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外源施用生物硒纳米颗粒缓解油菜(Brassica napus L.)苗期盐胁迫对生产力的影响。

Mitigation of the salinity stress in rapeseed (Brassica napus L.) productivity by exogenous applications of bio-selenium nanoparticles during the early seedling stage.

机构信息

MOA Key Laboratory of Crop Ecophysiology and Farming System in the Middle Reaches of the Yangtze River, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan, 430070, China; Field Crops Research Institute, Agricultural Research Center (ARC), Giza, 12619, Egypt.

MOA Key Laboratory of Crop Ecophysiology and Farming System in the Middle Reaches of the Yangtze River, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan, 430070, China.

出版信息

Environ Pollut. 2022 Oct 1;310:119815. doi: 10.1016/j.envpol.2022.119815. Epub 2022 Aug 1.

Abstract

In recent years, much attention has been directed toward using nanoparticles (NPs) as one of the most effective strategies to improve plant growth, especially under salt stress conditions. Further research has been conducted to develop NPs using various chemical ways; accordingly, knowledge about the beneficial effect of bioSeNPs in rapeseed is obscure. Selenium (Se) is a vital micronutrient with a series of physiological and antioxidative properties. Seed priming is emerging as a low-cost, efficient, and environment-friendly seed treatment in nanotechnology. The current study was carried out to examine the promising effects of nanopriming via bioSeNPs on the expression level of aquaporin genes, seed microstructure, seed germination, growth traits, physiochemical attributes, and minerals uptake of two rapeseed cultivars under salinity stress conditions. Our investigation monitored the positive effects of bioSeNPs on the expression level of aquaporin genes (BnPIP1-1 and BnPIP2-1) and water uptake during the seed imbibition (4 and 8 h of priming), which indicated higher imbibition potential and germination promotion with bioSeNPs application (most effective at 150 μmol/L). The total performance index was significantly enhanced with nano-treatments in rapeseed seedlings. Collectively, nano-application improved seed microstructure, seed germination, and photosynthetic efficiency directly correlated with higher seedlings biomass, especially with a higher concentration of bioSeNPs. The enhancement in α-amylase and free amino acid contents in nanoprimed seeds resulted in rapid seed germination. Moreover, bioSeNPs increased the osmotic adjustment and enhanced the efficiency of the plant's defense system by improving the activity of enzymatic and non-enzymatic antioxidants, thus enhancing ROS scavenging under salt stress. The obtained results may indicate the strengthening of seed vigor, improving seedling growth and physiochemical attributes via bioSeNPs. Our findings displayed that bioSeNPs modulated the Na and K uptake, which improved the rapeseed growth and showed a close relationship with the low contents of toxic Na ion; thus, it prevented oxidative damage due to salt stress. This comprehensive data can add more knowledge to understand the mechanisms behind plant-bioSeNPs interaction and provide physiological evidence for the beneficial roles of nanopriming using bioSeNPs on rapeseed germination and seedling development under salinity stress conditions. Such studies can be used to develop simple prepackaged nano primer products, which can be used before sowing to boost seed germination and crop productivity under stress conditions.

摘要

近年来,人们越来越关注使用纳米粒子(NPs)作为提高植物生长的最有效策略之一,尤其是在盐胁迫条件下。进一步的研究已经开发了使用各种化学方法的 NPs;因此,关于生物硒 NPs 在油菜中的有益作用的知识尚不清楚。硒(Se)是一种重要的微量元素,具有一系列生理和抗氧化特性。种子引发作为一种低成本、高效、环保的纳米技术种子处理方法正在兴起。本研究旨在研究通过生物硒 NPs 进行纳米引发对两种油菜品种在盐胁迫条件下aquaporin 基因表达水平、种子微观结构、种子萌发、生长特性、理化特性和矿物质吸收的影响。我们的研究监测了生物硒 NPs 对 aquaporin 基因(BnPIP1-1 和 BnPIP2-1)表达水平和种子吸水量的积极影响(在浸种的 4 和 8 小时),这表明生物硒 NPs 的应用具有更高的吸水量潜力和促进萌发(在 150 μmol/L 时最有效)。纳米处理显著提高了油菜幼苗的总性能指数。总的来说,纳米应用改善了种子微观结构、种子萌发和光合作用效率,直接与更高的幼苗生物量相关,尤其是在更高浓度的生物硒 NPs 时。纳米引发种子中α-淀粉酶和游离氨基酸含量的增加导致快速萌发。此外,生物硒 NPs 通过提高酶和非酶抗氧化剂的活性来增强植物防御系统的效率,从而在盐胁迫下增强 ROS 的清除,从而提高了渗透调节能力。研究结果表明,生物硒 NPs 通过提高种子活力、改善幼苗生长和理化特性来增强种子活力。我们的研究结果表明,生物硒 NPs 调节了 Na 和 K 的吸收,从而促进了油菜的生长,并与有毒 Na 离子的低含量密切相关;因此,它防止了由于盐胁迫而导致的氧化损伤。这些综合数据可以为理解植物-生物硒 NPs 相互作用的机制提供更多的知识,并为生物硒 NPs 在盐胁迫条件下对油菜萌发和幼苗发育的有益作用提供生理证据。这些研究可以用于开发简单的预包装纳米引发剂产品,这些产品可以在播种前使用,以提高种子在胁迫条件下的萌发率和作物生产力。

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