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Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net

Salt stress is an important environmental cue impeding poplar nitrogen nutrition. Here, we characterized the impact of salinity on proton‐driven nitrate fluxes in ectomycorrhizal roots and the importance of a Hartig net for nitrate uptake. We employed two Paxillus involutus strains for root coloniza...

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Autores principales: Sa, Gang, Yao, Jun, Deng, Chen, Liu, Jian, Zhang, Yinan, Zhu, Zhimei, Zhang, Yuhong, Ma, Xujun, Zhao, Rui, Lin, Shanzhi, Lu, Cunfu, Polle, Andrea, Chen, Shaoliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6594093/
https://www.ncbi.nlm.nih.gov/pubmed/30756398
http://dx.doi.org/10.1111/nph.15740
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author Sa, Gang
Yao, Jun
Deng, Chen
Liu, Jian
Zhang, Yinan
Zhu, Zhimei
Zhang, Yuhong
Ma, Xujun
Zhao, Rui
Lin, Shanzhi
Lu, Cunfu
Polle, Andrea
Chen, Shaoliang
author_facet Sa, Gang
Yao, Jun
Deng, Chen
Liu, Jian
Zhang, Yinan
Zhu, Zhimei
Zhang, Yuhong
Ma, Xujun
Zhao, Rui
Lin, Shanzhi
Lu, Cunfu
Polle, Andrea
Chen, Shaoliang
author_sort Sa, Gang
collection PubMed
description Salt stress is an important environmental cue impeding poplar nitrogen nutrition. Here, we characterized the impact of salinity on proton‐driven nitrate fluxes in ectomycorrhizal roots and the importance of a Hartig net for nitrate uptake. We employed two Paxillus involutus strains for root colonization: MAJ, which forms typical ectomycorrhizal structures (mantle and Hartig net), and NAU, colonizing roots with a thin, loose hyphal sheath. Fungus‐colonized and noncolonized Populus × canescens were exposed to sodium chloride and used to measure root surface pH, nitrate (NO (3) (−)) flux and transcription of NO(3) (−) transporters (NRTs; PcNRT1.1, ‐1.2, ‐2.1), and plasmalemma proton ATPases (HAs; PcHA4, ‐8, ‐11). Paxillus colonization enhanced root NO (3) (−) uptake, decreased surface pH, and stimulated NRTs and HA4 of the host regardless the presence or absence of a Hartig net. Under salt stress, noncolonized roots exhibited strong net NO (3) (−) efflux, whereas beneficial effects of fungal colonization on surface pH and HAs prevented NO (3) (−) loss. Inhibition of HAs abolished NO (3) (−) influx under all conditions. We found that stimulation of HAs was crucial for the beneficial influence of ectomycorrhiza on NO (3) (−) uptake, whereas the presence of a Hartig net was not required for improved NO (3) (−) translocation. Mycorrhizas may contribute to host adaptation to salt‐affected environments by keeping up NO (3) (−) nutrition.
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spelling pubmed-65940932019-07-10 Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net Sa, Gang Yao, Jun Deng, Chen Liu, Jian Zhang, Yinan Zhu, Zhimei Zhang, Yuhong Ma, Xujun Zhao, Rui Lin, Shanzhi Lu, Cunfu Polle, Andrea Chen, Shaoliang New Phytol Research Salt stress is an important environmental cue impeding poplar nitrogen nutrition. Here, we characterized the impact of salinity on proton‐driven nitrate fluxes in ectomycorrhizal roots and the importance of a Hartig net for nitrate uptake. We employed two Paxillus involutus strains for root colonization: MAJ, which forms typical ectomycorrhizal structures (mantle and Hartig net), and NAU, colonizing roots with a thin, loose hyphal sheath. Fungus‐colonized and noncolonized Populus × canescens were exposed to sodium chloride and used to measure root surface pH, nitrate (NO (3) (−)) flux and transcription of NO(3) (−) transporters (NRTs; PcNRT1.1, ‐1.2, ‐2.1), and plasmalemma proton ATPases (HAs; PcHA4, ‐8, ‐11). Paxillus colonization enhanced root NO (3) (−) uptake, decreased surface pH, and stimulated NRTs and HA4 of the host regardless the presence or absence of a Hartig net. Under salt stress, noncolonized roots exhibited strong net NO (3) (−) efflux, whereas beneficial effects of fungal colonization on surface pH and HAs prevented NO (3) (−) loss. Inhibition of HAs abolished NO (3) (−) influx under all conditions. We found that stimulation of HAs was crucial for the beneficial influence of ectomycorrhiza on NO (3) (−) uptake, whereas the presence of a Hartig net was not required for improved NO (3) (−) translocation. Mycorrhizas may contribute to host adaptation to salt‐affected environments by keeping up NO (3) (−) nutrition. John Wiley and Sons Inc. 2019-03-14 2019-06 /pmc/articles/PMC6594093/ /pubmed/30756398 http://dx.doi.org/10.1111/nph.15740 Text en © 2019 The Authors. New Phytologist © 2019 New Phytologist Trust This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Sa, Gang
Yao, Jun
Deng, Chen
Liu, Jian
Zhang, Yinan
Zhu, Zhimei
Zhang, Yuhong
Ma, Xujun
Zhao, Rui
Lin, Shanzhi
Lu, Cunfu
Polle, Andrea
Chen, Shaoliang
Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net
title Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net
title_full Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net
title_fullStr Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net
title_full_unstemmed Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net
title_short Amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a Hartig net
title_sort amelioration of nitrate uptake under salt stress by ectomycorrhiza with and without a hartig net
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6594093/
https://www.ncbi.nlm.nih.gov/pubmed/30756398
http://dx.doi.org/10.1111/nph.15740
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