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CsATG3a的过表达提高了拟南芥对氮缺乏的耐受性并增加了氮利用效率。

Overexpression of CsATG3a improves tolerance to nitrogen deficiency and increases nitrogen use efficiency in arabidopsis.

作者信息

Huang Wei, Ma Danni, Xia Li, Zhang E, Wang Pu, Wang Mingle, Guo Fei, Wang Yu, Ni Dejiang, Zhao Hua

机构信息

National Key Laboratory for Germplasm Innovation & Utilization of Horticultural Crops, Huazhong Agricultural University, Wuhan, 430070, PR China; College of Horticulture and Forestry Sciences, Huazhong Agricultural University, Wuhan, 430070, PR China.

National Key Laboratory for Germplasm Innovation & Utilization of Horticultural Crops, Huazhong Agricultural University, Wuhan, 430070, PR China; College of Horticulture and Forestry Sciences, Huazhong Agricultural University, Wuhan, 430070, PR China.

出版信息

Plant Physiol Biochem. 2023 Mar;196:328-338. doi: 10.1016/j.plaphy.2023.01.057. Epub 2023 Jan 31.

Abstract

Nitrogen (N) is a major nutrition element for tea plant. However, application of high levels of N negatively causes environmental problems. Therefore, improved N use efficiency (NUE) of tea plant will be highly desirable and crucial for sustainable tea cultivation. Autophagy plays a central role in N recycling and holds potential to improve N utilization, and many AuTophaGy-related genes (ATGs) are involved in the autophagy process. Here, CsATG3a was identified from Camellia sinensis, and the functions involved in N utilization was characterized in arabidopsis (Arabidopsis thaliana). The transcript level of CsATG3a in tea leaves increases with their maturity. Relative to the wild type (WT) arabidopsis, two CsATG3a-overexpressing (CsATG3a-OE) lines exhibited improved vegetative growth, delayed reproductive stage, and upregulated expression of AtATGs (AtATG3, AtATG5 and AtATG8b) in a low N (LN) hydroponic condition. The expression levels of AtNRT1.1, AtNRT2.1, AtNRT2.2, AtAMT1.1 and AtAMT1.3 for N uptake and transport in roots were all significantly higher in CsATG3a-OE lines compared with those in the WT under LN. Meanwhile, the overexpression of CsATG3a in arabidopsis also increased N and dry matter allocation into both rosette leaves and roots under LN. Additionally, compared with WT, improved HI (harvest index), NHI (N harvest index), NUtE (N utilization efficiency) and NUE (N use efficiency) of CsATG3a-OE lines were further confirmed in a low-N soil cultured experiment. Together, these results concluded that CsATG3a is involved in N recycling and enhances tolerance to LN, indicating that CsATG3a holds potential promise to improve NUE in tea plant.

摘要

氮(N)是茶树的主要营养元素。然而,高施氮量会对环境造成负面影响。因此,提高茶树的氮利用效率(NUE)对于茶树的可持续种植至关重要且十分必要。自噬在氮循环中起着核心作用,具有提高氮利用率的潜力,许多自噬相关基因(ATG)参与自噬过程。在此,从茶树中鉴定出CsATG3a,并在拟南芥中对其参与氮利用的功能进行了表征。茶树叶片中CsATG3a的转录水平随叶片成熟度增加而升高。相对于野生型(WT)拟南芥,两个过表达CsATG3a(CsATG3a - OE)的株系在低氮(LN)水培条件下营养生长得到改善,生殖阶段延迟,AtATG(AtATG3、AtATG5和AtATG8b)的表达上调。与WT相比,CsATG3a - OE株系根系中参与氮吸收和转运的AtNRT1.1、AtNRT2.1、AtNRT2.2、AtAMT1.1和AtAMT1.3的表达水平在LN条件下均显著更高。同时,在LN条件下,拟南芥中CsATG3a的过表达还增加了莲座叶和根中的氮及干物质分配。此外,在低氮土壤培养实验中进一步证实,与WT相比,CsATG3a - OE株系的收获指数(HI)、氮收获指数(NHI)、氮利用效率(NUtE)和氮利用效率(NUE)均有所提高。综上所述,这些结果表明CsATG3a参与氮循环并增强了对低氮的耐受性,表明CsATG3a有望提高茶树的氮利用效率。

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