Cargando…

Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.)

Flooding induces low oxygen (hypoxia) stress to plants, and this scenario is mounting due to hurricanes followed by heavy rains, especially in subtropical regions. Hypoxia stress results in the reduction of green pigments, gas exchange (stomatal conductance and internal CO(2) concentration), and pho...

Descripción completa

Detalles Bibliográficos
Autores principales: Iqbal, Zafar, Sarkhosh, Ali, Balal, Rashad Mukhtar, Gómez, Celina, Zubair, Muhammad, Ilyas, Noshin, Khan, Naeem, Shahid, Muhammad Adnan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7902783/
https://www.ncbi.nlm.nih.gov/pubmed/33643333
http://dx.doi.org/10.3389/fpls.2020.618873
_version_ 1783654599243071488
author Iqbal, Zafar
Sarkhosh, Ali
Balal, Rashad Mukhtar
Gómez, Celina
Zubair, Muhammad
Ilyas, Noshin
Khan, Naeem
Shahid, Muhammad Adnan
author_facet Iqbal, Zafar
Sarkhosh, Ali
Balal, Rashad Mukhtar
Gómez, Celina
Zubair, Muhammad
Ilyas, Noshin
Khan, Naeem
Shahid, Muhammad Adnan
author_sort Iqbal, Zafar
collection PubMed
description Flooding induces low oxygen (hypoxia) stress to plants, and this scenario is mounting due to hurricanes followed by heavy rains, especially in subtropical regions. Hypoxia stress results in the reduction of green pigments, gas exchange (stomatal conductance and internal CO(2) concentration), and photosynthetic activity in the plant leaves. In addition, hypoxia stress causes oxidative damage by accelerating lipid peroxidation due to the hyperproduction of reactive oxygen species (ROS) in leaf and root tissues. Furthermore, osmolyte accumulation and antioxidant activity increase, whereas micronutrient uptake decreases under hypoxia stress. Plant physiology and development get severely compromised by hypoxia stress. This investigation was, therefore, aimed at appraising the effects of regular silicon (Si) and Si nanoparticles (SiNPs) to mitigate hypoxia stress in muscadine (Muscadinia rotundifolia Michx.) plants. Our results demonstrated that hypoxia stress reduced muscadine plants’ growth by limiting the production of root and shoot dry biomass, whereas the root zone application of both Si and SiNP effectively mitigated oxidative and osmotic cell damage. Compared to Si, SiNP yielded better efficiency by improving the activity of enzymatic antioxidants [including superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT)], non-enzymatic antioxidants [ascorbic acid (AsA) and glutathione contents], and accumulation of organic osmolytes [proline and glycinebetaine (GB)]. SiNP also regulated the nutrient profile of the plants by increasing N, P, K, and Zn contents while limiting Mn and Fe concentration to a less toxic level. A negative correlation between antioxidant activities and lipid peroxidation rates was observed in SiNP-treated plants under hypoxia stress. Conclusively, SiNP-treated plants combat hypoxia more efficiently stress than conventional Si by boosting antioxidant activities, osmoprotectant accumulation, and micronutrient regulation.
format Online
Article
Text
id pubmed-7902783
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-79027832021-02-25 Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.) Iqbal, Zafar Sarkhosh, Ali Balal, Rashad Mukhtar Gómez, Celina Zubair, Muhammad Ilyas, Noshin Khan, Naeem Shahid, Muhammad Adnan Front Plant Sci Plant Science Flooding induces low oxygen (hypoxia) stress to plants, and this scenario is mounting due to hurricanes followed by heavy rains, especially in subtropical regions. Hypoxia stress results in the reduction of green pigments, gas exchange (stomatal conductance and internal CO(2) concentration), and photosynthetic activity in the plant leaves. In addition, hypoxia stress causes oxidative damage by accelerating lipid peroxidation due to the hyperproduction of reactive oxygen species (ROS) in leaf and root tissues. Furthermore, osmolyte accumulation and antioxidant activity increase, whereas micronutrient uptake decreases under hypoxia stress. Plant physiology and development get severely compromised by hypoxia stress. This investigation was, therefore, aimed at appraising the effects of regular silicon (Si) and Si nanoparticles (SiNPs) to mitigate hypoxia stress in muscadine (Muscadinia rotundifolia Michx.) plants. Our results demonstrated that hypoxia stress reduced muscadine plants’ growth by limiting the production of root and shoot dry biomass, whereas the root zone application of both Si and SiNP effectively mitigated oxidative and osmotic cell damage. Compared to Si, SiNP yielded better efficiency by improving the activity of enzymatic antioxidants [including superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT)], non-enzymatic antioxidants [ascorbic acid (AsA) and glutathione contents], and accumulation of organic osmolytes [proline and glycinebetaine (GB)]. SiNP also regulated the nutrient profile of the plants by increasing N, P, K, and Zn contents while limiting Mn and Fe concentration to a less toxic level. A negative correlation between antioxidant activities and lipid peroxidation rates was observed in SiNP-treated plants under hypoxia stress. Conclusively, SiNP-treated plants combat hypoxia more efficiently stress than conventional Si by boosting antioxidant activities, osmoprotectant accumulation, and micronutrient regulation. Frontiers Media S.A. 2021-02-10 /pmc/articles/PMC7902783/ /pubmed/33643333 http://dx.doi.org/10.3389/fpls.2020.618873 Text en Copyright © 2021 Iqbal, Sarkhosh, Balal, Gómez, Zubair, Ilyas, Khan and Shahid. 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
Iqbal, Zafar
Sarkhosh, Ali
Balal, Rashad Mukhtar
Gómez, Celina
Zubair, Muhammad
Ilyas, Noshin
Khan, Naeem
Shahid, Muhammad Adnan
Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.)
title Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.)
title_full Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.)
title_fullStr Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.)
title_full_unstemmed Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.)
title_short Silicon Alleviate Hypoxia Stress by Improving Enzymatic and Non-enzymatic Antioxidants and Regulating Nutrient Uptake in Muscadine Grape (Muscadinia rotundifolia Michx.)
title_sort silicon alleviate hypoxia stress by improving enzymatic and non-enzymatic antioxidants and regulating nutrient uptake in muscadine grape (muscadinia rotundifolia michx.)
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7902783/
https://www.ncbi.nlm.nih.gov/pubmed/33643333
http://dx.doi.org/10.3389/fpls.2020.618873
work_keys_str_mv AT iqbalzafar siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx
AT sarkhoshali siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx
AT balalrashadmukhtar siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx
AT gomezcelina siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx
AT zubairmuhammad siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx
AT ilyasnoshin siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx
AT khannaeem siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx
AT shahidmuhammadadnan siliconalleviatehypoxiastressbyimprovingenzymaticandnonenzymaticantioxidantsandregulatingnutrientuptakeinmuscadinegrapemuscadiniarotundifoliamichx