Cargando…

Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress

Non-invasive micro-test techniques (NMT) were used to analyze NaCl-altered flux profiles of K(+), Na(+), and H(+) in roots and effects of NaHS (a H(2)S donor) on root ion fluxes in two contrasting poplar species, Populus euphratica (salt-resistant) and Populus popularis (salt-sensitive). Both poplar...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhao, Nan, Zhu, Huipeng, Zhang, Huilong, Sun, Jian, Zhou, Jinchi, Deng, Chen, Zhang, Yuhong, Zhao, Rui, Zhou, Xiaoyang, Lu, Cunfu, Lin, Shanzhi, Chen, Shaoliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6157452/
https://www.ncbi.nlm.nih.gov/pubmed/30283479
http://dx.doi.org/10.3389/fpls.2018.01366
_version_ 1783358274598338560
author Zhao, Nan
Zhu, Huipeng
Zhang, Huilong
Sun, Jian
Zhou, Jinchi
Deng, Chen
Zhang, Yuhong
Zhao, Rui
Zhou, Xiaoyang
Lu, Cunfu
Lin, Shanzhi
Chen, Shaoliang
author_facet Zhao, Nan
Zhu, Huipeng
Zhang, Huilong
Sun, Jian
Zhou, Jinchi
Deng, Chen
Zhang, Yuhong
Zhao, Rui
Zhou, Xiaoyang
Lu, Cunfu
Lin, Shanzhi
Chen, Shaoliang
author_sort Zhao, Nan
collection PubMed
description Non-invasive micro-test techniques (NMT) were used to analyze NaCl-altered flux profiles of K(+), Na(+), and H(+) in roots and effects of NaHS (a H(2)S donor) on root ion fluxes in two contrasting poplar species, Populus euphratica (salt-resistant) and Populus popularis (salt-sensitive). Both poplar species displayed a net K(+) efflux after exposure to salt shock (100 mM NaCl), as well as after short-term (24 h), and long-term (LT) (5 days) saline treatment (50 mM NaCl, referred to as salt stress). NaHS (50 μM) restricted NaCl-induced K(+) efflux in roots irrespective of the duration of salt exposure, but K(+) efflux was not pronounced in data collected from the LT salt stress treatment of P. euphratica. The NaCl-induced K(+) efflux was inhibited by a K(+) channel blocker, tetraethylammonium chloride (TEA) in P. popularis root samples, but K(+) loss increased with a specific inhibitor of plasma membrane (PM) H(+)-ATPase, sodium orthovanadate, in both poplar species under LT salt stress and NaHS treatment. This indicates that NaCl-induced K(+) loss was through depolarization-activated K(+) channels. NaHS caused increased Na(+) efflux and a corresponding increase in H(+) influx for poplar roots subjected to both the short- and LT salt stress. The NaHS-enhanced H(+) influx was not significant in P. euphratica samples subjected to short term salt stress. Both sodium orthovanadate and amiloride (a Na(+)/H(+) antiporter inhibitor) effectively inhibited the NaHS-augmented Na(+) efflux, indicating that the H(2)S-enhanced Na(+) efflux was due to active Na(+) exclusion across the PM. We therefore conclude that the beneficial effects of H(2)S probably arise from upward regulation of the Na(+)/H(+) antiport system (H(+) pumps and Na(+)/H(+) antiporters), which promote exchange of Na(+) with H(+) across the PM and simultaneously restricted the channel-mediated K(+) loss that activated by membrane depolarization.
format Online
Article
Text
id pubmed-6157452
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-61574522018-10-03 Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress Zhao, Nan Zhu, Huipeng Zhang, Huilong Sun, Jian Zhou, Jinchi Deng, Chen Zhang, Yuhong Zhao, Rui Zhou, Xiaoyang Lu, Cunfu Lin, Shanzhi Chen, Shaoliang Front Plant Sci Plant Science Non-invasive micro-test techniques (NMT) were used to analyze NaCl-altered flux profiles of K(+), Na(+), and H(+) in roots and effects of NaHS (a H(2)S donor) on root ion fluxes in two contrasting poplar species, Populus euphratica (salt-resistant) and Populus popularis (salt-sensitive). Both poplar species displayed a net K(+) efflux after exposure to salt shock (100 mM NaCl), as well as after short-term (24 h), and long-term (LT) (5 days) saline treatment (50 mM NaCl, referred to as salt stress). NaHS (50 μM) restricted NaCl-induced K(+) efflux in roots irrespective of the duration of salt exposure, but K(+) efflux was not pronounced in data collected from the LT salt stress treatment of P. euphratica. The NaCl-induced K(+) efflux was inhibited by a K(+) channel blocker, tetraethylammonium chloride (TEA) in P. popularis root samples, but K(+) loss increased with a specific inhibitor of plasma membrane (PM) H(+)-ATPase, sodium orthovanadate, in both poplar species under LT salt stress and NaHS treatment. This indicates that NaCl-induced K(+) loss was through depolarization-activated K(+) channels. NaHS caused increased Na(+) efflux and a corresponding increase in H(+) influx for poplar roots subjected to both the short- and LT salt stress. The NaHS-enhanced H(+) influx was not significant in P. euphratica samples subjected to short term salt stress. Both sodium orthovanadate and amiloride (a Na(+)/H(+) antiporter inhibitor) effectively inhibited the NaHS-augmented Na(+) efflux, indicating that the H(2)S-enhanced Na(+) efflux was due to active Na(+) exclusion across the PM. We therefore conclude that the beneficial effects of H(2)S probably arise from upward regulation of the Na(+)/H(+) antiport system (H(+) pumps and Na(+)/H(+) antiporters), which promote exchange of Na(+) with H(+) across the PM and simultaneously restricted the channel-mediated K(+) loss that activated by membrane depolarization. Frontiers Media S.A. 2018-09-19 /pmc/articles/PMC6157452/ /pubmed/30283479 http://dx.doi.org/10.3389/fpls.2018.01366 Text en Copyright © 2018 Zhao, Zhu, Zhang, Sun, Zhou, Deng, Zhang, Zhao, Zhou, Lu, Lin and Chen. http://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
Zhao, Nan
Zhu, Huipeng
Zhang, Huilong
Sun, Jian
Zhou, Jinchi
Deng, Chen
Zhang, Yuhong
Zhao, Rui
Zhou, Xiaoyang
Lu, Cunfu
Lin, Shanzhi
Chen, Shaoliang
Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress
title Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress
title_full Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress
title_fullStr Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress
title_full_unstemmed Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress
title_short Hydrogen Sulfide Mediates K(+) and Na(+) Homeostasis in the Roots of Salt-Resistant and Salt-Sensitive Poplar Species Subjected to NaCl Stress
title_sort hydrogen sulfide mediates k(+) and na(+) homeostasis in the roots of salt-resistant and salt-sensitive poplar species subjected to nacl stress
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6157452/
https://www.ncbi.nlm.nih.gov/pubmed/30283479
http://dx.doi.org/10.3389/fpls.2018.01366
work_keys_str_mv AT zhaonan hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT zhuhuipeng hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT zhanghuilong hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT sunjian hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT zhoujinchi hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT dengchen hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT zhangyuhong hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT zhaorui hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT zhouxiaoyang hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT lucunfu hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT linshanzhi hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress
AT chenshaoliang hydrogensulfidemediateskandnahomeostasisintherootsofsaltresistantandsaltsensitivepoplarspeciessubjectedtonaclstress