Network of the transcriptome and metabolomics reveals a novel regulation of drought resistance during germination in wheat

茉莉酸 生物 代谢组学 亚麻酸 脱落酸 转录组 发芽 栽培 代谢组 代谢物 植物 亚油酸 园艺 脂肪酸 基因 生物化学 基因表达 生物信息学
作者
Zongzhen Li,Yanhao Lian,Pu Gong,Linhu Song,Junjie Hu,Haifang Pang,Yongzhe Ren,Zeyu Xin,Zhiqiang Wang,Tongbao Lin
出处
期刊:Annals of Botany [Oxford University Press]
卷期号:130 (5): 717-735 被引量:27
标识
DOI:10.1093/aob/mcac102
摘要

Abstract Background and Aims The North China Plain, the highest winter-wheat-producing region of China, is seriously threatened by drought. Traditional irrigation wastes a significant amount of water during the sowing season. Therefore, it is necessary to study the drought resistance of wheat during germination to maintain agricultural ecological security. From several main cultivars in the North China Plain, we screened the drought-resistant cultivar JM47 and drought-sensitive cultivar AK58 during germination using the polyethylene glycol (PEG) drought simulation method. An integrated analysis of the transcriptome and metabolomics was performed to understand the regulatory networks related to drought resistance in wheat germination and verify key regulatory genes. Methods Transcriptional and metabolic changes were investigated using statistical analyses and gene–metabolite correlation networks. Transcript and metabolite profiles were obtained through high-throughput RNA-sequencing data analysis and ultra-performance liquid chromatography quadrupole time-of-flight tandem mass spectrometry, respectively. Key Results A total of 8083 and 2911 differentially expressed genes (DEGs) and 173 and 148 differential metabolites were identified in AK58 and JM47, respectively, under drought stress. According to the integrated analysis results, mammalian target of rapamycin (mTOR) signalling was prominently enriched in JM47. A decrease in α-linolenic acid content was consistent with the performance of DEGs involved in jasmonic acid biosynthesis in the two cultivars under drought stress. Abscisic acid (ABA) content decreased more in JM47 than in AK58, and linoleic acid content decreased in AK58 but increased in JM47. α-Tocotrienol was upregulated and strongly correlated with α-linolenic acid metabolism. Conclusions The DEGs that participated in the mTOR and α-linolenic acid metabolism pathways were considered candidate DEGs related to drought resistance and the key metabolites α-tocotrienol, linoleic acid and l-leucine, which could trigger a comprehensive and systemic effect on drought resistance during germination by activating mTOR–ABA signalling and the interaction of various hormones.
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