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将代谢分析与生物学终点相结合可深入了解……的抗旱机制。 (原文句子不完整,“of”后面缺少内容)

Combining Metabolic Analysis With Biological Endpoints Provides a View Into the Drought Resistance Mechanism of .

作者信息

Mi Zhaorong, Ma Yingying, Liu Pinlin, Zhang Haoyi, Zhang Lu, Jia Wenqing, Zhu Xiaopei, Wang Yanli, Zhang Chan, Du Lin, Li Xilin, Chen Haitao, Han Tao, Liu Huichao

机构信息

School of Horticulture and Landscape Architecture, Henan Institute of Science and Technology, Xinxiang, China.

Henan Province Engineering Research Center of Horticultural Plant Resource Utilization and Germplasm Enhancement, Xinxiang, China.

出版信息

Front Plant Sci. 2022 Jul 7;13:945441. doi: 10.3389/fpls.2022.945441. eCollection 2022.

Abstract

Metabolomics is an effective tool to test the response of plants to environmental stress; however, the relationships between metabolites and biological endpoints remained obscure in response to drought stress. is widely used in forage production, turf management, and landscape application and it is particularly resistant to drought stress. We investigated the metabolomic responses of to drought stress by imposing a 22-day natural soil water loss. The results showed that water-deficit restrained plant growth, reducing plant height, leaf fresh weight, and total weight, however, increasing soluble protein content and malondialdehyde content. In total, 129 differential metabolites in the leaves were detected between drought and control using the Ultrahigh Performance Liquid Chromatography-Mass Spectrometer (UPLC-MS) method. Drought enhanced most of the primary and secondary metabolites in the differential metabolites. Almost all the sugars, amino acids, organic acids, phytohormones, nucleotides, phenylpropanoids and polyketides in the differential metabolites were negatively correlated with plant height and leaf fresh weight, while they were positively correlated with soluble protein content and malondialdehyde content. Metabolic pathway analysis showed that drought stress significantly affected aminoacyl-tRNA biosynthesis, TCA cycling, starch and sucrose metabolism. Our study is the first statement on metabolomic responses to drought stress in the drought-enduring plant . According to the result, the coordination between diverse metabolic pathways in enables the plant to adapt to a drought environment. This study will provide a systematic framework for explaining the metabolic plasticity and drought tolerance mechanisms of under drought stress.

摘要

代谢组学是测试植物对环境胁迫响应的有效工具;然而,在干旱胁迫下,代谢物与生物学终点之间的关系仍不明确。[植物名称]广泛应用于牧草生产、草坪管理和景观应用,并且它对干旱胁迫具有特别的抗性。我们通过进行为期22天的自然土壤水分流失来研究[植物名称]对干旱胁迫的代谢组学响应。结果表明,水分亏缺抑制了植物生长,降低了株高、叶片鲜重和总重量,然而,增加了可溶性蛋白含量和丙二醛含量。使用超高效液相色谱 - 质谱仪(UPLC-MS)方法,共检测到干旱组和对照组之间叶片中有129种差异代谢物。干旱增强了差异代谢物中的大多数初级和次级代谢物。差异代谢物中几乎所有的糖类、氨基酸、有机酸、植物激素、核苷酸、苯丙烷类和聚酮类与株高和叶片鲜重呈负相关,而它们与可溶性蛋白含量和丙二醛含量呈正相关。代谢途径分析表明,干旱胁迫显著影响氨酰 - tRNA生物合成、三羧酸循环、淀粉和蔗糖代谢。我们的研究是关于耐旱植物[植物名称]对干旱胁迫代谢组学响应的首次阐述。根据结果,[植物名称]中不同代谢途径之间的协调使其能够适应干旱环境。本研究将为解释[植物名称]在干旱胁迫下的代谢可塑性和耐旱机制提供一个系统框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/280a/9380063/37d988bd273e/fpls-13-945441-g001.jpg

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