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Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time

The responses of Hypericum perforatum root cultures to chitosan elicitation had been investigated through (1)H-NMR-based metabolomics associated with morpho-anatomical analyses. The root metabolome was influenced by two factors, i.e., time of culture (associated with biomass growth and related “over...

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Autores principales: Brasili, Elisa, Miccheli, Alfredo, Marini, Federico, Praticò, Giulia, Sciubba, Fabio, Di Cocco, Maria E., Cechinel, Valdir Filho, Tocci, Noemi, Valletta, Alessio, Pasqua, Gabriella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4835506/
https://www.ncbi.nlm.nih.gov/pubmed/27148330
http://dx.doi.org/10.3389/fpls.2016.00507
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author Brasili, Elisa
Miccheli, Alfredo
Marini, Federico
Praticò, Giulia
Sciubba, Fabio
Di Cocco, Maria E.
Cechinel, Valdir Filho
Tocci, Noemi
Valletta, Alessio
Pasqua, Gabriella
author_facet Brasili, Elisa
Miccheli, Alfredo
Marini, Federico
Praticò, Giulia
Sciubba, Fabio
Di Cocco, Maria E.
Cechinel, Valdir Filho
Tocci, Noemi
Valletta, Alessio
Pasqua, Gabriella
author_sort Brasili, Elisa
collection PubMed
description The responses of Hypericum perforatum root cultures to chitosan elicitation had been investigated through (1)H-NMR-based metabolomics associated with morpho-anatomical analyses. The root metabolome was influenced by two factors, i.e., time of culture (associated with biomass growth and related “overcrowding stress”) and chitosan elicitation. ANOVA simultaneous component analysis (ASCA) modeling showed that these factors act independently. In response to the increase of biomass density over time, a decrease in the synthesis of isoleucine, valine, pyruvate, methylamine, etanolamine, trigonelline, glutamine and fatty acids, and an increase in the synthesis of phenolic compounds, such as xanthones, epicatechin, gallic, and shikimic acid were observed. Among the xanthones, brasilixanthone B has been identified for the first time in chitosan-elicited root cultures of H. perforatum. Chitosan treatment associated to a slowdown of root biomass growth caused an increase in DMAPP and a decrease in stigmasterol, shikimic acid, and tryptophan levels. The histological analysis of chitosan-treated roots revealed a marked swelling of the root apex, mainly due to the hypertrophy of the first two sub-epidermal cell layers. In addition, periclinal divisions in hypertrophic cortical cells, resulting in an increase of cortical layers, were frequently observed. Most of the metabolic variations as well as the morpho-anatomical alterations occurred within 72 h from the elicitation, suggesting an early response of H. perforatum roots to chitosan elicitation. The obtained results improve the knowledge of the root responses to biotic stress and provide useful information to optimize the biotechnological production of plant compounds of industrial interest.
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spelling pubmed-48355062016-05-04 Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time Brasili, Elisa Miccheli, Alfredo Marini, Federico Praticò, Giulia Sciubba, Fabio Di Cocco, Maria E. Cechinel, Valdir Filho Tocci, Noemi Valletta, Alessio Pasqua, Gabriella Front Plant Sci Plant Science The responses of Hypericum perforatum root cultures to chitosan elicitation had been investigated through (1)H-NMR-based metabolomics associated with morpho-anatomical analyses. The root metabolome was influenced by two factors, i.e., time of culture (associated with biomass growth and related “overcrowding stress”) and chitosan elicitation. ANOVA simultaneous component analysis (ASCA) modeling showed that these factors act independently. In response to the increase of biomass density over time, a decrease in the synthesis of isoleucine, valine, pyruvate, methylamine, etanolamine, trigonelline, glutamine and fatty acids, and an increase in the synthesis of phenolic compounds, such as xanthones, epicatechin, gallic, and shikimic acid were observed. Among the xanthones, brasilixanthone B has been identified for the first time in chitosan-elicited root cultures of H. perforatum. Chitosan treatment associated to a slowdown of root biomass growth caused an increase in DMAPP and a decrease in stigmasterol, shikimic acid, and tryptophan levels. The histological analysis of chitosan-treated roots revealed a marked swelling of the root apex, mainly due to the hypertrophy of the first two sub-epidermal cell layers. In addition, periclinal divisions in hypertrophic cortical cells, resulting in an increase of cortical layers, were frequently observed. Most of the metabolic variations as well as the morpho-anatomical alterations occurred within 72 h from the elicitation, suggesting an early response of H. perforatum roots to chitosan elicitation. The obtained results improve the knowledge of the root responses to biotic stress and provide useful information to optimize the biotechnological production of plant compounds of industrial interest. Frontiers Media S.A. 2016-04-19 /pmc/articles/PMC4835506/ /pubmed/27148330 http://dx.doi.org/10.3389/fpls.2016.00507 Text en Copyright © 2016 Brasili, Miccheli, Marini, Praticò, Sciubba, Di Cocco, Cechinel, Tocci, Valletta and Pasqua. 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) or licensor 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
Brasili, Elisa
Miccheli, Alfredo
Marini, Federico
Praticò, Giulia
Sciubba, Fabio
Di Cocco, Maria E.
Cechinel, Valdir Filho
Tocci, Noemi
Valletta, Alessio
Pasqua, Gabriella
Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time
title Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time
title_full Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time
title_fullStr Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time
title_full_unstemmed Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time
title_short Metabolic Profile and Root Development of Hypericum perforatum L. In vitro Roots under Stress Conditions Due to Chitosan Treatment and Culture Time
title_sort metabolic profile and root development of hypericum perforatum l. in vitro roots under stress conditions due to chitosan treatment and culture time
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4835506/
https://www.ncbi.nlm.nih.gov/pubmed/27148330
http://dx.doi.org/10.3389/fpls.2016.00507
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