Nitrate improves aluminium resistance through SLAH‐mediated citrate exudation from roots

Author:

Wang Peng1ORCID,Cao Hongrui1,Quan Shuxuan2,Wang Yong2ORCID,Li Mu3,Wei Ping4,Zhang Meng1,Wang Hui1,Ma Hongyu1,Li Xiaofeng5,Yang Zhong‐Bao1ORCID

Affiliation:

1. The Key Laboratory of Plant Development and Environmental Adaptation Biology, Ministry of Education, School of Life Science Shandong University (Qingdao) Qingdao China

2. State Key Laboratory of Crop Biology, College of Life Sciences Shandong Agricultural University Tai'an China

3. Maize Research Institute Jilin Academy of Agricultural Sciences Gongzhuling China

4. Linyi Academy of Agricultural Sciences Linyi China

5. College of Agronomy Guangxi University Nanning China

Abstract

AbstractAluminium (Al) toxicity is one of the major constraint for crop production in acidic soil, and the inappropriate utilization of nitrogen fertilizer can accelerate soil acidification. Despite previous studies investigating the regulation of nitrogen forms in Al toxicity of plants, the underlying mechanism, particularly at the molecular level, remains unclear. This study aims to uncover the potentially regulatory mechanism of nitrate (NO3) in the Al resistance of maize and Arabidopsis. NO3 conservatively improves Al resistance in maize and Arabidopsis, with nitrate‐elevated citrate synthesis and exudation potentially playing critical roles in excluding Al from the root symplast. ZmSLAH2 in maize and AtSLAH1 in Arabidopsis are essential for the regulation of citrate exudation and NO3‐promoted Al resistance, with ZmMYB81 directly targeting the ZmSLAH2 promoter to activate its activity. Additionally, NO3 transport is necessary for NO3‐promoted Al resistance, with ZmNRT1.1A and AtNRT1.1 potentially playing vital roles. The suppression of NO3 transport in roots by ammonium (NH4+) may inhibit NO3‐promoted Al resistance. This study provides novel insights into the understanding of the crucial role of NO3‐mediated signalling in the Al resistance of plants and offers guidance for nitrogen fertilization on acid soils.

Publisher

Wiley

Subject

Plant Science,Physiology

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