Yin Yongqi, Wang Chunping, Cheng Chao, Yang Zhengfei, Fang Weiming
School of Food Science and Engineering, Yangzhou University, Yangzhou, Jiangsu, 225009, People's Republic of China.
School of Food Science and Engineering, Yangzhou University, Yangzhou, Jiangsu, 225009, People's Republic of China.
Plant Physiol Biochem. 2023 Oct;203:108055. doi: 10.1016/j.plaphy.2023.108055. Epub 2023 Sep 22.
The present study investigated the effects regulating melatonin (MT) biosynthesis under methyl jasmonate (MeJA) treatment in mustard sprouts. The results revealed that MeJA significantly increased the MT content in the sprouts to 11.43 times that of the control. However, MeJA treatment had an inhibitory effect on growth. Tryptophan decarboxylase and tryptamine 5-hydroxylase gene expression were significantly induced by MeJA. Moreover, 156 differential abundance proteins (DAPs) were detected in 4-day-old sprouts using quantitative proteomic methods. These DAPs were divided into 13 functional groups, and the vast majority of DAPs involved in defense/stress, energy, signal transduction, and secondary metabolism increased. MeJA treatment significantly enriched 15 pathways, including glutathione metabolism, biosynthesis of secondary metabolites, and tryptophan metabolism. In particular, the abundance of three DAPs (myrosinase 1, cytosolic sulfotransferase 16, and glutamate-glyoxylate aminotransferase 2) in the tryptophan metabolism pathway, a substrate for MT biosynthesis, increased significantly. In summary, MeJA induces endogenous MT biosynthesis in mustard sprouts by promoting the genes expression of MT synthetase and increasing the abundance of tryptophan-related proteins.
本研究调查了茉莉酸甲酯(MeJA)处理对芥菜芽中褪黑素(MT)生物合成的调控作用。结果显示,MeJA显著提高了芽中MT含量,达到对照的11.43倍。然而,MeJA处理对生长有抑制作用。MeJA显著诱导了色氨酸脱羧酶和色胺5-羟化酶基因的表达。此外,采用定量蛋白质组学方法在4日龄芽中检测到156种差异丰度蛋白(DAPs)。这些DAPs被分为13个功能组,绝大多数参与防御/应激、能量、信号转导和次生代谢的DAPs增加。MeJA处理显著富集了15条通路,包括谷胱甘肽代谢、次生代谢物生物合成和色氨酸代谢。特别是,MT生物合成底物色氨酸代谢途径中的三种DAPs(黑芥子酶1、胞质磺基转移酶16和谷氨酸-乙醛酸氨基转移酶2)的丰度显著增加。综上所述,MeJA通过促进MT合成酶的基因表达和增加色氨酸相关蛋白的丰度来诱导芥菜芽中内源性MT的生物合成。