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Effect of drought stress on growth and essential oil metabolism in lemongrasses.干旱胁迫对柠檬草生长及精油代谢的影响
New Phytol. 1994 Sep;128(1):173-179. doi: 10.1111/j.1469-8137.1994.tb04000.x.
2
Salt-stress induced alterations in the root lipidome of two barley genotypes with contrasting responses to salinity.盐胁迫诱导两种对盐度反应不同的大麦基因型根系脂质组发生变化。
Funct Plant Biol. 2016 Mar;43(2):207-219. doi: 10.1071/FP15253.
3
Insights Into Oxidized Lipid Modification in Barley Roots as an Adaptation Mechanism to Salinity Stress.大麦根中氧化脂质修饰作为对盐胁迫的适应机制的研究洞察
Front Plant Sci. 2020 Feb 4;11:1. doi: 10.3389/fpls.2020.00001. eCollection 2020.
4
Better salinity tolerance in tetraploid vs diploid volkamer lemon seedlings is associated with robust antioxidant and osmotic adjustment mechanisms.四倍体与二倍体沃尔卡默柠檬苗的耐盐性更好,这与强大的抗氧化和渗透调节机制有关。
J Plant Physiol. 2020 Jan;244:153071. doi: 10.1016/j.jplph.2019.153071. Epub 2019 Nov 4.
5
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Front Plant Sci. 2019 Feb 15;10:80. doi: 10.3389/fpls.2019.00080. eCollection 2019.
6
Root exudate metabolomes change under drought and show limited capacity for recovery.根系分泌物代谢组在干旱胁迫下发生变化,且恢复能力有限。
Sci Rep. 2018 Aug 23;8(1):12696. doi: 10.1038/s41598-018-30150-0.
7
Melatonin-Stimulated Triacylglycerol Breakdown and Energy Turnover under Salinity Stress Contributes to the Maintenance of Plasma Membrane H-ATPase Activity and K/Na Homeostasis in Sweet Potato.褪黑素刺激下甘薯在盐胁迫下的三酰甘油分解和能量周转有助于维持质膜H-ATP酶活性和K/Na稳态
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Metabolomics and its physiological regulation process reveal the salt-tolerant mechanism in Glycine soja seedling roots.代谢组学及其生理调控过程揭示了大豆幼苗根系的耐盐机制。
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Ionomic and metabolic responses to neutral salt or alkaline salt stresses in maize (Zea mays L.) seedlings.玉米(Zea mays L.)幼苗对中性盐或碱性盐胁迫的离子组学和代谢响应
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鉴定根中对 NaCl 响应的代谢物:一个脂质组学和挥发组学特征。

Identification of the NaCl-responsive metabolites in roots: A lipidomic and volatomic signature.

机构信息

Laboratory of Plant Molecular Physiology, Biotechnology Center of Borj-Cedria , Hammam-Lif, Tunisia.

出版信息

Plant Signal Behav. 2020 Aug 2;15(8):1777376. doi: 10.1080/15592324.2020.1777376. Epub 2020 Jun 7.

DOI:10.1080/15592324.2020.1777376
PMID:32508206
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8570732/
Abstract

It is known that the first osmotic phase affects the growth rates of roots immediately upon addition of salt; thus, dissecting metabolites profiling provides an opportunity to throw light into the basis of plant tolerance by searching for altered signatures that may be associated with tolerance at this organ. This study examined the influence of salt treatment on fatty acid composition and chemical composition of the essential oil of roots. Results proved that, under salt treatment, an increase of double bond index and linoleic desaturation ratio was pointed out. On the other hand, the reduction of saturated fatty acids was spotted. Such treatment also induced quantitative changes in the chemical composition of the essential oils from roots and increased markedly the rates of monoterpenes, while the sesquiterpenes decreased significantly. Both primary and secondary metabolites were found to be significantly salt responsive, including one fatty acid (palmitoleic acid) and six volatiles (E-2-dodecenal, tetradecanal, γ-Elemene, trans-caryophyllene, α-Terpinene and germacrene D). Plasticity at the metabolic level may allow Citrus plants to acclimatize their metabolic ranges in response to changing environmental conditions.

摘要

已知渗透第一阶段在加盐后立即影响根的生长速率;因此,对代谢物谱进行分析可以为植物的耐盐性提供基础,通过寻找可能与该器官耐盐性相关的改变特征。本研究检查了盐处理对根中脂肪酸组成和精油化学成分的影响。结果表明,在盐处理下,双键指数和亚油酸饱和度比增加。另一方面,饱和脂肪酸减少。这种处理还诱导了根精油化学成分的定量变化,并显著增加了单萜的速率,而倍半萜烯显著减少。初级和次级代谢物都被发现对盐有显著的反应性,包括一种脂肪酸(棕榈油酸)和六种挥发性成分(E-2-十二烯醛、十四醛、γ-榄香烯、反-石竹烯、α-松油烯和大根香叶烯 D)。代谢水平的可塑性可能使柑橘植物能够适应环境条件变化时的代谢范围。