Nanoselenium Enhanced Wheat Resistance to Aphids by Regulating Biosynthesis of DIMBOA and Volatile Components

丙二醛 麦长管蚜 己唑醇 谷胱甘肽 化学 生物强化 抗氧化剂 褪黑素 食品科学 生物化学 生物 植物 多菌灵 杀菌剂 蚜虫科 有机化学 有害生物分析 神经科学 同翅目
作者
Chunran Zhou,Dong Li,xinlei shi,Jingbang Zhang,Quanshun An,Yangliu Wu,Kang Lu,Jiaqi Li,Canping Pan
出处
期刊:Journal of Agricultural and Food Chemistry [American Chemical Society]
卷期号:69 (47): 14103-14114 被引量:26
标识
DOI:10.1021/acs.jafc.1c05617
摘要

The mechanism of nanoselenium (nano-Se) improving the resistance induced by plant components to aphids is unclear. In this study, foliar sprayed nano-Se (5.0 mg/L) could significantly reduce the Sitobion avenae number (36%) compared with that in the control. Foliar application of nano-Se enhanced the antioxidant capacity by reducing malondialdehyde (MDA) and increasing GSH-Px, CAT, GSH, Pro, and VE concentrations in wheat seedlings. The phenylpropane pathway was activated by nano-Se biofortification, which increased apigenin and caffeic acid concentrations. The high-level expression of the related genes (TaBx1A, TaBx3A, TaBx4A, TaASMT2, and TaCOMT) induced the promotion of melatonin (88.6%) and 2,4-dihydroxy-7-methoxy-1,4-benzoxazin-3-one (DIMBOA) (64.3%). Different ratios of the secondary metabolites to nano-Se were taken to examine the effects on resistance of wheat to S. avenae. The results revealed that the combination of nano-Se and melatonin could achieve the best overall performance by reducing the S. avenae number by 52.2%. The study suggests that the coordinated applications of nano-Se and melatonin could more effectively improve the wheat resistance to aphids via the promotion of volatile organic compound synthesis and modulation in phenylpropane and indole metabolism pathways.
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