转录组学和代谢组学综合分析揭示Epichloë gansuensis介导的酒荆根耐盐性的分子调控机制。

Chao Wang, Rong Huang, Jianfeng Wang, Jie Jin, Kamran Malik, Xueli Niu, Rong Tang, Wenpeng Hou, Chen Cheng, Yinglong Liu, Jie Liu
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引用次数: 1

摘要

土壤盐碱化是影响植物功能的主要环境风险因素,导致作物和饲料产量下降。Epichloë gansuensis是一种种子传播的内生真菌,与嗜盐Achnatherum inebrians建立了互惠共生关系,并赋予寄主植物耐盐性。本研究通过转录组学和代谢组学分析,探讨了甘苏木介导的葡萄根盐适应的潜在分子机制。研究发现,甘菊在寄主根系的基因表达中发挥重要作用,并调控酿酒葡萄根系的氨基酸代谢、碳水化合物代谢、TCA循环、次生代谢和脂质代谢等多种途径。值得注意的是,在NaCl胁迫下,甘苏木在转录水平上显著诱导寄主植物根系的胞吐、糖酵解、果糖代谢和钾离子运输等生物学过程,并在代谢物水平上改变了肌醇磷酸代谢、半乳糖代谢、淀粉和蔗糖代谢等途径。这些研究结果为揭示甘肃赤霉素介导的葡萄根耐盐的分子机制提供了依据,并为内生菌耐盐新品种的培育提供了依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Comprehensive Analysis of Transcriptome and Metabolome Elucidates the Molecular Regulatory Mechanism of Salt Resistance in Roots of <i>Achnatherum inebrians</i> Mediated by <i>Epichloë gansuensis</i>.

Comprehensive Analysis of Transcriptome and Metabolome Elucidates the Molecular Regulatory Mechanism of Salt Resistance in Roots of <i>Achnatherum inebrians</i> Mediated by <i>Epichloë gansuensis</i>.

Comprehensive Analysis of Transcriptome and Metabolome Elucidates the Molecular Regulatory Mechanism of Salt Resistance in Roots of <i>Achnatherum inebrians</i> Mediated by <i>Epichloë gansuensis</i>.

Comprehensive Analysis of Transcriptome and Metabolome Elucidates the Molecular Regulatory Mechanism of Salt Resistance in Roots of Achnatherum inebrians Mediated by Epichloë gansuensis.

Salinization of soil is a major environmental risk factor to plant functions, leading to a reduction of productivity of crops and forage. Epichloë gansuensis, seed-borne endophytic fungi, establishes a mutualistic symbiotic relationship with Achnatherum inebrians and confers salt tolerance in the host plants. In this study, analysis of transcriptome and metabolome was used to explore the potential molecular mechanism underlying the salt-adaptation of A. inebrians roots mediated by E. gansuensis. We found that E. gansuensis played an important role in the gene expression of the host's roots and regulated multiple pathways involved in amino acid metabolism, carbohydrate metabolism, TCA cycle, secondary metabolism, and lipid metabolism in the roots of A. inebrians. Importantly, E. gansuensis significantly induced the biological processes, including exocytosis, glycolytic process, fructose metabolic process, and potassium ion transport in roots of host plants at transcriptional levels, and altered the pathways, including inositol phosphate metabolism, galactose metabolism, starch, and sucrose metabolism at metabolite levels under NaCl stress. These findings provided insight into the molecular mechanism of salt resistance in roots of A. inebrians mediated by E. gansuensis and could drive progress in the cultivation of new salt-resistance breeds with endophytes.

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