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JPT10通过影响多种抗氧化剂和植物激素的水平来提高谷子的耐盐性。

JPT10 promotes salt tolerance in foxtail millet () by affecting the levels of multiple antioxidants and phytohormones.

作者信息

Xiao Shenghui, Wan Yiman, Zheng Yue, Wang Yongdong, Fan Jiayin, Xu Qian, Gao Zheng, Wu Changai

机构信息

National Key Laboratory of Wheat Improvement, Shandong Engineering Research Center of Plant-Microbial Restoration for Saline-Alkali Land, College of Life Sciences Shandong Agricultural University Tai'an Shandong province China.

出版信息

Plant Environ Interact. 2023 Sep 11;4(5):275-290. doi: 10.1002/pei3.10122. eCollection 2023 Oct.

Abstract

Plant growth-promoting bacterias (PGPBs) can increase crop output under normal and abiotic conditions. However, the mechanisms underlying the plant salt tolerance-promoting role of PGPBs still remain largely unknown. In this study, we demonstrated that JPT10 promoted the salt tolerance of both dicots and monocots. Physiological analysis revealed that JPT10 reduced reactive oxygen species accumulation by improving the antioxidant capability of foxtail millet seedlings. The metabolomic analysis of JPT10-inoculated foxtail millet seedlings led to the identification of 438 diversely accumulated metabolites, including flavonoids, phenolic acids, lignans, coumarins, sugar, alkaloids, organic acids, and lipids, under salt stress. Exogenous apigenin and chlorogenic acid increased the salt tolerance of foxtail millet seedlings. Simultaneously, JPT10 led to greater amounts of abscisic acid (ABA), indole-3-acetic acid (IAA), salicylic acid (SA), and their derivatives but lower levels of 12-oxo-phytodienoic acid (OPDA), jasmonate (JA), and JA-isoleucine (JA-Ile) under salt stress. Exogenous JA, methyl-JA, and OPDA intensified, whereas ibuprofen or phenitone, two inhibitors of JA and OPDA biosynthesis, partially reversed, the growth inhibition of foxtail millet seedlings caused by salt stress. Our results shed light on the response of foxtail millet seedlings to under salt stress and provide potential compounds to increase salt tolerance in foxtail millet and other crops.

摘要

植物促生细菌(PGPBs)在正常和非生物条件下均可提高作物产量。然而,PGPBs促进植物耐盐性的潜在机制仍 largely未知。在本研究中,我们证明JPT10促进双子叶植物和单子叶植物的耐盐性。生理分析表明,JPT10通过提高谷子幼苗的抗氧化能力来减少活性氧的积累。对接种JPT10的谷子幼苗进行代谢组学分析,结果鉴定出438种在盐胁迫下差异积累的代谢物,包括黄酮类、酚酸类、木脂素类、香豆素类、糖类、生物碱类、有机酸类和脂类。外源芹菜素和绿原酸提高了谷子幼苗的耐盐性。同时,JPT10在盐胁迫下导致更多的脱落酸(ABA)、吲哚-3-乙酸(IAA)、水杨酸(SA)及其衍生物,但12-氧代植物二烯酸(OPDA)、茉莉酸(JA)和茉莉酸异亮氨酸(JA-Ile)的水平较低。外源JA、茉莉酸甲酯和OPDA增强了盐胁迫对谷子幼苗生长的抑制作用,而JA和OPDA生物合成的两种抑制剂布洛芬或非那西汀则部分逆转了这种抑制作用。我们的研究结果揭示了谷子幼苗在盐胁迫下的反应,并为提高谷子和其他作物的耐盐性提供了潜在的化合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ba9/10564379/d18c91cb1f67/PEI3-4-275-g007.jpg

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