Endophyte-mediated enhancement of salt resistance in Arachis hypogaea L. by regulation of osmotic stress and plant defense-related genes

Qihua Liang, Dedong Tan, Haohai Chen, Xiaoli Guo, Muhammad Afzal, Xiaolin Wang, Zhiyuan Tan, Guixiang Peng
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Abstract

Soil salinization poses a significant environmental challenge affecting plant growth and agricultural sustainability. This study explores the potential of salt-tolerant endophytes to mitigate the adverse effects of soil salinization, emphasizing their impact on the development and resistance of Arachis hypogaea L. (peanuts).The diversity of culturable plant endophytic bacteria associated with Miscanthus lutarioriparius was investigated. The study focused on the effects of Bacillus tequilensis, Staphylococcus epidermidis, and Bacillus siamensis on the development and germination of A. hypogaea seeds in pots subjected to high NaCl concentrations (200 mM L−1).Under elevated NaCl concentrations, the inoculation of endophytes significantly (p < 0.05) enhanced seedling germination and increased the activities of enzymes such as Superoxide dismutase, catalase, and polyphenol oxidase, while reducing malondialdehyde and peroxidase levels. Additionally, endophyte inoculation resulted in increased root surface area, plant height, biomass contents, and leaf surface area of peanuts under NaCl stress. Transcriptome data revealed an augmented defense and resistance response induced by the applied endophyte (B. tequilensis, S. epidermidis, and B. siamensis) strain, including upregulation of abiotic stress related mechanisms such as fat metabolism, hormones, and glycosyl inositol phosphorylceramide (Na+ receptor). Na+ receptor under salt stress gate Ca2+ influx channels in plants. Notably, the synthesis of secondary metabolites, especially genes related to terpene and phenylpropanoid pathways, was highly regulated.The inoculated endophytes played a possible role in enhancing salt tolerance in peanuts. Future investigations should explore protein–protein interactions between plants and endophytes to unravel the mechanisms underlying endophyte-mediated salt resistance in plants.
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内生菌通过调控渗透胁迫和植物防御相关基因介导的Arachis hypogaea L.抗盐性的增强
土壤盐碱化是影响植物生长和农业可持续性的重大环境挑战。本研究探讨了耐盐内生菌减轻土壤盐碱化不利影响的潜力,强调了它们对花生(Arachis hypogaea L.)生长发育和抗性的影响。研究重点是在高浓度 NaCl(200 mM L-1)条件下,茶碱芽孢杆菌、表皮葡萄球菌和暹罗芽孢杆菌对花生种子的发育和萌发的影响。在 NaCl 浓度升高的条件下,接种内生菌可显著提高幼苗萌发率(p < 0.05),增加超氧化物歧化酶、过氧化氢酶和多酚氧化酶等酶的活性,同时降低丙二醛和过氧化物酶的水平。此外,内生菌接种还增加了花生在 NaCl 胁迫下的根表面积、株高、生物量含量和叶表面积。转录组数据显示,应用内生菌(B. tequilensis、S. epidermidis 和 B. siamensis)菌株诱导的防御和抵抗反应增强,包括非生物胁迫相关机制的上调,如脂肪代谢、激素和糖基肌醇磷酸甘油酰胺(Na+ 受体)。盐胁迫下的 Na+ 受体会关闭植物体内的 Ca2+ 流入通道。值得注意的是,次生代谢产物的合成,尤其是与萜烯和苯丙类途径相关的基因,受到了高度调控。未来的研究应探索植物与内生菌之间的蛋白质相互作用,以揭示内生菌介导植物耐盐性的机制。
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