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U 对萝卜(Raphanus sativus L.)生长、活性氧代谢和渗透调节的影响。

Effects of U on the growth, reactive oxygen metabolism and osmotic regulation in radish (Raphanus sativus L.).

机构信息

Life Science College, Sichuan Normal University, Chengdu, 610101, China.

Plant Functional Genomics and Bioinformatics Research Center, Sichuan Normal University, Chengdu, 610101, China.

出版信息

Environ Sci Pollut Res Int. 2022 Aug;29(36):55081-55091. doi: 10.1007/s11356-022-19803-w. Epub 2022 Mar 21.

Abstract

Uranium (U) is a non-essential and toxic element, so it is necessary to study the physiological mechanism of plant response to U stress. The present study evaluated the growth status, reactive oxygen metabolism and osmotic regulation system in radish (Raphanus sativus) under U stress (0, 25, 50 and 100 μM). The results showed that U had no significant effect on the germination of radish seeds but inhibited the growth of seedlings, such as reduced root activity and increased plasma membrane permeability. U is mainly distributed in radish roots, so it poisons the roots more than the aboveground parts. When U concentration was 25 μM, superoxide dismutase (SOD), catalase (CAT) and peroxidase (POD) activities in radish were increased to cope with the oxidative stress caused by U stress, and the accumulation of proline and soluble sugar was increased to maintain cell turgor. However, under high concentration (100 μM), the damage of radish root was serious; thus, the SOD, CAT and soluble sugar could not respond to U stress. In conclusion, the identification and characterization of U-stress responses in genuine U-tolerant plants would improve our knowledge on the detoxification of this radionuclide.

摘要

铀(U)是一种非必需且有毒的元素,因此有必要研究植物对 U 胁迫的生理机制。本研究评估了 U 胁迫(0、25、50 和 100 μM)下萝卜(Raphanus sativus)的生长状况、活性氧代谢和渗透调节系统。结果表明,U 对萝卜种子的萌发没有显著影响,但抑制了幼苗的生长,如根活力降低和质膜通透性增加。U 主要分布在萝卜的根部,因此对根部的毒害大于地上部分。当 U 浓度为 25 μM 时,萝卜中超氧化物歧化酶(SOD)、过氧化氢酶(CAT)和过氧化物酶(POD)的活性增加,以应对 U 胁迫引起的氧化应激,脯氨酸和可溶性糖的积累增加,以维持细胞膨压。然而,在高浓度(100 μM)下,萝卜根的损伤严重;因此,SOD、CAT 和可溶性糖无法应对 U 胁迫。总之,对真正耐 U 植物的 U 胁迫反应的鉴定和表征将提高我们对这种放射性核素解毒的认识。

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