生物化学和代谢特征是布甘肠杆菌WRS7†干旱适应的基础

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2023-05-29 DOI:10.1039/D3MO00051F
Saumya Arora, Piyoosh K Babele and Prabhat Nath Jha
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引用次数: 0

摘要

仅干旱一项造成的作物年产量损失就超过所有其他环境压力的总和。在受干旱影响的农业生态系统中,利用抗逆性PGPR的潜力赋予植物抗性和提高作物生产力的兴趣日益增加。详细了解其复杂的生理生化反应,将为探究PGPR群落在干旱条件下的胁迫适应机制开辟道路。它将通过代谢工程的PGPR为根际工程铺平道路。因此,为了揭示干旱介导的渗透胁迫下的生理和代谢网络,我们进行了生化分析并应用非靶向代谢组学研究了PGPR bugendensis肠杆菌WRS7 (Eb WRS7)的胁迫适应机制。干旱引起氧化应激,导致Eb WRS7生长速度减慢。然而,Eb WRS7能够耐受干旱胁迫,在干旱条件下细胞形态没有变化。ROS的过量产生导致脂质过氧化(MDA增加),并最终激活抗氧化系统和细胞信号级联反应,导致离子(Na+、K+和Ca2+)、渗透物(脯氨酸、外多糖、甜菜碱和海藻糖)的积累,并调节质膜的脂质动力学,以进行渗透传感和渗透调节,表明PGPR Eb WRS7中存在渗透胁迫适应机制。最后,基于gc - ms的代谢物分析和解除管制的代谢反应强调了渗透物、离子和细胞内代谢物在调节Eb WRS7代谢中的作用。我们的研究结果表明,了解代谢物的作用和代谢途径可以为未来的PGPR代谢工程和开发促进干旱农业生态系统下植物生长的生物接种剂提供基础。
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Biochemical and metabolic signatures are fundamental to drought adaptation in PGPR Enterobacter bugandensis WRS7†

Drought alone causes more annual loss in crop yield than the sum of all other environmental stresses. There is growing interest in harnessing the potential of stress-resilient PGPR in conferring plant resistance and enhancing crop productivity in drought-affected agroecosystems. A detailed understanding of the complex physiological and biochemical responses will open up the avenues to stress adaptation mechanisms of PGPR communities under drought. It will pave the way for rhizosphere engineering through metabolically engineered PGPR. Therefore, to reveal the physiological and metabolic networks in response to drought-mediated osmotic stress, we performed biochemical analyses and applied untargeted metabolomics to investigate the stress adaptation mechanisms of a PGPR Enterobacter bugendensis WRS7 (Eb WRS7). Drought caused oxidative stress and resulted in slower growth rates in Eb WRS7. However, Eb WRS7 could tolerate drought stress and did not show changes in cell morphology under stress conditions. Overproduction of ROS caused lipid peroxidation (increment in MDA) and eventually activated antioxidant systems and cell signalling cascades, which led to the accumulation of ions (Na+, K+, and Ca2+), osmolytes (proline, exopolysaccharides, betaine, and trehalose), and modulated lipid dynamics of the plasma membranes for osmosensing and osmoregulation, suggesting an osmotic stress adaption mechanism in PGPR Eb WRS7. Finally, GC–MS-based metabolite profiling and deregulated metabolic responses highlighted the role of osmolytes, ions, and intracellular metabolites in regulating Eb WRS7 metabolism. Our results suggest that understanding the role of metabolites and metabolic pathways can be exploited for future metabolic engineering of PGPR and developing bio inoculants for plant growth promotion under drought-affected agroecosystems.

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