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烟草干旱响应的转录组学和代谢调控网络特征分析

Transcriptomic and metabolic regulatory network characterization of drought responses in tobacco.

作者信息

Hu Zhengrong, He Zexue, Li Yangyang, Wang Qing, Yi Pengfei, Yang Jiashuo, Yang Chenkai, Borovskii Gennadii, Cheng Xuejiao, Hu Risheng, Zhang Wenli

机构信息

Hunan Tobacco Research Institute, Changsha, Hunan, China.

State Key Laboratory for Crop Genetics and Germplasm Enhancement, Jiangsu Collaborative Innovation Center for Modern Crop Production (JCIC-MCP), Collaborative Innovation Center for Modern Crop Production Co-Sponsored by Province and Ministry (CIC-MCP), Nanjing Agricultural University, Nanjing, Jiangsu, China.

出版信息

Front Plant Sci. 2023 Jan 18;13:1067076. doi: 10.3389/fpls.2022.1067076. eCollection 2022.

Abstract

Drought stress usually causes huge economic losses for tobacco industries. Drought stress exhibits multifaceted impacts on tobacco systems through inducing changes at different levels, such as physiological and chemical changes, changes of gene transcription and metabolic changes. Understanding how plants respond and adapt to drought stress helps generate engineered plants with enhanced drought resistance. In this study, we conducted multiple time point-related physiological, biochemical,transcriptomic and metabolic assays using K326 and its derived mutant 28 (M28) with contrasting drought tolerance. Through integrative analyses of transcriptome and metabolome,we observed dramatic changes of gene expression and metabolic profiles between M28 and K326 before and after drought treatment. we found that some of DEGs function as key enzymes responsible for ABA biosynthesis and metabolic pathway, thereby mitigating impairment of drought stress through ABA signaling dependent pathways. Four DEGs were involved in nitrogen metabolism, leading to synthesis of glutamate (Glu) starting from NO-3 /NO-2 that serves as an indicator for stress responses. Importantly, through regulatory network analyses, we detected several drought induced TFs that regulate expression of genes responsible for ABA biosynthesis through network, indicating direct and indirect involvement of TFs in drought responses in tobacco. Thus, our study sheds some mechanistic insights into how plant responding to drought stress through transcriptomic and metabolic changes in tobacco. It also provides some key TF or non-TF gene candidates for engineering manipulation for breeding new tobacco varieties with enhanced drought tolerance.

摘要

干旱胁迫通常给烟草产业造成巨大经济损失。干旱胁迫通过诱导不同水平的变化,如生理和化学变化、基因转录变化和代谢变化,对烟草系统产生多方面的影响。了解植物如何应对和适应干旱胁迫有助于培育出具有更强抗旱能力的转基因植物。在本研究中,我们使用耐旱性不同的K326及其衍生突变体28(M28)进行了多个时间点相关的生理、生化、转录组和代谢分析。通过对转录组和代谢组的综合分析,我们观察到干旱处理前后M28和K326之间基因表达和代谢谱的显著变化。我们发现一些差异表达基因(DEGs)作为负责脱落酸(ABA)生物合成和代谢途径的关键酶,从而通过依赖ABA信号的途径减轻干旱胁迫的损害。四个DEGs参与氮代谢,导致从作为应激反应指标的NO-3 /NO-2开始合成谷氨酸(Glu)。重要的是,通过调控网络分析,我们检测到几个干旱诱导的转录因子(TFs),它们通过网络调节负责ABA生物合成的基因的表达,表明TFs直接和间接参与烟草的干旱反应。因此,我们的研究揭示了植物如何通过烟草中的转录组和代谢变化对干旱胁迫做出反应的一些机制性见解。它还为培育具有更强耐旱性的新烟草品种的工程操作提供了一些关键的TF或非TF基因候选物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e83/9891310/44213660d1dd/fpls-13-1067076-g001.jpg

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