Wu Xiaohui, Fan Yaning, Wang Ruoyi, Zhao Qian, Ali Qurban, Wu Huijun, Gu Qin, Borriss Rainer, Xie Yongli, Gao Xuewen
Key Laboratory of Integrated Management of Crop Diseases and Pests, Ministry of Education, Department of Plant Pathology, College of Plant Protection, Nanjing Agricultural University, Nanjing, China.
State Key Laboratory of Plateau Ecology and Agriculture, Department of Grassland Science, College of Agricultural and Husbandry, Qinghai University, Xining, China.
Front Plant Sci. 2022 Aug 11;13:978066. doi: 10.3389/fpls.2022.978066. eCollection 2022.
Salt stress decreases plant growth and is a major threat to crop yields worldwide. The present study aimed to alleviate salt stress in plants by inoculation with halophilic plant growth-promoting rhizobacteria (PGPR) isolated from an extreme environment in the Qinghai-Tibetan Plateau. Wheat plants inoculated with KKD1 showed increased seedling morphological parameters and physiological indexes. The expression of wheat genes directly involved in plant growth was upregulated in the presence of KKD1, as shown by real-time quantitative PCR (RT-qPCR) analysis. The metabolism of phytohormones, such as 6-benzylaminopurine and gibberellic acid were also enhanced. Mining of the KKD1 genome corroborated its potential plant growth promotion (PGP) and biocontrol properties. Moreover, KKD1 was able to support plant growth under salt stress by inducing a stress response in wheat by modulating phytohormone levels, regulating lipid peroxidation, accumulating betaine, and excluding Na. In addition, KKD1 positively affected the soil nitrogen content, soil phosphorus content and soil pH. Our findings indicated that KKD1 is a promising candidate for encouraging wheat plant growth under saline conditions.
盐胁迫会降低植物生长,是全球作物产量面临的主要威胁。本研究旨在通过接种从青藏高原极端环境中分离出的嗜盐植物促生菌(PGPR)来缓解植物的盐胁迫。接种KKD1的小麦植株幼苗形态参数和生理指标均有所增加。实时定量PCR(RT-qPCR)分析表明,在存在KKD1的情况下,直接参与植物生长的小麦基因表达上调。6-苄氨基嘌呤和赤霉素等植物激素的代谢也得到增强。对KKD1基因组的挖掘证实了其潜在的植物促生(PGP)和生物防治特性。此外,KKD1能够通过调节植物激素水平、调控脂质过氧化、积累甜菜碱和排除钠离子,在小麦中诱导应激反应,从而在盐胁迫下支持植物生长。此外,KKD1对土壤氮含量、土壤磷含量和土壤pH有积极影响。我们的研究结果表明,KKD1是在盐渍条件下促进小麦植株生长的一个有前景的候选菌株。