褪黑素通过调节抗氧化系统、光合作用和内源激素影响前胡芦巴营养生长和香豆素合成。

IF 8.3 1区 医学 Q1 ENDOCRINOLOGY & METABOLISM Journal of Pineal Research Pub Date : 2024-12-23 DOI:10.1111/jpi.70018
Xiaoting Wan, Yingyu Zhang, Guoyu Wang, Ranran Liao, Haoyu Pan, Cunwu Chen, Bangxing Han, Hui Deng, Cheng Song
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引用次数: 0

摘要

前胡芦巴干根常被用作药用,它含有很高的吡喃和呋喃香豆素含量。虽然外源褪黑激素(MT)对植物生长、胁迫反应、次生代谢等方面的调控有影响,但MT是否调控praprotorum的营养生长发育尚不清楚。因此,本研究的目的是表征不同外源MT浓度对praprotorum生理功能、光合作用、抗氧化系统、激素诱导和香豆素合成的影响。不同MT浓度对拟南芥生长和香豆素合成相关基因的表达有不同的调控作用。与对照相比,低浓度的MT处理增加了prapratorum的光合作用和叶片生长,而高浓度的MT则降低了根系活力和伸长,降低了光合系统基因的表达。低浓度MT还能显著提高抗氧化酶活性和光合色素含量,调节IAA、赤霉素酸、水杨酸、茉莉酸、脱落酸和内源性MT的水平。此外,MT还能提高MT合成酶色氨酸脱羧酶、色氨酸羟化酶、色胺-5羟化酶、5-羟色胺n -乙酰转移酶、5-羟色胺o -甲基转移酶和咖啡酸o -甲基转移酶的活性。并促进异东莨菪素、东莨菪素、去乙酰氨基香豆素II、前胡罗勒素A、前胡罗勒素B和前胡罗勒素e的积累。MT还上调大部分与香豆素合成相关的基因,包括PAL1、C4H、4CL-3、C3H-1、F6H-1、CCoAMT、OMT-1、CYP71AJ1、CYP84A1-1、S8H-1、PT-1和COSY-1。这些结果表明,MT可能在促进香豆素成分合成的同时,也促进了praprotorum的生长发育。
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Melatonin Affects Peucedanum praeruptorum Vegetative Growth and Coumarin Synthesis by Modulating the Antioxidant System, Photosynthesis, and Endogenous Hormones

The dried root of Peucedanum praeruptorum is often used medicinally and has high pyran- and furanocoumarin content. Although exogenous melatonin (MT) impacts the regulation of plant growth, stress responses, secondary metabolism, etc., it remains unclear whether MT regulates the vegetative growth and development of P. praeruptorum. Thus, the aim of the current study is to characterize the effects of different exogenous MT concentrations on the physiological functions, photosynthesis, antioxidant systems, hormone induction, and coumarin synthesis of P. praeruptorum. Different MT concentrations exert distinct regulatory effects on P. praeruptorum growth and the expression of genes related to coumarin synthesis. Treatment of P. praeruptorum with low concentrations of MT increases photosynthesis and leaf growth compared to the control, while high concentrations reduce root vitality and elongation and decrease the expression of photosynthetic system genes. Low concentrations of MT also significantly increase antioxidant enzyme activity and photosynthetic pigment content and modulate the levels of IAA, gibberellic acid, salicylic acid, jasmonic acid, abscisic acid, and endogenous MT. Moreover, MT increases the activity of the MT synthesis enzymes tryptophan decarboxylase, tryptophan hydroxylase, tryptamine-5-hydroxylase, serotonin N-acetyltransferase, acetylserotonin O-methyltransferase, and caffeic acid O-methyltransferase, and promotes the accumulation of isoscopoletin, scopoletin, peucedanocoumarin II, praeruptorin A, praeruptorin B, and praeruptorin E. MT also upregulates most genes associated with coumarin synthesis, including PAL1, C4H, 4CL-3, C3H-1, F6H-1, CCoAMT, OMT-1, CYP71AJ1, CYP84A1-1, S8H-1, PT-1, and COSY-1. These findings demonstrate that MT may improve P. praeruptorum growth and development while promoting the synthesis of coumarin components.

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来源期刊
Journal of Pineal Research
Journal of Pineal Research 医学-内分泌学与代谢
CiteScore
17.70
自引率
4.90%
发文量
66
审稿时长
1 months
期刊介绍: The Journal of Pineal Research welcomes original scientific research on the pineal gland and melatonin in vertebrates, as well as the biological functions of melatonin in non-vertebrates, plants, and microorganisms. Criteria for publication include scientific importance, novelty, timeliness, and clarity of presentation. The journal considers experimental data that challenge current thinking and welcomes case reports contributing to understanding the pineal gland and melatonin research. Its aim is to serve researchers in all disciplines related to the pineal gland and melatonin.
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