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褪黑素通过调节碳同化和ATP积累在促进植物生长中的作用。

Role of melatonin in promoting plant growth by regulating carbon assimilation and ATP accumulation.

作者信息

Teng Zhiyan, Zheng Weiwei, Jiang Shufang, Hong Seung-Beom, Zhu Zhujun, Zang Yunxiang

机构信息

Collaborative Innovation Center for Efficient and Green Production of Agriculture in Mountainous Areas, College of Horticulture Science, Zhejiang A&F University, Hangzhou, Zhejiang 311300, China; Key Laboratory of Quality and Safety Control for Subtropical Fruit and Vegetable, Ministry of Agriculture and Rural Affairs, College of Horticulture Science, Zhejiang A&~F University, Hangzhou, Zhejiang 311300, China.

Department of Biotechnology, University of Houston Clear Lake, Houston, TX 77058-1098, USA.

出版信息

Plant Sci. 2022 Jun;319:111276. doi: 10.1016/j.plantsci.2022.111276. Epub 2022 Mar 30.

Abstract

Melatonin (MT) is a phytohormone important in mediating diverse plant growth processes. In this study, we performed transcriptomic, qRT-PCR, physiological and biochemical analyses of Brassica rapa seedlings in order to understand how MT promotes plant growth. The results showed that exogenous MT increased the rate of cyclic electron flow around photosystem (PS) I, fluorescence quantum yield, and electron transport efficiency between PSII and PSI to promote the vegetative growth of B. rapa seedlings without affecting oxidative stress level, as compared to control. However, MT treatment significantly reduced photosynthetic rate (Pn), transpiration rate (Tr), and stomatal conductance (Gs) by 2.25-, 1.23- and 3.50-fold at 0.05 level, respectively. This occurred in parallel with the down-regulation of the genes for carbon fixation in photosynthetic organisms in a KEGG pathway enrichment. More accelerated plant growth despite the reduced photosynthesis rate and the enhanced electron transport rate suggested that NADPH and adenosine triphosphate (ATP) were preferentially diverted into other anabolic reactions than the Calvin cycle upon MT application. MT treatment increased ATP level and facilitated carbon assimilation into primary metabolism that led to a significant enhancement of soluble protein, sucrose, and fructose, but a significant decrease in glucose content. MT-induced carbon assimilation into primary metabolism was driven by up-regulation of the genes for glutathione metabolism, Krebs cycle, ribosome, and DNA replication in a KEGG pathway enrichment, as well as down-regulation of the genes for secondary metabolites. Our results provide an insight into MT-mediated metabolic adjustments triggered by coordinate changes in a wide range of gene expression profiles to help improve the plant functionality.

摘要

褪黑素(MT)是一种在介导多种植物生长过程中起重要作用的植物激素。在本研究中,我们对白菜幼苗进行了转录组学、qRT-PCR、生理生化分析,以了解MT如何促进植物生长。结果表明,与对照相比,外源MT提高了围绕光系统(PS)I的循环电子流速率、荧光量子产率以及PSII和PSI之间的电子传递效率,从而促进了白菜幼苗的营养生长,且不影响氧化应激水平。然而,MT处理在0.05水平上分别使光合速率(Pn)、蒸腾速率(Tr)和气孔导度(Gs)显著降低了2.25倍、1.23倍和3.50倍。这与KEGG途径富集中光合生物碳固定基因的下调同时发生。尽管光合速率降低但植物生长加速以及电子传递速率增强,这表明在施用MT后,烟酰胺腺嘌呤二核苷酸磷酸(NADPH)和三磷酸腺苷(ATP)优先被转移到卡尔文循环以外的其他合成代谢反应中。MT处理提高了ATP水平,并促进了碳同化为初级代谢,导致可溶性蛋白质、蔗糖和果糖显著增加,但葡萄糖含量显著降低。MT诱导的碳同化为初级代谢是由KEGG途径富集中谷胱甘肽代谢、三羧酸循环、核糖体和DNA复制基因的上调以及次生代谢产物基因的下调驱动的。我们的结果为MT介导的代谢调节提供了见解,这种调节是由广泛的基因表达谱协调变化触发的,有助于改善植物功能。

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