Exogenous melatonin enhanced cadmium stress tolerance of cucumber seedlings (Cucumis sativus L.)

IF 1.4 4区 生物学 Q3 BIOLOGY
Xin Kang, Zi-Qi Pei, Ting-Ting Xu, Cui-Yun Dong, Xue Bai, Cheng Ma, Qiao Zhu, Cai-Hong Chai, Juan Wang, Sheng Zheng, Teng-Guo Zhang
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Abstract

Cadmium (Cd) stress seriously affects cucumber growth, yield, and quality. Melatonin (MT) can enhance plant resistance to abiotic stresses. However, studies on the mechanism of MT in enhancing plant resistance are limited. To better understand the underlying physiological and molecular mechanisms, the antioxidant defenses, photosynthesis, and transcriptome profiles of cucumber were analyzed under different growth conditions. The results demonstrated that exogenous MT significantly alleviated the Cd-induced damages to cucumber seedlings. Compared with Cd treatment, MT + Cd treatment enhanced antioxidant enzyme activities, suppressed ROS production, and improved photosynthesis in cucumber seedlings. Intriguingly, the scavenging or inhibition of hydrogen peroxide and nitric oxide reversed the positive effects of melatonin described above. RNA-seq identified 1299 differentially expressed genes in MD (MT + Cd) _vs_ D (Cd). Further detailed analyses suggested that MT-regulated genes are mainly related to photosynthesis, membrane lipid peroxidation, and plant hormone metabolism. In addition, some transcription factors and heavy metal transporters were involved in MT-induced Cd tolerance in cucumber seedlings. The results laid the foundation for further elucidation of the mechanism of exogenous MT-mediated Cd tolerance in cucumber and provided a theoretical reference for the future utilization of melatonin to improve Cd tolerance in cucumber.

Abstract Image

外源性褪黑激素增强黄瓜幼苗对镉胁迫的耐受性
镉(Cd)胁迫严重影响黄瓜的生长、产量和品质。褪黑激素(MT)能增强植物对非生物胁迫的抵抗力。然而,有关褪黑激素增强植物抗性机理的研究还很有限。为了更好地了解潜在的生理和分子机制,研究人员分析了黄瓜在不同生长条件下的抗氧化防御能力、光合作用和转录组图谱。结果表明,外源 MT 能显著减轻镉对黄瓜幼苗的损伤。与镉处理相比,MT + 镉处理提高了黄瓜幼苗的抗氧化酶活性,抑制了 ROS 的产生,改善了光合作用。耐人寻味的是,清除或抑制过氧化氢和一氧化氮逆转了上述褪黑激素的积极作用。在 MD(MT + Cd)_vs_ D(Cd)中,RNA-seq 发现了 1299 个差异表达基因。进一步的详细分析表明,MT 调控的基因主要与光合作用、膜脂过氧化和植物激素代谢有关。此外,一些转录因子和重金属转运体也参与了MT诱导黄瓜幼苗耐镉的过程。研究结果为进一步阐明外源MT介导黄瓜耐镉机理奠定了基础,并为今后利用褪黑激素提高黄瓜耐镉能力提供了理论参考。
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来源期刊
Biologia
Biologia 生物-生物学
CiteScore
3.30
自引率
6.70%
发文量
290
审稿时长
6 months
期刊介绍: Established in 1946, Biologia publishes high-quality research papers in the fields of microbial, plant and animal sciences. Microbial sciences papers span all aspects of Bacteria, Archaea and microbial Eucarya including biochemistry, cellular and molecular biology, genomics, proteomics and bioinformatics. Plant sciences topics include fundamental research in taxonomy, geobotany, genetics and all fields of experimental botany including cellular, whole-plant and community physiology. Zoology coverage includes animal systematics and taxonomy, morphology, ecology and physiology from cellular to molecular level.
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