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H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase

INTRODUCTION: Nitrogen is a major abiotic stress that affects plant productivity. Previous studies have shown that plant H+-pyrophosphatases (H+-PPases) enhance plant resistance to low nitrogen stress. However, the molecular mechanism underlying H+-PPase-mediated regulation of plant responses to low...

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Autores principales: Zhang, Huijuan, Chen, Ming, Xu, Chengjie, Liu, Rongbang, Tang, Wensi, Chen, Kai, Zhou, Yongbin, Xu, Zhaoshi, Chen, Jun, Ma, Youzhi, Chen, Weiguo, Sun, Daizhen, Fan, Hua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9912985/
https://www.ncbi.nlm.nih.gov/pubmed/36778714
http://dx.doi.org/10.3389/fpls.2023.1096091
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author Zhang, Huijuan
Chen, Ming
Xu, Chengjie
Liu, Rongbang
Tang, Wensi
Chen, Kai
Zhou, Yongbin
Xu, Zhaoshi
Chen, Jun
Ma, Youzhi
Chen, Weiguo
Sun, Daizhen
Fan, Hua
author_facet Zhang, Huijuan
Chen, Ming
Xu, Chengjie
Liu, Rongbang
Tang, Wensi
Chen, Kai
Zhou, Yongbin
Xu, Zhaoshi
Chen, Jun
Ma, Youzhi
Chen, Weiguo
Sun, Daizhen
Fan, Hua
author_sort Zhang, Huijuan
collection PubMed
description INTRODUCTION: Nitrogen is a major abiotic stress that affects plant productivity. Previous studies have shown that plant H+-pyrophosphatases (H+-PPases) enhance plant resistance to low nitrogen stress. However, the molecular mechanism underlying H+-PPase-mediated regulation of plant responses to low nitrogen stress is still unknown. In this study, we aimed to investigate the regulatory mechanism of AtAVP1 in response to low nitrogen stress. METHODS AND RESULTS: AtAVP1 in Arabidopsis thaliana and EdVP1 in Elymus dahuricus belong to the H+-PPase gene family. In this study, we found that AtAVP1 overexpression was more tolerant to low nitrogen stress than was wild type (WT), whereas the avp1-1 mutant was less tolerant to low nitrogen stress than WT. Plant height, root length, aboveground fresh and dry weights, and underground fresh and dry weights of EdVP1 overexpression wheat were considerably higher than those of SHI366 under low nitrogen treatment during the seedling stage. Two consecutive years of low nitrogen tolerance experiments in the field showed that grain yield and number of grains per spike of EdVP1 overexpression wheat were increased compared to those in SHI366, which indicated that EdVP1 conferred low nitrogen stress tolerance in the field. Furthermore, we screened interaction proteins in Arabidopsis; subcellular localization analysis demonstrated that AtAVP1 and Arabidopsis thaliana receptor-like protein kinase (AtRLK) were located on the plasma membrane. Yeast two-hybrid and luciferase complementary imaging assays showed that the AtRLK interacted with AtAVP1. Under low nitrogen stress, the Arabidopsis mutants rlk and avp1-1 had the same phenotypes. DISCUSSION: These results indicate that AtAVP1 regulates low nitrogen stress responses by interacting with AtRLK, which provides a novel insight into the regulatory pathway related to H+-pyrophosphatase function in plants.
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spelling pubmed-99129852023-02-11 H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase Zhang, Huijuan Chen, Ming Xu, Chengjie Liu, Rongbang Tang, Wensi Chen, Kai Zhou, Yongbin Xu, Zhaoshi Chen, Jun Ma, Youzhi Chen, Weiguo Sun, Daizhen Fan, Hua Front Plant Sci Plant Science INTRODUCTION: Nitrogen is a major abiotic stress that affects plant productivity. Previous studies have shown that plant H+-pyrophosphatases (H+-PPases) enhance plant resistance to low nitrogen stress. However, the molecular mechanism underlying H+-PPase-mediated regulation of plant responses to low nitrogen stress is still unknown. In this study, we aimed to investigate the regulatory mechanism of AtAVP1 in response to low nitrogen stress. METHODS AND RESULTS: AtAVP1 in Arabidopsis thaliana and EdVP1 in Elymus dahuricus belong to the H+-PPase gene family. In this study, we found that AtAVP1 overexpression was more tolerant to low nitrogen stress than was wild type (WT), whereas the avp1-1 mutant was less tolerant to low nitrogen stress than WT. Plant height, root length, aboveground fresh and dry weights, and underground fresh and dry weights of EdVP1 overexpression wheat were considerably higher than those of SHI366 under low nitrogen treatment during the seedling stage. Two consecutive years of low nitrogen tolerance experiments in the field showed that grain yield and number of grains per spike of EdVP1 overexpression wheat were increased compared to those in SHI366, which indicated that EdVP1 conferred low nitrogen stress tolerance in the field. Furthermore, we screened interaction proteins in Arabidopsis; subcellular localization analysis demonstrated that AtAVP1 and Arabidopsis thaliana receptor-like protein kinase (AtRLK) were located on the plasma membrane. Yeast two-hybrid and luciferase complementary imaging assays showed that the AtRLK interacted with AtAVP1. Under low nitrogen stress, the Arabidopsis mutants rlk and avp1-1 had the same phenotypes. DISCUSSION: These results indicate that AtAVP1 regulates low nitrogen stress responses by interacting with AtRLK, which provides a novel insight into the regulatory pathway related to H+-pyrophosphatase function in plants. Frontiers Media S.A. 2023-01-27 /pmc/articles/PMC9912985/ /pubmed/36778714 http://dx.doi.org/10.3389/fpls.2023.1096091 Text en Copyright © 2023 Zhang, Chen, Xu, Liu, Tang, Chen, Zhou, Xu, Chen, Ma, Chen, Sun and Fan https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Zhang, Huijuan
Chen, Ming
Xu, Chengjie
Liu, Rongbang
Tang, Wensi
Chen, Kai
Zhou, Yongbin
Xu, Zhaoshi
Chen, Jun
Ma, Youzhi
Chen, Weiguo
Sun, Daizhen
Fan, Hua
H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase
title H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase
title_full H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase
title_fullStr H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase
title_full_unstemmed H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase
title_short H(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic Arabidopsis and wheat by interacting with a receptor-like protein kinase
title_sort h(+)-pyrophosphatases enhance low nitrogen stress tolerance in transgenic arabidopsis and wheat by interacting with a receptor-like protein kinase
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9912985/
https://www.ncbi.nlm.nih.gov/pubmed/36778714
http://dx.doi.org/10.3389/fpls.2023.1096091
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