • [71] Sharma R., Bhardwaj R., Thukral A.K., Al-Huqail A.A., Siddiqui M.H., Ahmad P., Oxidative stress mitigation and initiation of antioxidant and osmoprotectant responses mediated by ascorbic acid in Brassica juncea L. subjected to copper (II) stress, Ecotoxicol. Environ. Saf., 182, (2019)
  • [72] Song Y., Zhou L., Yang S., Wang C., Zhang T., Wang J., Dose-dependent sensitivity of Arabidopsis thaliana seedling root to copper is regulated by auxin homeostasis, Environ. Exp. Bot., 139, pp. 23-30, (2017)
  • [73] Stasolla C., Katahira R., Thorpe T.A., Ashihara H., Purine and pyrimidine nucleotide metabolism in higher plants, J. Plant Physiol., 160, pp. 1271-1295, (2003)
  • [74] Stobrawa K., Lorenc-Plucinska G., Changes in carbohydrate metabolism in fine roots of the native European black poplar (Populus nigra L.) in a heavy-metal-polluted environment, Sci. Total Environ., 373, pp. 157-165, (2007)
  • [75] Tahjib-Ul-Arif M., Zahan M.I., Karim M.M., Imran S., Hunter C.T., Islam M.S., Mia M.A., Hannan M.A., Rhaman M.S., Hossain M.A., Brestic M., Skalicky M., Murata Y., Citric acid-mediated abiotic stress tolerance in plants, Int. J. Mol. Sci., 22, (2021)
  • [76] Upchurch R.G., Fatty acid unsaturation, mobilization, and regulation in the response of plants to stress, Biotechnol. Lett., 30, pp. 967-977, (2008)
  • [77] Vidal C., Ruiz A., Ortiz J., Larama G., Perez R., Santander C., Ferreira P.A.A., Cornejo P., Antioxidant responses of phenolic compounds and immobilization of copper in Imperata cylindrica, a plant with potential use for bioremediation of Cu contaminated environments, Plants, 9, (2020)
  • [78] Vieira Dos Santos C., Rey P., Plant thioredoxins are key actors in the oxidative stress response, Trends Plant Sci, 11, pp. 329-334, (2006)
  • [79] Vogt T., Phenylpropanoid biosynthesis, Mol. Plant, 3, pp. 2-20, (2010)
  • [80] Wan H., Du J., He J., Lyu D., Li H., Copper accumulation, subcellular partitioning and physiological and molecular responses in relation to different copper tolerance in apple rootstocks, Tree Physiol., 39, pp. 1215-1234, (2019)