College of Food Science and Biological Engineering, Tianjin Agricultural University, Tianjin, China.
Institute of Agricultural Products Preservation and Processing Technology, Tianjin Academy of Agricultural Sciences (National Engineering and Technology Research Center for Preservation of Agricultural Products (Tianjin)), Key Laboratory of Storage and Preservation of Agricultural Products, Ministry of Agriculture and Rural Affairs, Tianjin Key Laboratory of Postharvest Physiology and Storage and Preservation of Agricultural Products, Tianjin, China.
J Food Sci. 2024 Aug;89(8):4914-4925. doi: 10.1111/1750-3841.17234. Epub 2024 Jul 9.
Phenylpropanoid metabolism plays an important role in cantaloupe ripening and senescence, but the mechanism of ozone regulation on phenylpropanoid metabolism remains unclear. This study investigated how ozone treatment modulates the levels of secondary metabolites associated with phenylpropanoid metabolism, the related enzyme activities, and gene expression in cantaloupe. Treating cantaloupes with 15 mg/m of ozone after precooling can help maintain postharvest hardness. This treatment also enhances the production and accumulation of secondary metabolites, such as total phenols, flavonoids, and lignin. These metabolites are essential components of the phenylpropanoid metabolic pathway, activating enzymes like phenylalanine ammonia-lyase, cinnamate 4-hydroxylase, 4CL, chalcone synthase, and chalcone isomerase. The results of the transcriptional expression patterns showed that differential gene expression related to phenylpropanoid metabolism in the peel of ozone-treated cantaloupes was primarily observed during the middle and late storage stages. In contrast, the pulp exhibited significant differential gene expression mainly during the early storage stage. Furthermore, it was observed that the level of gene expression in the peel was generally higher than that in the pulp. The correlation between the relative amount of gene changes in cantaloupe, activity of selected enzymes, and concentration of secondary metabolites could be accompanied by positive regulation of the phenylpropanoid metabolic pathway. Therefore, ozone stress induction positively enhances the biosynthesis of flavonoids in cantaloupes, leading to an increased accumulation of secondary metabolites. Additionally, it also improves the postharvest storage quality of cantaloupes.
苯丙烷代谢在甜瓜成熟和衰老过程中起着重要作用,但臭氧调节苯丙烷代谢的机制尚不清楚。本研究探讨了臭氧处理如何调节与苯丙烷代谢相关的次生代谢物水平、相关酶活性和基因表达在甜瓜中的作用。预冷后用 15mg/m 的臭氧处理甜瓜有助于保持采后硬度。这种处理还可以促进次生代谢物的产生和积累,如总酚、类黄酮和木质素。这些代谢物是苯丙烷代谢途径的重要组成部分,激活苯丙氨酸解氨酶、肉桂酸 4-羟化酶、4CL、查尔酮合酶和查尔酮异构酶等酶。转录表达模式的结果表明,臭氧处理甜瓜果皮中与苯丙烷代谢相关的基因表达差异主要在中晚期贮藏阶段观察到。相比之下,果肉在早期贮藏阶段表现出显著的差异基因表达。此外,观察到果皮中的基因表达水平通常高于果肉。甜瓜中基因变化的相对量、选定酶的活性和次生代谢物浓度之间的相关性可能伴随着苯丙烷代谢途径的正调控。因此,臭氧胁迫诱导可正向增强甜瓜中类黄酮的生物合成,导致次生代谢物的积累增加。此外,它还可以提高甜瓜的采后贮藏质量。