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Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach

INTRODUCTION: Drought is the largest abiotic factor impacting agriculture. Plants are challenged by both natural and artificial stressors because they are immobile. To produce drought-resistant plants, we need to know how plants react to drought. A largescale proteome study of leaf and root tissue f...

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Autores principales: Perveen, Kahkashan, Alfagham, Alanoud T., Debnath, Sandip, Bukhari, Najat A., Wei, Dong-Qing, Alshaikh, Najla A., Alwadai, Aisha Saleh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9933497/
https://www.ncbi.nlm.nih.gov/pubmed/36818888
http://dx.doi.org/10.3389/fpls.2023.1106857
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author Perveen, Kahkashan
Alfagham, Alanoud T.
Debnath, Sandip
Bukhari, Najat A.
Wei, Dong-Qing
Alshaikh, Najla A.
Alwadai, Aisha Saleh
author_facet Perveen, Kahkashan
Alfagham, Alanoud T.
Debnath, Sandip
Bukhari, Najat A.
Wei, Dong-Qing
Alshaikh, Najla A.
Alwadai, Aisha Saleh
author_sort Perveen, Kahkashan
collection PubMed
description INTRODUCTION: Drought is the largest abiotic factor impacting agriculture. Plants are challenged by both natural and artificial stressors because they are immobile. To produce drought-resistant plants, we need to know how plants react to drought. A largescale proteome study of leaf and root tissue found drought-responsive proteins. Tomato as a vegetable is grown worldwide. Agricultural biotechnology focuses on creating drought-resistant cultivars. This is important because tomato drought is so widespread. Breeders have worked to improve tomato quality, production, and stress resistance. Conventional breeding approaches have only increased drought tolerance because of drought’s complexity. Many studies have examined how tomatoes handle drought. With genomics, transcriptomics, proteomics, metabolomics, and modern sequencing technologies, it’s easier to find drought-responsive genes. METHOD: Biotechnology and in silico studies has helped demonstrate the function of drought-sensitive genes and generate drought-resistant plant types. The latest tomato genome editing technology is another. WRKY genes are plant transcription factors. They help plants grow and respond to both natural and artificial stimuli. To make plants that can handle stress, we need to know how WRKY-proteins, which are transcription factors, work with other proteins and ligands in plant cells by molecular docking and modeling study. RESULT: Abscisic acid, a plant hormone generated in stressed roots, was used here to make plants drought-resistant. Abscisic acid binds WRKY with binding affinity -7.4kcal/mol and inhibitory concentration (Ki) 0.12 microM. DISCUSSION: This study aims to modulate the transcription factor so plants can handle drought and stress better. Therefore, polyphenols found to make Solanum lycopersicum more drought-tolerant.
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spelling pubmed-99334972023-02-17 Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach Perveen, Kahkashan Alfagham, Alanoud T. Debnath, Sandip Bukhari, Najat A. Wei, Dong-Qing Alshaikh, Najla A. Alwadai, Aisha Saleh Front Plant Sci Plant Science INTRODUCTION: Drought is the largest abiotic factor impacting agriculture. Plants are challenged by both natural and artificial stressors because they are immobile. To produce drought-resistant plants, we need to know how plants react to drought. A largescale proteome study of leaf and root tissue found drought-responsive proteins. Tomato as a vegetable is grown worldwide. Agricultural biotechnology focuses on creating drought-resistant cultivars. This is important because tomato drought is so widespread. Breeders have worked to improve tomato quality, production, and stress resistance. Conventional breeding approaches have only increased drought tolerance because of drought’s complexity. Many studies have examined how tomatoes handle drought. With genomics, transcriptomics, proteomics, metabolomics, and modern sequencing technologies, it’s easier to find drought-responsive genes. METHOD: Biotechnology and in silico studies has helped demonstrate the function of drought-sensitive genes and generate drought-resistant plant types. The latest tomato genome editing technology is another. WRKY genes are plant transcription factors. They help plants grow and respond to both natural and artificial stimuli. To make plants that can handle stress, we need to know how WRKY-proteins, which are transcription factors, work with other proteins and ligands in plant cells by molecular docking and modeling study. RESULT: Abscisic acid, a plant hormone generated in stressed roots, was used here to make plants drought-resistant. Abscisic acid binds WRKY with binding affinity -7.4kcal/mol and inhibitory concentration (Ki) 0.12 microM. DISCUSSION: This study aims to modulate the transcription factor so plants can handle drought and stress better. Therefore, polyphenols found to make Solanum lycopersicum more drought-tolerant. Frontiers Media S.A. 2023-02-02 /pmc/articles/PMC9933497/ /pubmed/36818888 http://dx.doi.org/10.3389/fpls.2023.1106857 Text en Copyright © 2023 Perveen, Alfagham, Debnath, Bukhari, Wei, Alshaikh and Alwadai https://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
Perveen, Kahkashan
Alfagham, Alanoud T.
Debnath, Sandip
Bukhari, Najat A.
Wei, Dong-Qing
Alshaikh, Najla A.
Alwadai, Aisha Saleh
Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach
title Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach
title_full Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach
title_fullStr Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach
title_full_unstemmed Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach
title_short Enriching drought resistance in Solanum lycopersicum using Abscisic acid as drought enhancer derived from Lygodium japonicum: A new-fangled computational approach
title_sort enriching drought resistance in solanum lycopersicum using abscisic acid as drought enhancer derived from lygodium japonicum: a new-fangled computational approach
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9933497/
https://www.ncbi.nlm.nih.gov/pubmed/36818888
http://dx.doi.org/10.3389/fpls.2023.1106857
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