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How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects

Salinity stress (SS) is a serious abiotic stress and a major constraint to agricultural productivity across the globe. High SS negatively affects plant growth and yield by altering soil physio-chemical properties and plant physiological, biochemical, and molecular processes. The application of micro...

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Autores principales: Shao, Jinhua, Tang, Wei, Huang, Kai, Ding, Can, Wang, Haocheng, Zhang, Wenlong, Li, Ronghui, Aamer, Muhammad, Hassan, Muhammad Umair, Elnour, Rehab O., Hashem, Mohamed, Huang, Guoqin, Qari, Sameer H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10534951/
https://www.ncbi.nlm.nih.gov/pubmed/37765371
http://dx.doi.org/10.3390/plants12183207
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author Shao, Jinhua
Tang, Wei
Huang, Kai
Ding, Can
Wang, Haocheng
Zhang, Wenlong
Li, Ronghui
Aamer, Muhammad
Hassan, Muhammad Umair
Elnour, Rehab O.
Hashem, Mohamed
Huang, Guoqin
Qari, Sameer H.
author_facet Shao, Jinhua
Tang, Wei
Huang, Kai
Ding, Can
Wang, Haocheng
Zhang, Wenlong
Li, Ronghui
Aamer, Muhammad
Hassan, Muhammad Umair
Elnour, Rehab O.
Hashem, Mohamed
Huang, Guoqin
Qari, Sameer H.
author_sort Shao, Jinhua
collection PubMed
description Salinity stress (SS) is a serious abiotic stress and a major constraint to agricultural productivity across the globe. High SS negatively affects plant growth and yield by altering soil physio-chemical properties and plant physiological, biochemical, and molecular processes. The application of micronutrients is considered an important practice to mitigate the adverse effects of SS. Zinc (Zn) is an important nutrient that plays an imperative role in plant growth, and it could also help alleviate the effects of salt stress. Zn application improves seed germination, seedling growth, water uptake, plant water relations, nutrient uptake, and nutrient homeostasis, therefore improving plant performance and saline conditions. Zn application also protects the photosynthetic apparatus from salinity-induced oxidative stress and improves stomata movement, chlorophyll synthesis, carbon fixation, and osmolytes and hormone accumulation. Moreover, Zn application also increases the synthesis of secondary metabolites and the expression of stress responsive genes and stimulates antioxidant activities to counter the toxic effects of salt stress. Therefore, to better understand the role of Zn in plants under SS, we have discussed the various mechanisms by which Zn induces salinity tolerance in plants. We have also identified diverse research gaps that must be filled in future research programs. The present review article will fill the knowledge gaps on the role of Zn in mitigating salinity stress. This review will also help readers to learn more about the role of Zn and will provide new suggestions on how this knowledge can be used to develop salt tolerance in plants by using Zn.
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spelling pubmed-105349512023-09-29 How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects Shao, Jinhua Tang, Wei Huang, Kai Ding, Can Wang, Haocheng Zhang, Wenlong Li, Ronghui Aamer, Muhammad Hassan, Muhammad Umair Elnour, Rehab O. Hashem, Mohamed Huang, Guoqin Qari, Sameer H. Plants (Basel) Review Salinity stress (SS) is a serious abiotic stress and a major constraint to agricultural productivity across the globe. High SS negatively affects plant growth and yield by altering soil physio-chemical properties and plant physiological, biochemical, and molecular processes. The application of micronutrients is considered an important practice to mitigate the adverse effects of SS. Zinc (Zn) is an important nutrient that plays an imperative role in plant growth, and it could also help alleviate the effects of salt stress. Zn application improves seed germination, seedling growth, water uptake, plant water relations, nutrient uptake, and nutrient homeostasis, therefore improving plant performance and saline conditions. Zn application also protects the photosynthetic apparatus from salinity-induced oxidative stress and improves stomata movement, chlorophyll synthesis, carbon fixation, and osmolytes and hormone accumulation. Moreover, Zn application also increases the synthesis of secondary metabolites and the expression of stress responsive genes and stimulates antioxidant activities to counter the toxic effects of salt stress. Therefore, to better understand the role of Zn in plants under SS, we have discussed the various mechanisms by which Zn induces salinity tolerance in plants. We have also identified diverse research gaps that must be filled in future research programs. The present review article will fill the knowledge gaps on the role of Zn in mitigating salinity stress. This review will also help readers to learn more about the role of Zn and will provide new suggestions on how this knowledge can be used to develop salt tolerance in plants by using Zn. MDPI 2023-09-08 /pmc/articles/PMC10534951/ /pubmed/37765371 http://dx.doi.org/10.3390/plants12183207 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Shao, Jinhua
Tang, Wei
Huang, Kai
Ding, Can
Wang, Haocheng
Zhang, Wenlong
Li, Ronghui
Aamer, Muhammad
Hassan, Muhammad Umair
Elnour, Rehab O.
Hashem, Mohamed
Huang, Guoqin
Qari, Sameer H.
How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects
title How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects
title_full How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects
title_fullStr How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects
title_full_unstemmed How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects
title_short How Does Zinc Improve Salinity Tolerance? Mechanisms and Future Prospects
title_sort how does zinc improve salinity tolerance? mechanisms and future prospects
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10534951/
https://www.ncbi.nlm.nih.gov/pubmed/37765371
http://dx.doi.org/10.3390/plants12183207
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