Deng Honghong, He Runmei, Xia Hui, Xu Nuo, Deng Qunxian, Liang Dong, Lin Lijin, Liao Ling, Xiong Bo, Xie Xinyu, Gao Zhijian, Kang Qingxuan, Wang Zhihui
Institute of Pomology and Olericulture, College of Horticulture, Sichuan Agricultural University, Chengdu 611130, China.
Funct Plant Biol. 2022 Oct;49(11):936-945. doi: 10.1071/FP21168.
Plum (Prunus spp.) is an economically and nutritionally important stone fruit that is grown worldwide. Gummosis disease (GD) is one of the most common limiting factors that adversely affects the yield and quality of stone fruits such as plum. Elucidating plum fruit metabolomics responses is essential to develop sustainable agricultural practices to combat GD in the future. Herein, an ultra-high-performance liquid chromatography coupled to mass-spectrometry (UHPLC-MS) pseudo-targeted metabolomic profiling was first performed to elucidate the overall metabolic alterations in Asian plum (Prunus salicina Lindl.) fruit in response to GD. The most pivotal differential metabolites, including certain amino acids and proanthocyanidins, in GD and control groups were identified by combining multivariate data analysis with strict statistical criteria. Metabolic pathway enrichment analysis showed that GD induced a series of coordinated defence responses and reprogramming of various metabolic pathways, including glucosinolate biosynthesis, 2-oxocarboxylic acid metabolism, valine, leucine and isoleucine degradation, and isoquinoline alkaloid biosynthesis pathways. Using UHPLC-MS-based pseudo-targeted metabolomic profiling, we systematically evaluated overall metabolic modifications in Asian plum fruits in response to GD for the first time. The identified metabolic pathway alterations helped to better understand the internal relationships and related metabolic networks.
李(李属)是一种在全球范围内种植的具有经济和营养重要性的核果。流胶病(GD)是对李等核果的产量和品质产生不利影响的最常见限制因素之一。阐明李果实代谢组学反应对于未来开发可持续农业实践以对抗流胶病至关重要。在此,首次进行了超高效液相色谱-质谱联用(UHPLC-MS)伪靶向代谢组学分析,以阐明亚洲李(Prunus salicina Lindl.)果实对流胶病的整体代谢变化。通过将多变量数据分析与严格的统计标准相结合,确定了流胶病组和对照组中最关键的差异代谢物,包括某些氨基酸和原花青素。代谢途径富集分析表明,流胶病诱导了一系列协调的防御反应和各种代谢途径的重编程,包括芥子油苷生物合成、2-氧代羧酸代谢、缬氨酸、亮氨酸和异亮氨酸降解以及异喹啉生物碱生物合成途径。利用基于UHPLC-MS的伪靶向代谢组学分析,我们首次系统地评估了亚洲李果实对流胶病的整体代谢修饰。所确定的代谢途径改变有助于更好地理解内部关系和相关代谢网络。