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Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System
Tomato is an important vegetable that is highly sensitive to drought (DR) stress which impairs the development of tomato seedlings. Recently, melatonin (ME) has emerged as a nontoxic, regulatory biomolecule that regulates plant growth and enhances the DR tolerance mechanism in plants. The present st...
Autores principales: | , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8868175/ https://www.ncbi.nlm.nih.gov/pubmed/35204192 http://dx.doi.org/10.3390/antiox11020309 |
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author | Altaf, Muhammad Ahsan Shahid, Rabia Ren, Ming-Xun Naz, Safina Altaf, Muhammad Mohsin Khan, Latif Ullah Tiwari, Rahul Kumar Lal, Milan Kumar Shahid, Muhammad Adnan Kumar, Ravinder Nawaz, Muhammad Azher Jahan, Mohammad Shah Jan, Basit Latief Ahmad, Parvaiz |
author_facet | Altaf, Muhammad Ahsan Shahid, Rabia Ren, Ming-Xun Naz, Safina Altaf, Muhammad Mohsin Khan, Latif Ullah Tiwari, Rahul Kumar Lal, Milan Kumar Shahid, Muhammad Adnan Kumar, Ravinder Nawaz, Muhammad Azher Jahan, Mohammad Shah Jan, Basit Latief Ahmad, Parvaiz |
author_sort | Altaf, Muhammad Ahsan |
collection | PubMed |
description | Tomato is an important vegetable that is highly sensitive to drought (DR) stress which impairs the development of tomato seedlings. Recently, melatonin (ME) has emerged as a nontoxic, regulatory biomolecule that regulates plant growth and enhances the DR tolerance mechanism in plants. The present study was conducted to examine the defensive role of ME in photosynthesis, root architecture, and the antioxidant enzymes’ activities of tomato seedlings subjected to DR stress. Our results indicated that DR stress strongly suppressed growth and biomass production, inhibited photosynthesis, negatively affected root morphology, and reduced photosynthetic pigments in tomato seedlings. Per contra, soluble sugars, proline, and ROS (reactive oxygen species) were suggested to be improved in seedlings under DR stress. Conversely, ME (100 µM) pretreatment improved the detrimental-effect of DR by restoring chlorophyll content, root architecture, gas exchange parameters and plant growth attributes compared with DR-group only. Moreover, ME supplementation also mitigated the antioxidant enzymes [APX (ascorbate peroxidase), CAT (catalase), DHAR (dehydroascorbate reductase), GST (glutathione S-transferase), GR (glutathione reductase), MDHAR (monodehydroascorbate reductase), POD (peroxidase), and SOD (superoxide dismutase)], non-enzymatic antioxidant [AsA (ascorbate), DHA (dehydroascorbic acid), GSH (glutathione), and GSSG, (oxidized glutathione)] activities, reduced oxidative damage [EL (electrolyte leakage), H(2)O(2) (hydrogen peroxide), MDA (malondialdehyde), and O(2)(•−) (superoxide ion)] and osmoregulation (soluble sugars and proline) of tomato seedlings, by regulating gene expression for SOD, CAT, APX, GR, POD, GST, DHAR, and MDHAR. These findings determine that ME pretreatment could efficiently improve the seedlings growth, root characteristics, leaf photosynthesis and antioxidant machinery under DR stress and thereby increasing the seedlings’ adaptability to DR stress. |
format | Online Article Text |
id | pubmed-8868175 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-88681752022-02-25 Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System Altaf, Muhammad Ahsan Shahid, Rabia Ren, Ming-Xun Naz, Safina Altaf, Muhammad Mohsin Khan, Latif Ullah Tiwari, Rahul Kumar Lal, Milan Kumar Shahid, Muhammad Adnan Kumar, Ravinder Nawaz, Muhammad Azher Jahan, Mohammad Shah Jan, Basit Latief Ahmad, Parvaiz Antioxidants (Basel) Article Tomato is an important vegetable that is highly sensitive to drought (DR) stress which impairs the development of tomato seedlings. Recently, melatonin (ME) has emerged as a nontoxic, regulatory biomolecule that regulates plant growth and enhances the DR tolerance mechanism in plants. The present study was conducted to examine the defensive role of ME in photosynthesis, root architecture, and the antioxidant enzymes’ activities of tomato seedlings subjected to DR stress. Our results indicated that DR stress strongly suppressed growth and biomass production, inhibited photosynthesis, negatively affected root morphology, and reduced photosynthetic pigments in tomato seedlings. Per contra, soluble sugars, proline, and ROS (reactive oxygen species) were suggested to be improved in seedlings under DR stress. Conversely, ME (100 µM) pretreatment improved the detrimental-effect of DR by restoring chlorophyll content, root architecture, gas exchange parameters and plant growth attributes compared with DR-group only. Moreover, ME supplementation also mitigated the antioxidant enzymes [APX (ascorbate peroxidase), CAT (catalase), DHAR (dehydroascorbate reductase), GST (glutathione S-transferase), GR (glutathione reductase), MDHAR (monodehydroascorbate reductase), POD (peroxidase), and SOD (superoxide dismutase)], non-enzymatic antioxidant [AsA (ascorbate), DHA (dehydroascorbic acid), GSH (glutathione), and GSSG, (oxidized glutathione)] activities, reduced oxidative damage [EL (electrolyte leakage), H(2)O(2) (hydrogen peroxide), MDA (malondialdehyde), and O(2)(•−) (superoxide ion)] and osmoregulation (soluble sugars and proline) of tomato seedlings, by regulating gene expression for SOD, CAT, APX, GR, POD, GST, DHAR, and MDHAR. These findings determine that ME pretreatment could efficiently improve the seedlings growth, root characteristics, leaf photosynthesis and antioxidant machinery under DR stress and thereby increasing the seedlings’ adaptability to DR stress. MDPI 2022-02-03 /pmc/articles/PMC8868175/ /pubmed/35204192 http://dx.doi.org/10.3390/antiox11020309 Text en © 2022 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 | Article Altaf, Muhammad Ahsan Shahid, Rabia Ren, Ming-Xun Naz, Safina Altaf, Muhammad Mohsin Khan, Latif Ullah Tiwari, Rahul Kumar Lal, Milan Kumar Shahid, Muhammad Adnan Kumar, Ravinder Nawaz, Muhammad Azher Jahan, Mohammad Shah Jan, Basit Latief Ahmad, Parvaiz Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System |
title | Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System |
title_full | Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System |
title_fullStr | Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System |
title_full_unstemmed | Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System |
title_short | Melatonin Improves Drought Stress Tolerance of Tomato by Modulating Plant Growth, Root Architecture, Photosynthesis, and Antioxidant Defense System |
title_sort | melatonin improves drought stress tolerance of tomato by modulating plant growth, root architecture, photosynthesis, and antioxidant defense system |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8868175/ https://www.ncbi.nlm.nih.gov/pubmed/35204192 http://dx.doi.org/10.3390/antiox11020309 |
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