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A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions

Humic substance (HS)-based biostimulants show potentials as sustainable strategies for improved crop development and stress resilience. However, cellular and molecular mechanisms governing the agronomically observed effects of HS on plants remain enigmatic. Here, we report a global metabolic reprogr...

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Autores principales: Othibeng, Kgalaletso, Nephali, Lerato, Ramabulana, Anza-Tshilidzi, Steenkamp, Paul, Petras, Daniel, Kang, Kyo Bin, Opperman, Hugo, Huyser, Johan, Tugizimana, Fidele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235525/
https://www.ncbi.nlm.nih.gov/pubmed/34202973
http://dx.doi.org/10.3390/metabo11060403
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author Othibeng, Kgalaletso
Nephali, Lerato
Ramabulana, Anza-Tshilidzi
Steenkamp, Paul
Petras, Daniel
Kang, Kyo Bin
Opperman, Hugo
Huyser, Johan
Tugizimana, Fidele
author_facet Othibeng, Kgalaletso
Nephali, Lerato
Ramabulana, Anza-Tshilidzi
Steenkamp, Paul
Petras, Daniel
Kang, Kyo Bin
Opperman, Hugo
Huyser, Johan
Tugizimana, Fidele
author_sort Othibeng, Kgalaletso
collection PubMed
description Humic substance (HS)-based biostimulants show potentials as sustainable strategies for improved crop development and stress resilience. However, cellular and molecular mechanisms governing the agronomically observed effects of HS on plants remain enigmatic. Here, we report a global metabolic reprogramming of maize leaves induced by a humic biostimulant under normal and nutrient starvation conditions. This reconfiguration of the maize metabolism spanned chemical constellations, as revealed by molecular networking approaches. Plant growth and development under normal conditions were characterized by key differential metabolic changes such as increased levels of amino acids, oxylipins and the tricarboxylic acid (TCA) intermediate, isocitric acid. Furthermore, under starvation, the humic biostimulant significantly impacted pathways that are involved in stress-alleviating mechanisms such as redox homeostasis, strengthening of the plant cell wall, osmoregulation, energy production and membrane remodelling. Thus, this study reveals that the humic biostimulant induces a remodelling of inter-compartmental metabolic networks in maize, subsequently readjusting the plant physiology towards growth promotion and stress alleviation. Such insights contribute to ongoing efforts in elucidating modes of action of biostimulants, generating fundamental scientific knowledge that is necessary for development of the biostimulant industry, for sustainable food security.
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spelling pubmed-82355252021-06-27 A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions Othibeng, Kgalaletso Nephali, Lerato Ramabulana, Anza-Tshilidzi Steenkamp, Paul Petras, Daniel Kang, Kyo Bin Opperman, Hugo Huyser, Johan Tugizimana, Fidele Metabolites Article Humic substance (HS)-based biostimulants show potentials as sustainable strategies for improved crop development and stress resilience. However, cellular and molecular mechanisms governing the agronomically observed effects of HS on plants remain enigmatic. Here, we report a global metabolic reprogramming of maize leaves induced by a humic biostimulant under normal and nutrient starvation conditions. This reconfiguration of the maize metabolism spanned chemical constellations, as revealed by molecular networking approaches. Plant growth and development under normal conditions were characterized by key differential metabolic changes such as increased levels of amino acids, oxylipins and the tricarboxylic acid (TCA) intermediate, isocitric acid. Furthermore, under starvation, the humic biostimulant significantly impacted pathways that are involved in stress-alleviating mechanisms such as redox homeostasis, strengthening of the plant cell wall, osmoregulation, energy production and membrane remodelling. Thus, this study reveals that the humic biostimulant induces a remodelling of inter-compartmental metabolic networks in maize, subsequently readjusting the plant physiology towards growth promotion and stress alleviation. Such insights contribute to ongoing efforts in elucidating modes of action of biostimulants, generating fundamental scientific knowledge that is necessary for development of the biostimulant industry, for sustainable food security. MDPI 2021-06-20 /pmc/articles/PMC8235525/ /pubmed/34202973 http://dx.doi.org/10.3390/metabo11060403 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
Othibeng, Kgalaletso
Nephali, Lerato
Ramabulana, Anza-Tshilidzi
Steenkamp, Paul
Petras, Daniel
Kang, Kyo Bin
Opperman, Hugo
Huyser, Johan
Tugizimana, Fidele
A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions
title A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions
title_full A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions
title_fullStr A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions
title_full_unstemmed A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions
title_short A Metabolic Choreography of Maize Plants Treated with a Humic Substance-Based Biostimulant under Normal and Starved Conditions
title_sort metabolic choreography of maize plants treated with a humic substance-based biostimulant under normal and starved conditions
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235525/
https://www.ncbi.nlm.nih.gov/pubmed/34202973
http://dx.doi.org/10.3390/metabo11060403
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