State Key Laboratory of Crop Biology, Key Laboratory of Crop Biology and Genetic Improvement of Horticultural Crops in Huanghuai Region, College of Horticulture Science and Engineering, Shandong Agricultural University, Tai'an 271018, China.
Int J Mol Sci. 2022 Mar 25;23(7):3576. doi: 10.3390/ijms23073576.
Melatonin (MT), as a signaling molecule, plays a vital role in regulating leaf senescence in plants. This study aimed to verify the antioxidant roles of MT in delaying dark- or age-induced leaf senescence of cucumber plants. The results showed that endogenous MT responds to darkness and overexpression of , the key gene of MT synthesis, and delays leaf senescence stimulated by darkness, as manifested by significantly lower malonaldehyde (MDA) and reactive oxygen species (ROS) contents as well as higher activities and gene expression of antioxidant enzymes compared to the control. Moreover, MT suppressed both age- or dark-induced leaf senescence of cucumber, as evidenced by a decrease in senescence-related gene and cell-death-related gene expression and ROS content and an increase in antioxidant capacity and chlorophyll biosynthesis compared with the HO-treated seedlings. Meanwhile, the suppression of age-induced leaf senescence by melatonin was also reflected by the reduction in abscisic acid (ABA) biosynthesis and signaling pathways as well as the promotion of auxin (IAA) biosynthesis and signaling pathways in cucumber plants in the solar greenhouse. Combining the results of the two separate experiments, we demonstrated that MT acts as a powerful antioxidant to alleviate leaf senescence by activating the antioxidant system and IAA synthesis and signaling while inhibiting ABA synthesis and signaling in cucumber plants.
褪黑素(MT)作为一种信号分子,在植物叶片衰老过程中起着至关重要的作用。本研究旨在验证 MT 在延缓黄瓜叶片暗诱导或衰老过程中的抗氧化作用。结果表明,内源性 MT 对黑暗做出响应,并且 MT 合成的关键基因的过表达,延缓了黑暗诱导的叶片衰老,表现在丙二醛(MDA)和活性氧(ROS)含量显著降低,抗氧化酶的活性和基因表达显著升高,与对照相比。此外,MT 抑制了黄瓜的年龄或黑暗诱导的叶片衰老,表现在衰老相关基因 和细胞死亡相关基因 的表达以及 ROS 含量降低,抗氧化能力和叶绿素生物合成增加,与 HO 处理的幼苗相比。同时,褪黑素对年龄诱导的叶片衰老的抑制作用也反映在黄瓜植株中脱落酸(ABA)生物合成和信号通路的减少以及生长素(IAA)生物合成和信号通路的促进上在日光温室中。结合这两个独立实验的结果,我们证明 MT 通过激活抗氧化系统和 IAA 合成及信号通路,同时抑制 ABA 合成及信号通路,作为一种强大的抗氧化剂来减轻黄瓜植株的叶片衰老。