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转录组学和代谢组学联合分析揭示了富氢水调节[具体物种]冷应激反应所涉及的防御机制。

Transcriptome and Metabonomics Combined Analysis Revealed the Defense Mechanism Involved in Hydrogen-Rich Water-Regulated Cold Stress Response of .

作者信息

Liu Yuxiu, Pan Junjie, Ni Sui, Xing Bincong, Cheng Kejun, Peng Xin

机构信息

Ningbo Municipal Hospital of TCM, Affiliated Hospital of Zhejiang Chinese Medical University, Ningbo, China.

School of Marine Sciences, Ningbo University, Ningbo, China.

出版信息

Front Plant Sci. 2022 Jun 23;13:889726. doi: 10.3389/fpls.2022.889726. eCollection 2022.

Abstract

The poor resistance to cold stress conditions has become the bottleneck problem in () planting industry. Exogenous hydrogen (H) plays an important role in improving stress resistance in plants. However, the key factors and regulatory network of plants in response to hydrogen-rich water (HRW) treatment under environmental stress are not clear. Here, we conducted integrative analyses of metabolome and transcriptome profiles to reveal the defense mechanism involved in the HRW-regulated cold stress response of . The application of 75% HRW could alleviate stress damage by decreasing stomatal apparatus density and significantly increasing photosynthetic efficiency and mitigating physiological indexes of resistance, such as Pn, Cond, MDA, SOD, etc., which were changed by cold stress conditions. A total of 7,883 DEGs and 439 DEMs were identified. DEGs were the most relevant to phenylpropanoid, isoflavonoid, monoterpenoid, and flavonoid biosynthesis pathways. Using gene co-expression analysis (WGCNA), we identified one gene module that showed a strong correlation between total antioxidant capacity and transpiration rate. Trend analysis indicated that the phenylpropanoid biosynthesis pathway played a major role in the transcription and metabolism process of HRW treatment under cold stress. Based on the integrated analysis of genes and metabolites, the results showed cold stress upregulated the expression of PAL, CHS, COMT, CCR, AtBG1, etc., resulting in the accumulation of coniferyl alcohol and eriodictyol contents in under cold stress, but the 75% HRW treatment could attenuate the enhancement. The study not only identified the main strategy of HRW protection against cold stress but also provided candidate genes for flavonoid biosynthesis, so as to better improve cold tolerance through molecular breeding techniques.

摘要

在()种植产业中,对寒冷胁迫条件的抗性较差已成为瓶颈问题。外源氢(H)在提高植物抗逆性方面发挥着重要作用。然而,环境胁迫下植物响应富氢水(HRW)处理的关键因素和调控网络尚不清楚。在此,我们对代谢组和转录组图谱进行了综合分析,以揭示HRW调控的()冷胁迫响应所涉及的防御机制。75%HRW的应用可通过降低气孔器密度来减轻胁迫损伤,并显著提高光合效率,减轻冷胁迫条件下改变的抗性生理指标,如净光合速率(Pn)、气孔导度(Cond)、丙二醛(MDA)、超氧化物歧化酶(SOD)等。共鉴定出7883个差异表达基因(DEGs)和439个差异表达代谢物(DEMs)。DEGs与苯丙烷类、异黄酮类、单萜类和黄酮类生物合成途径最为相关。通过基因共表达分析(WGCNA),我们鉴定出一个基因模块,该模块显示总抗氧化能力与蒸腾速率之间存在强相关性。趋势分析表明,苯丙烷类生物合成途径在冷胁迫下HRW处理的转录和代谢过程中起主要作用。基于基因和代谢物的综合分析,结果表明冷胁迫上调了苯丙氨酸解氨酶(PAL)、查尔酮合酶(CHS)、咖啡酸-O-甲基转移酶(COMT)、肉桂酰辅酶A还原酶(CCR)、AtBG1等的表达,导致冷胁迫下()中松柏醇和圣草酚含量的积累,但75%HRW处理可减弱这种增强作用。该研究不仅确定了HRW抵御冷胁迫的主要策略,还为黄酮类生物合成提供了候选基因,以便通过分子育种技术更好地提高耐寒性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e3a9/9260428/9603b2262c79/fpls-13-889726-g001.jpg

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