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Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1

This study elaborates inter-kingdom signaling mechanisms, presenting a sustainable and eco-friendly approach to combat biotic as well as abiotic stress in wheat. Fusarium graminearum is a devastating pathogen causing head and seedling blight in wheat, leading to huge yield and economic losses. Psych...

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Detalles Bibliográficos
Autores principales: Zubair, Muhammad, Farzand, Ayaz, Mumtaz, Faiza, Khan, Abdur Rashid, Sheikh, Taha Majid Mahmood, Haider, Muhammad Salman, Yu, Chenjie, Wang, Yujie, Ayaz, Muhammad, Gu, Qin, Gao, Xuewen, Wu, Huijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8622878/
https://www.ncbi.nlm.nih.gov/pubmed/34829976
http://dx.doi.org/10.3390/ijms222212094
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author Zubair, Muhammad
Farzand, Ayaz
Mumtaz, Faiza
Khan, Abdur Rashid
Sheikh, Taha Majid Mahmood
Haider, Muhammad Salman
Yu, Chenjie
Wang, Yujie
Ayaz, Muhammad
Gu, Qin
Gao, Xuewen
Wu, Huijun
author_facet Zubair, Muhammad
Farzand, Ayaz
Mumtaz, Faiza
Khan, Abdur Rashid
Sheikh, Taha Majid Mahmood
Haider, Muhammad Salman
Yu, Chenjie
Wang, Yujie
Ayaz, Muhammad
Gu, Qin
Gao, Xuewen
Wu, Huijun
author_sort Zubair, Muhammad
collection PubMed
description This study elaborates inter-kingdom signaling mechanisms, presenting a sustainable and eco-friendly approach to combat biotic as well as abiotic stress in wheat. Fusarium graminearum is a devastating pathogen causing head and seedling blight in wheat, leading to huge yield and economic losses. Psychrophilic Bacillus atrophaeus strain TS1 was found as a potential biocontrol agent for suppression of F. graminearum under low temperature by carrying out extensive biochemical and molecular studies in comparison with a temperate biocontrol model strain Bacillus amyloliquefaciens FZB42 at 15 and 25 °C. TS1 was able to produce hydrolytic extracellular enzymes as well as antimicrobial lipopeptides, i.e., surfactin, bacillomycin, and fengycin, efficiently at low temperatures. The Bacillus strain-induced oxidative cellular damage, ultrastructural deformities, and novel genetic dysregulations in the fungal pathogen as the bacterial treatment at low temperature were able to downregulate the expression of newly predicted novel fungal genes potentially belonging to necrosis inducing protein families (fgHCE and fgNPP1). The wheat pot experiments conducted at 15 and 25 °C revealed the potential of TS1 to elicit sudden induction of plant defense, namely, H(2)O(2) and callose enhanced activity of plant defense-related enzymes and induced over-expression of defense-related genes which accumulatively lead to the suppression of F. graminearum and decreased diseased leaf area.
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spelling pubmed-86228782021-11-27 Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1 Zubair, Muhammad Farzand, Ayaz Mumtaz, Faiza Khan, Abdur Rashid Sheikh, Taha Majid Mahmood Haider, Muhammad Salman Yu, Chenjie Wang, Yujie Ayaz, Muhammad Gu, Qin Gao, Xuewen Wu, Huijun Int J Mol Sci Article This study elaborates inter-kingdom signaling mechanisms, presenting a sustainable and eco-friendly approach to combat biotic as well as abiotic stress in wheat. Fusarium graminearum is a devastating pathogen causing head and seedling blight in wheat, leading to huge yield and economic losses. Psychrophilic Bacillus atrophaeus strain TS1 was found as a potential biocontrol agent for suppression of F. graminearum under low temperature by carrying out extensive biochemical and molecular studies in comparison with a temperate biocontrol model strain Bacillus amyloliquefaciens FZB42 at 15 and 25 °C. TS1 was able to produce hydrolytic extracellular enzymes as well as antimicrobial lipopeptides, i.e., surfactin, bacillomycin, and fengycin, efficiently at low temperatures. The Bacillus strain-induced oxidative cellular damage, ultrastructural deformities, and novel genetic dysregulations in the fungal pathogen as the bacterial treatment at low temperature were able to downregulate the expression of newly predicted novel fungal genes potentially belonging to necrosis inducing protein families (fgHCE and fgNPP1). The wheat pot experiments conducted at 15 and 25 °C revealed the potential of TS1 to elicit sudden induction of plant defense, namely, H(2)O(2) and callose enhanced activity of plant defense-related enzymes and induced over-expression of defense-related genes which accumulatively lead to the suppression of F. graminearum and decreased diseased leaf area. MDPI 2021-11-09 /pmc/articles/PMC8622878/ /pubmed/34829976 http://dx.doi.org/10.3390/ijms222212094 Text en © 2021 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
Zubair, Muhammad
Farzand, Ayaz
Mumtaz, Faiza
Khan, Abdur Rashid
Sheikh, Taha Majid Mahmood
Haider, Muhammad Salman
Yu, Chenjie
Wang, Yujie
Ayaz, Muhammad
Gu, Qin
Gao, Xuewen
Wu, Huijun
Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1
title Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1
title_full Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1
title_fullStr Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1
title_full_unstemmed Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1
title_short Novel Genetic Dysregulations and Oxidative Damage in Fusarium graminearum Induced by Plant Defense Eliciting Psychrophilic Bacillus atrophaeus TS1
title_sort novel genetic dysregulations and oxidative damage in fusarium graminearum induced by plant defense eliciting psychrophilic bacillus atrophaeus ts1
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8622878/
https://www.ncbi.nlm.nih.gov/pubmed/34829976
http://dx.doi.org/10.3390/ijms222212094
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