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盐碱性胁迫下黄酮类物质积累的代谢组学和转录组学综合分析

Integrative Analysis of the Metabolome and Transcriptome of Reveals Dynamic Changes in Flavonoids Accumulation under Saline-Alkali Stress.

机构信息

Marine Agriculture Research Center, Tobacco Research Institute of Chinese Academy of Agricultural Sciences, Qingdao, China, 266101.

出版信息

J Agric Food Chem. 2020 Dec 16;68(50):14781-14789. doi: 10.1021/acs.jafc.0c06249. Epub 2020 Dec 4.

Abstract

With the perpetuation of soil salinization, it is imperative to improve the salt and alkaline tolerance of crops. , a C4 crop, is often grown in semiarid areas due to its high tolerance of various abiotic stresses. Whether to improve the resistance of the sorghum itself or that of other crops, it is necessary to understand the response of sorghum under saline-alkali stress. An integrative analysis of the metabolome and transcriptome of sorghum under normal conditions and treatments of moderate and severe saline-alkali stress was performed. Among the different accumulated metabolites (DAMs) and differentially expressed genes (DEGs), flavonoid-related DAMs and DEGs were clearly changed. The level of flavonoids was increased under saline-alkali stress, and the change in flavonoids was dynamic as to whether total flavonoids or most flavonoid components accumulated more under moderate saline-alkali stress compared to severe stress. Some flavonoid metabolites were significantly correlated with the expression of flavonoid biosynthesis genes. MYB transcription factors may also contribute to the regulation of flavonoids levels. These findings present the dynamic changes and possible molecular mechanisms of flavonoids under different saline-alkali stresses and provide a foundation for future research and crop improvement.

摘要

随着土壤盐渍化的持续存在,提高作物的耐盐碱性势在必行。高粱作为一种 C4 作物,由于其对各种非生物胁迫的高耐受性,常生长在半干旱地区。无论是提高高粱本身的抗性还是其他作物的抗性,都有必要了解高粱在盐碱性胁迫下的反应。对高粱在正常条件下以及中度和重度盐碱性胁迫处理下的代谢组和转录组进行了综合分析。在不同的积累代谢物(DAMs)和差异表达基因(DEGs)中,类黄酮相关的 DAMs 和 DEGs 明显发生了变化。在盐碱性胁迫下,类黄酮的水平增加,而类黄酮的变化是动态的,无论是总类黄酮还是大多数类黄酮成分,在中度盐碱性胁迫下的积累都比在重度胁迫下更多。一些类黄酮代谢物与类黄酮生物合成基因的表达显著相关。MYB 转录因子也可能有助于类黄酮水平的调节。这些发现揭示了不同盐碱性胁迫下类黄酮的动态变化和可能的分子机制,为未来的研究和作物改良提供了基础。

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