Integrative physiological, metabolomic and transcriptomic insights into phenylpropanoids pathway responses in Nicotiana tabacum under drought stress

IF 6.8 Q1 PLANT SCIENCES Plant Stress Pub Date : 2025-03-18 DOI:10.1016/j.stress.2025.100815
Quanyu Yin , Zhao Feng , Zhichao Ren , Hui Wang , Dongling Wu , Amit Jaisi , Mengquan Yang
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Abstract

The development and productivity of plants are profoundly influenced by adverse environmental conditions, particularly drought stress. This study investigates the physiological, transcriptomic, and metabolomic responses of Nicotiana tabacum to varying levels of drought stress (well-watered, light drought, moderate drought, and severe drought). Comprehensive analyses were conducted to evaluate phenotypic changes, physiological parameters, gene expression, and metabolite profiles. Drought stress significantly inhibited plant growth, reduced relative water content, and altered transpiration rates. Protective enzyme activities also declined under increased drought intensity. Transcriptome analysis identified 7,483, 15,558, and 16,876 differentially expressed genes in light, moderate, and severe drought conditions compared to the control, respectively. Similarly, metabolome analysis revealed 410, 485, and 523 differentially accumulated metabolites under these conditions. Integrative analysis of transcriptomic and metabolomic data highlighted the phenylpropanoid biosynthesis pathway as a critical mechanism mediating drought tolerance in N. tabacum. Key metabolites, including chlorogenic acid, rutin, and taxifolin, exhibited significant changes, correlating with drought stress severity. These findings provide valuable insights into the molecular and biochemical strategies employed by N. tabacum to adapt to water scarcity. This study highlights the crucial role of phenylpropanoid biosynthesis in drought stress tolerance and identifies potential targets for molecular breeding to develop drought-resilient crops. The results contribute to a deeper understanding of plant responses to drought stress, aligning with the urgent need to mitigate the impact of climate change on agriculture.
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干旱胁迫下烟草苯丙素通路反应的综合生理、代谢组学和转录组学研究
植物的发育和生产力受到不利环境条件,特别是干旱胁迫的深刻影响。本研究探讨了烟草对不同干旱胁迫水平(丰水、轻度干旱、中度干旱和重度干旱)的生理、转录组学和代谢组学反应。综合分析评估表型变化、生理参数、基因表达和代谢物谱。干旱胁迫显著抑制植物生长,降低相对含水量,改变蒸腾速率。保护酶活性也随着干旱强度的增加而下降。转录组分析发现,与对照相比,轻度、中度和重度干旱条件下分别有7,483、15,558和16,876个差异表达基因。同样,代谢组学分析显示,在这些条件下,有410、485和523种代谢物的差异积累。转录组学和代谢组学数据的综合分析表明,苯丙素生物合成途径是介导烟草耐旱性的关键机制。关键代谢物,包括绿原酸、芦丁和杉木素,表现出显著的变化,与干旱胁迫的严重程度相关。这些发现为烟草适应缺水的分子和生化策略提供了有价值的见解。本研究强调了苯丙类生物合成在抗旱性中的重要作用,并确定了抗旱性作物分子育种的潜在靶点。研究结果有助于深入了解植物对干旱胁迫的反应,与减轻气候变化对农业影响的迫切需要相一致。
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来源期刊
Plant Stress
Plant Stress PLANT SCIENCES-
CiteScore
5.20
自引率
8.00%
发文量
76
审稿时长
63 days
期刊介绍: The journal Plant Stress deals with plant (or other photoautotrophs, such as algae, cyanobacteria and lichens) responses to abiotic and biotic stress factors that can result in limited growth and productivity. Such responses can be analyzed and described at a physiological, biochemical and molecular level. Experimental approaches/technologies aiming to improve growth and productivity with a potential for downstream validation under stress conditions will also be considered. Both fundamental and applied research manuscripts are welcome, provided that clear mechanistic hypotheses are made and descriptive approaches are avoided. In addition, high-quality review articles will also be considered, provided they follow a critical approach and stimulate thought for future research avenues. Plant Stress welcomes high-quality manuscripts related (but not limited) to interactions between plants and: Lack of water (drought) and excess (flooding), Salinity stress, Elevated temperature and/or low temperature (chilling and freezing), Hypoxia and/or anoxia, Mineral nutrient excess and/or deficiency, Heavy metals and/or metalloids, Plant priming (chemical, biological, physiological, nanomaterial, biostimulant) approaches for improved stress protection, Viral, phytoplasma, bacterial and fungal plant-pathogen interactions. The journal welcomes basic and applied research articles, as well as review articles and short communications. All submitted manuscripts will be subject to a thorough peer-reviewing process.
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