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褪黑素激活 OsbZIP79-OsABI5 模块,协调氮和 ROS 稳态,以减轻水稻氮限制胁迫。

Melatonin activates the OsbZIP79-OsABI5 module that orchestrates nitrogen and ROS homeostasis to alleviate nitrogen-limitation stress in rice.

机构信息

Hainan Institute, Zhejiang University, Yazhou Bay Sci-Tech City, Sanya, China; National Key Laboratory of Rice Breeding and Biology and Zhejiang Provincial Key Laboratory of Crop Germplasm, The Advanced Seed Institute, Zhejiang University, Hangzhou, China.

Crop Breeding and Cultivation Research Institute, Shanghai Academy of Agricultural Sciences, Shanghai, China.

出版信息

Plant Commun. 2023 Nov 13;4(6):100674. doi: 10.1016/j.xplc.2023.100674. Epub 2023 Aug 19.

Abstract

Melatonin (Mel) has previously been reported to effectively alleviate nitrogen-limitation (N-L) stress and thus increase nitrogen-use efficiency (NUE) in several plants, but the underlying mechanism remains obscure. Here, we revealed that OsbZIP79 (BASIC LEUCINE ZIPPER 79) is transcriptionally activated under N-L conditions, and its expression is further enhanced by exogenous Mel. By the combined use of omics, genetics, and biological techniques, we revealed that the OsbZIP79-OsABI5 (ABSCISIC ACID INSENSITIVE 5) module stimulated regulation of reactive oxygen species (ROS) homeostasis and the uptake and metabolism of nitrogen under conditions of indoor nitrogen limitation (1/16 normal level). OsbZIP79 activated the transcription of OsABI5, and OsABI5 then bound to the promoters of target genes, including genes involved in ROS homeostasis and nitrogen metabolism, activating their transcription. This module was also indispensable for upregulation of several other genes involved in abscisic acid catabolism, nitrogen uptake, and assimilation under N-L and Mel treatment, although these genes were not directly transactivated by OsABI5. Field experiments demonstrated that Mel significantly improved rice growth under low nitrogen (L-N, half the normal level) by the same mechanism revealed in the nitrogen-limitation study. Mel application produced a 28.6% yield increase under L-N and thus similar increases in NUE. Also, two OsbZIP79-overexpression lines grown in L-N field plots had significantly higher NUE (+13.7% and +21.2%) than their wild types. Together, our data show that an OsbZIP79-OsABI5 module regulates the rice response to N insufficiency (N limitation or low N), which is important for increasing NUE in rice production.

摘要

褪黑素(Mel)先前已被报道可有效缓解氮限制(N-L)应激,从而提高几种植物的氮利用效率(NUE),但其潜在机制尚不清楚。在这里,我们揭示了 OsbZIP79(碱性亮氨酸拉链 79)在 N-L 条件下被转录激活,其表达进一步受到外源性 Mel 的增强。通过综合使用组学、遗传学和生物学技术,我们揭示了 OsbZIP79-OsABI5(脱落酸不敏感 5)模块在室内氮限制(正常水平的 1/16)条件下刺激活性氧(ROS)稳态和氮的吸收与代谢的调节。OsbZIP79 激活 OsABI5 的转录,然后 OsABI5 结合到靶基因的启动子上,包括涉及 ROS 稳态和氮代谢的基因,激活它们的转录。该模块对于氮限制和 Mel 处理下几种涉及脱落酸代谢、氮吸收和同化的其他基因的上调也是必不可少的,尽管这些基因不是直接由 OsABI5 转录激活的。田间实验表明,Mel 通过在氮限制研究中揭示的相同机制显著提高了低氮(L-N,正常水平的一半)下水稻的生长。Mel 的应用在 L-N 下产生了 28.6%的产量增加,因此 NUE 也有类似的增加。此外,在 L-N 田间试验中生长的两个 OsbZIP79 过表达系的 NUE 比其野生型高(+13.7%和+21.2%)。总之,我们的数据表明,OsbZIP79-OsABI5 模块调节了水稻对氮不足(氮限制或低氮)的反应,这对于提高水稻生产中的 NUE 很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b48/10721462/cd1a81874e8e/gr1.jpg

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