Cargando…

Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways

Bioengineered silver nanoparticles can emerge as a facile approach to combat plant pathogen, reducing the use of pesticides in an eco-friendly manner. The plants’ response during tripartite interaction of plant, pathogen, and nanoparticles remains largely unknown. This study demonstrated the use of...

Descripción completa

Detalles Bibliográficos
Autores principales: Kumari, Madhuree, Pandey, Shipra, Mishra, Shashank Kumar, Giri, Ved Prakash, Agarwal, Lalit, Dwivedi, Sanjay, Pandey, Alok Kumar, Nautiyal, Chandra Shekhar, Mishra, Aradhana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7180193/
https://www.ncbi.nlm.nih.gov/pubmed/32363178
http://dx.doi.org/10.3389/fbioe.2020.00242
_version_ 1783525772449808384
author Kumari, Madhuree
Pandey, Shipra
Mishra, Shashank Kumar
Giri, Ved Prakash
Agarwal, Lalit
Dwivedi, Sanjay
Pandey, Alok Kumar
Nautiyal, Chandra Shekhar
Mishra, Aradhana
author_facet Kumari, Madhuree
Pandey, Shipra
Mishra, Shashank Kumar
Giri, Ved Prakash
Agarwal, Lalit
Dwivedi, Sanjay
Pandey, Alok Kumar
Nautiyal, Chandra Shekhar
Mishra, Aradhana
author_sort Kumari, Madhuree
collection PubMed
description Bioengineered silver nanoparticles can emerge as a facile approach to combat plant pathogen, reducing the use of pesticides in an eco-friendly manner. The plants’ response during tripartite interaction of plant, pathogen, and nanoparticles remains largely unknown. This study demonstrated the use of bioengineered silver nanoparticles in combating black spot disease caused by necrotrophic fungus Alternaria brassicicola in Arabidopsis thaliana via foliar spray. The particles reduced disease severity by 70–80% at 5 μg/ml without showing phytotoxicity. It elicited plant immunity by a significant reduction in reactive oxygen species (ROS), decreases in stress enzymes by 0.6–19.8-fold, and emergence of autophagy. Comparative plant proteomics revealed 599 proteins expressed during the interaction, where 117 differential proteins were identified. Among different categories, proteins involved in bioenergy and metabolism were most abundant (44%), followed by proteins involved in plant defense (20%). Metabolic profiling by gas chromatography–mass spectroscopy yielded 39 metabolite derivatives in non-polar fraction and 25 in the polar fraction of plant extracts. It was observed that proteins involved in protein biogenesis and early plant defense were overexpressed to produce abundant antimicrobial metabolites and minimize ROS production. Bioengineered silver nanoparticles performed dual functions to combat pathogen attack by killing plant pathogen and eliciting immunity by altering plant defense proteome and metabolome.
format Online
Article
Text
id pubmed-7180193
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-71801932020-05-01 Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways Kumari, Madhuree Pandey, Shipra Mishra, Shashank Kumar Giri, Ved Prakash Agarwal, Lalit Dwivedi, Sanjay Pandey, Alok Kumar Nautiyal, Chandra Shekhar Mishra, Aradhana Front Bioeng Biotechnol Bioengineering and Biotechnology Bioengineered silver nanoparticles can emerge as a facile approach to combat plant pathogen, reducing the use of pesticides in an eco-friendly manner. The plants’ response during tripartite interaction of plant, pathogen, and nanoparticles remains largely unknown. This study demonstrated the use of bioengineered silver nanoparticles in combating black spot disease caused by necrotrophic fungus Alternaria brassicicola in Arabidopsis thaliana via foliar spray. The particles reduced disease severity by 70–80% at 5 μg/ml without showing phytotoxicity. It elicited plant immunity by a significant reduction in reactive oxygen species (ROS), decreases in stress enzymes by 0.6–19.8-fold, and emergence of autophagy. Comparative plant proteomics revealed 599 proteins expressed during the interaction, where 117 differential proteins were identified. Among different categories, proteins involved in bioenergy and metabolism were most abundant (44%), followed by proteins involved in plant defense (20%). Metabolic profiling by gas chromatography–mass spectroscopy yielded 39 metabolite derivatives in non-polar fraction and 25 in the polar fraction of plant extracts. It was observed that proteins involved in protein biogenesis and early plant defense were overexpressed to produce abundant antimicrobial metabolites and minimize ROS production. Bioengineered silver nanoparticles performed dual functions to combat pathogen attack by killing plant pathogen and eliciting immunity by altering plant defense proteome and metabolome. Frontiers Media S.A. 2020-04-17 /pmc/articles/PMC7180193/ /pubmed/32363178 http://dx.doi.org/10.3389/fbioe.2020.00242 Text en Copyright © 2020 Kumari, Pandey, Mishra, Giri, Agarwal, Dwivedi, Pandey, Nautiyal and Mishra. 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 Bioengineering and Biotechnology
Kumari, Madhuree
Pandey, Shipra
Mishra, Shashank Kumar
Giri, Ved Prakash
Agarwal, Lalit
Dwivedi, Sanjay
Pandey, Alok Kumar
Nautiyal, Chandra Shekhar
Mishra, Aradhana
Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways
title Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways
title_full Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways
title_fullStr Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways
title_full_unstemmed Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways
title_short Omics-Based Mechanistic Insight Into the Role of Bioengineered Nanoparticles for Biotic Stress Amelioration by Modulating Plant Metabolic Pathways
title_sort omics-based mechanistic insight into the role of bioengineered nanoparticles for biotic stress amelioration by modulating plant metabolic pathways
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7180193/
https://www.ncbi.nlm.nih.gov/pubmed/32363178
http://dx.doi.org/10.3389/fbioe.2020.00242
work_keys_str_mv AT kumarimadhuree omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT pandeyshipra omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT mishrashashankkumar omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT girivedprakash omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT agarwallalit omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT dwivedisanjay omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT pandeyalokkumar omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT nautiyalchandrashekhar omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways
AT mishraaradhana omicsbasedmechanisticinsightintotheroleofbioengineerednanoparticlesforbioticstressameliorationbymodulatingplantmetabolicpathways