脱落酸
丙二醛
磷
超氧化物歧化酶
抗氧化剂
活性氧
镉
抗坏血酸
植物螯合素
生物化学
营养物
光合作用
谷胱甘肽
氧化应激
化学
植物
食品科学
叶绿素
光合效率
赤霉素
褐变
光合色素
脯氨酸
类胡萝卜素
植物生理学
新陈代谢
毒性
氧化磷酸化
作者
Ao Li,Y. Qu,Yin Sun,Junzhu Zou,Ju Guansheng,Zhenyuan Sun,Junxiang Liu
标识
DOI:10.1093/treephys/tpaf124
摘要
Cadmium (Cd) contamination has pronounced negative effects on plant physiological processes, while phosphorus (P) as an essential macronutrient might mitigate Cd toxicity by modulating plant adaptivity. This study employed Salix caprea as a model to assess the effects of P on physiological and anatomical characteristics under Cd stress. The results demonstrated that plant growth, e.g., height, basal diameter and biomass, photosynthetic pigment content and net photosynthetic rate were all significantly inhibited by Cd stress. However, adequate P could alleviate these inhibitory effects in contrast to the P deficiency treatment under Cd stress. Phosphorus sufficiency significantly reduced the levels of reactive oxygen species (O₂˙- and H₂O₂) and malondialdehyde (MDA) in roots under Cd stress, while enhancing the activities of antioxidant enzymes such as superoxide dismutase and ascorbate peroxidase, and increasing the contents of non-enzymatic antioxidants, including ascorbic acid and glutathione. These findings indicate that P reduces Cd-induced oxidative damage by adjusting the antioxidant defense system. Furthermore, P sufficiency enhanced the accumulation of phytochelatins and non-protein thiols in roots, thereby promoting complexation and sequestration of Cd into vacuoles. Adequate P enhanced root mineral uptake, which resulted in higher concentrations of magnesium and manganese in roots. Anatomical analysis revealed that P sufficiency significantly increased the stele-to-root area ratio, thereby enhancing transport efficiency and promoting Cd accumulation in aboveground tissues. Moreover, adequate P significantly increased the levels of abscisic acid, indole-3-acetic acid and gibberellic acid under Cd stress, suggesting a mediated role of hormones in the improved tolerance capacity to Cd by P. In summary, P sufficiency conditions enhanced Cd tolerance in S. caprea by coordinating antioxidant defense, metal chelation, root development and hormonal regulation.
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