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叶面喷施硫氢化钠通过维持氮钾平衡和激活耐盐信号通路缓解黄瓜盐胁迫

Foliar Spraying of NaHS Alleviates Cucumber Salt Stress by Maintaining N/K Balance and Activating Salt Tolerance Signaling Pathways.

作者信息

Luo Shilei, Liu Zeci, Wan Zilong, He Xianxia, Lv Jian, Yu Jihua, Zhang Guobin

机构信息

College of Horticulture, Gansu Agricultural University, Lanzhou 730070, China.

State Key Laboratory of Aridland Crop Science, Lanzhou 730070, China.

出版信息

Plants (Basel). 2023 Jun 26;12(13):2450. doi: 10.3390/plants12132450.

Abstract

Hydrogen sulfide (HS) is involved in the regulation of plant salt stress as a potential signaling molecule. This work investigated the effect of HS on cucumber growth, photosynthesis, antioxidation, ion balance, and other salt tolerance pathways. The plant height, stem diameter, leaf area and photosynthesis of cucumber seedlings were significantly inhibited by 50 mmol·L NaCl. Moreover, NaCl treatment induced superoxide anion (O) and Na accumulation and affected the absorption of other mineral ions. On the contrary, exogenous spraying of 200 μmol·L sodium hydrosulfide (NaHS) maintained the growth of cucumber seedlings, increased photosynthesis, enhanced the ascorbate-glutathione cycle (AsA-GSH), and promoted the absorption of mineral ions under salt stress. Meanwhile, NaHS upregulated , , , , and genes to maintain Na/K balance and increased the relative expression of , , , and genes to enhance salt tolerance. These positive effects of HS could be reversed by 150 mmol·L propargylglycine (PAG, a specific inhibitor of HS biosynthesis). These results indicated that HS could mitigate salt damage in cucumber, mainly by improving photosynthesis, enhancing the AsA-GSH cycle, reducing the Na/K ratio, and inducing the SOS pathway and MAPK pathway.

摘要

硫化氢(HS)作为一种潜在的信号分子参与植物盐胁迫的调控。本研究探讨了HS对黄瓜生长、光合作用、抗氧化作用、离子平衡及其他耐盐途径的影响。50 mmol·L NaCl显著抑制了黄瓜幼苗的株高、茎粗、叶面积和光合作用。此外,NaCl处理诱导了超氧阴离子(O)和Na的积累,并影响了其他矿质离子的吸收。相反,外源喷施200 μmol·L 硫氢化钠(NaHS)可维持黄瓜幼苗的生长,增加光合作用,增强抗坏血酸-谷胱甘肽循环(AsA-GSH),并促进盐胁迫下矿质离子的吸收。同时,NaHS上调了 、 、 、 和 基因以维持Na/K平衡,并增加了 、 、 和 基因的相对表达以增强耐盐性。HS的这些积极作用可被150 mmol·L炔丙基甘氨酸(PAG,HS生物合成的特异性抑制剂)逆转。这些结果表明,HS可减轻黄瓜的盐害,主要是通过改善光合作用、增强AsA-GSH循环、降低Na/K比以及诱导SOS途径和MAPK途径来实现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9385/10346887/3d2cea159901/plants-12-02450-g001.jpg

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