Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging Stress
Waterlogging stress (WS) induces ethylene (ET) and polyamine (spermine, putrescine, and spermidine) production in plants, but their reprogramming is a decisive element for determining the fate of the plant upon waterlogging-induced stress. WS can be challenged by exploring symbiotic microbes that im...
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doaj-f5298d8f090f4167bac248cc363b9a372021-01-18T04:41:19ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2021-01-011110.3389/fpls.2020.614971614971Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging StressMamoona Rauf0Muhammad Awais1Muhammad Awais2Aziz Ud-Din3Kazim Ali4Humaira Gul5Muhammad Mizanur Rahman6Muhammad Hamayun7Muhammad Arif8Department of Botany, Abdul Wali Khan University Mardan, Mardan, PakistanDepartment of Botany, Abdul Wali Khan University Mardan, Mardan, PakistanGraduate School of Biotechnology, College of Life Sciences, Kyung Hee University, Yongin-si, South KoreaDepartment of Biotechnology and Genetic Engineering, Hazara University Mansehra, Mansehra, PakistanNational Agricultural Research Center (NARC), National Institute for Genomics and Advanced Biotechnology, Islamabad, PakistanDepartment of Botany, Abdul Wali Khan University Mardan, Mardan, PakistanDepartment of Biotechnology and Genetic Engineering, Islamic University, Kushtia, BangladeshDepartment of Botany, Abdul Wali Khan University Mardan, Mardan, PakistanDepartment of Biotechnology, Abdul Wali Khan University Mardan, Mardan, PakistanWaterlogging stress (WS) induces ethylene (ET) and polyamine (spermine, putrescine, and spermidine) production in plants, but their reprogramming is a decisive element for determining the fate of the plant upon waterlogging-induced stress. WS can be challenged by exploring symbiotic microbes that improve the plant’s ability to grow better and resist WS. The present study deals with identification and application of 1-aminocyclopropane-1-carboxylic acid (ACC) deaminase-producing fungal endophyte Trichoderma asperellum (strain MAP1), isolated from the roots of Canna indica L., on wheat growth under WS. MAP1 positively affected wheat growth by secreting phytohormones/secondary metabolites, strengthening the plant’s antioxidant system and influencing the physiology through polyamine production and modulating gene expression. MAP1 inoculation promoted yield in comparison to non-endophyte inoculated waterlogged seedlings. Exogenously applied ethephon (ET synthesis inducer) and 1-aminocyclopropane carboxylic acid (ACC; ET precursor) showed a reduction in growth, compared to MAP1-inoculated waterlogged seedlings, while amino-oxyacetic acid (AOA; ET inhibitor) application reversed the negative effect imposed by ET and ACC, upon waterlogging treatment. A significant reduction in plant growth rate, chlorophyll content, and stomatal conductance was noticed, while H2O2, MDA production, and electrolyte leakage were increased in non-inoculated waterlogged seedlings. Moreover, in comparison to non-inoculated waterlogged wheat seedlings, MAP1-inoculated waterlogged wheat exhibited antioxidant–enzyme activities. In agreement with the physiological results, genes associated with the free polyamine (PA) biosynthesis were highly induced and PA content was abundant in MAP1-inoculated seedlings. Furthermore, ET biosynthesis/signaling gene expression was reduced upon MAP1 inoculation under WS. Briefly, MAP1 mitigated the adverse effect of WS in wheat, by reprogramming the PAs and ET biosynthesis, which leads to optimal stomatal conductance, increased photosynthesis, and membrane stability as well as reduced ET-induced leaf senescence.https://www.frontiersin.org/articles/10.3389/fpls.2020.614971/fullethylenepolyamineswaterlogging stresswheatTrichoderma asperellumendophytic fungus |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mamoona Rauf Muhammad Awais Muhammad Awais Aziz Ud-Din Kazim Ali Humaira Gul Muhammad Mizanur Rahman Muhammad Hamayun Muhammad Arif |
spellingShingle |
Mamoona Rauf Muhammad Awais Muhammad Awais Aziz Ud-Din Kazim Ali Humaira Gul Muhammad Mizanur Rahman Muhammad Hamayun Muhammad Arif Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging Stress Frontiers in Plant Science ethylene polyamines waterlogging stress wheat Trichoderma asperellum endophytic fungus |
author_facet |
Mamoona Rauf Muhammad Awais Muhammad Awais Aziz Ud-Din Kazim Ali Humaira Gul Muhammad Mizanur Rahman Muhammad Hamayun Muhammad Arif |
author_sort |
Mamoona Rauf |
title |
Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging Stress |
title_short |
Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging Stress |
title_full |
Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging Stress |
title_fullStr |
Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging Stress |
title_full_unstemmed |
Molecular Mechanisms of the 1-Aminocyclopropane-1-Carboxylic Acid (ACC) Deaminase Producing Trichoderma asperellum MAP1 in Enhancing Wheat Tolerance to Waterlogging Stress |
title_sort |
molecular mechanisms of the 1-aminocyclopropane-1-carboxylic acid (acc) deaminase producing trichoderma asperellum map1 in enhancing wheat tolerance to waterlogging stress |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Plant Science |
issn |
1664-462X |
publishDate |
2021-01-01 |
description |
Waterlogging stress (WS) induces ethylene (ET) and polyamine (spermine, putrescine, and spermidine) production in plants, but their reprogramming is a decisive element for determining the fate of the plant upon waterlogging-induced stress. WS can be challenged by exploring symbiotic microbes that improve the plant’s ability to grow better and resist WS. The present study deals with identification and application of 1-aminocyclopropane-1-carboxylic acid (ACC) deaminase-producing fungal endophyte Trichoderma asperellum (strain MAP1), isolated from the roots of Canna indica L., on wheat growth under WS. MAP1 positively affected wheat growth by secreting phytohormones/secondary metabolites, strengthening the plant’s antioxidant system and influencing the physiology through polyamine production and modulating gene expression. MAP1 inoculation promoted yield in comparison to non-endophyte inoculated waterlogged seedlings. Exogenously applied ethephon (ET synthesis inducer) and 1-aminocyclopropane carboxylic acid (ACC; ET precursor) showed a reduction in growth, compared to MAP1-inoculated waterlogged seedlings, while amino-oxyacetic acid (AOA; ET inhibitor) application reversed the negative effect imposed by ET and ACC, upon waterlogging treatment. A significant reduction in plant growth rate, chlorophyll content, and stomatal conductance was noticed, while H2O2, MDA production, and electrolyte leakage were increased in non-inoculated waterlogged seedlings. Moreover, in comparison to non-inoculated waterlogged wheat seedlings, MAP1-inoculated waterlogged wheat exhibited antioxidant–enzyme activities. In agreement with the physiological results, genes associated with the free polyamine (PA) biosynthesis were highly induced and PA content was abundant in MAP1-inoculated seedlings. Furthermore, ET biosynthesis/signaling gene expression was reduced upon MAP1 inoculation under WS. Briefly, MAP1 mitigated the adverse effect of WS in wheat, by reprogramming the PAs and ET biosynthesis, which leads to optimal stomatal conductance, increased photosynthesis, and membrane stability as well as reduced ET-induced leaf senescence. |
topic |
ethylene polyamines waterlogging stress wheat Trichoderma asperellum endophytic fungus |
url |
https://www.frontiersin.org/articles/10.3389/fpls.2020.614971/full |
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