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在低温胁迫下,用 MgFe-LDHs 提高黄瓜幼苗的铁含量和生长。

Enhancing iron content and growth of cucumber seedlings with MgFe-LDHs under low-temperature stress.

机构信息

State Key Laboratory of Vegetable Biobreeding, Institute of Vegetables and Flowers, Chinese Academy of Agricultural Sciences, Beijing, 100081, China.

Research Unit of Molecular Epidemiology, Helmholtz Zentrum München, Neuherberg, 85764, Germany.

出版信息

J Nanobiotechnology. 2024 May 19;22(1):268. doi: 10.1186/s12951-024-02545-x.

Abstract

The development of cost-effective and eco-friendly fertilizers is crucial for enhancing iron (Fe) uptake in crops and can help alleviate dietary Fe deficiencies, especially in populations with limited access to meat. This study focused on the application of MgFe-layered double hydroxide nanoparticles (MgFe-LDHs) as a potential solution. We successfully synthesized and characterized MgFe-LDHs and observed that 1-10 mg/L MgFe-LDHs improved cucumber seed germination and water uptake. Notably, the application of 10 mg/L MgFe-LDHs to roots significantly increased the seedling emergence rate and growth under low-temperature stress. The application of 10 mg/L MgFe-LDHs during sowing increased the root length, lateral root number, root fresh weight, aboveground fresh weight, and hypocotyl length under low-temperature stress. A comprehensive analysis integrating plant physiology, nutrition, and transcriptomics suggested that MgFe-LDHs improve cold tolerance by upregulating SA to stimulate CsFAD3 expression, elevating GA levels for enhanced nitrogen metabolism and protein synthesis, and reducing levels of ABA and JA to support seedling emergence rate and growth, along with increasing the expression and activity of peroxidase genes. SEM and FTIR further confirmed the adsorption of MgFe-LDHs onto the root hairs in the mature zone of the root apex. Remarkably, MgFe-LDHs application led to a 46% increase (p < 0.05) in the Fe content within cucumber seedlings, a phenomenon not observed with comparable iron salt solutions, suggesting that the nanocrystalline nature of MgFe-LDHs enhances their absorption efficiency in plants. Additionally, MgFe-LDHs significantly increased the nitrogen (N) content of the seedlings by 12% (p < 0.05), promoting nitrogen fixation in the cucumber seedlings. These results pave the way for the development and use of LDH-based Fe fertilizers.

摘要

开发具有成本效益和环保效益的肥料对于提高作物对铁(Fe)的吸收至关重要,有助于缓解膳食中铁缺乏症,尤其是在肉类摄入有限的人群中。本研究聚焦于镁铁层状双氢氧化物纳米粒子(MgFe-LDHs)的应用。我们成功地合成并表征了 MgFe-LDHs,并观察到 1-10mg/L 的 MgFe-LDHs 可以提高黄瓜种子的发芽率和吸水能力。值得注意的是,将 10mg/L 的 MgFe-LDHs 施加到根部可以显著提高低温胁迫下的幼苗出苗率和生长。在播种时施加 10mg/L 的 MgFe-LDHs 可以增加低温胁迫下的根长、侧根数、根鲜重、地上鲜重和下胚轴长度。综合植物生理学、营养学和转录组学的分析表明,MgFe-LDHs 通过上调 SA 来刺激 CsFAD3 的表达,提高 GA 水平以增强氮代谢和蛋白质合成,降低 ABA 和 JA 的水平来支持幼苗的出苗率和生长,同时增加过氧化物酶基因的表达和活性,从而提高植物的耐寒性。SEM 和 FTIR 进一步证实了 MgFe-LDHs 吸附在根尖成熟区的根毛上。值得注意的是,MgFe-LDHs 的应用使黄瓜幼苗中的 Fe 含量增加了 46%(p<0.05),而用可比的铁盐溶液处理则没有观察到这种现象,这表明 MgFe-LDHs 的纳米晶性质提高了其在植物中的吸收效率。此外,MgFe-LDHs 还使幼苗的氮(N)含量增加了 12%(p<0.05),促进了黄瓜幼苗的固氮作用。这些结果为 LDH 基铁肥的开发和应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6ba/11103931/7db8630a7c89/12951_2024_2545_Fig1_HTML.jpg

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