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The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants

The purpose of this paper is to review the scientific results and summarise the emerging topic of the effects of statistic magnetic field on the structure, biochemical activity, and gene expression of plants. The literature on the subject reports a wide range of possibilities regarding the use of th...

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Autores principales: Saletnik, Bogdan, Saletnik, Aneta, Słysz, Ewelina, Zaguła, Grzegorz, Bajcar, Marcin, Puchalska-Sarna, Anna, Puchalski, Czesław
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9506020/
https://www.ncbi.nlm.nih.gov/pubmed/36144557
http://dx.doi.org/10.3390/molecules27185823
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author Saletnik, Bogdan
Saletnik, Aneta
Słysz, Ewelina
Zaguła, Grzegorz
Bajcar, Marcin
Puchalska-Sarna, Anna
Puchalski, Czesław
author_facet Saletnik, Bogdan
Saletnik, Aneta
Słysz, Ewelina
Zaguła, Grzegorz
Bajcar, Marcin
Puchalska-Sarna, Anna
Puchalski, Czesław
author_sort Saletnik, Bogdan
collection PubMed
description The purpose of this paper is to review the scientific results and summarise the emerging topic of the effects of statistic magnetic field on the structure, biochemical activity, and gene expression of plants. The literature on the subject reports a wide range of possibilities regarding the use of the magnetic field to modify the properties of plant cells. MFs have a significant impact on the photosynthesis efficiency of the biomass and vigour accumulation indexes. Treating plants with SMFs accelerates the formation and accumulation of reactive oxygen species. At the same time, the influence of MFs causes the high activity of antioxidant enzymes, which reduces oxidative stress. SMFs have a strong influence on the shape of the cell and the structure of the cell membrane, thus increasing their permeability and influencing the various activities of the metabolic pathways. The use of magnetic treatments on plants causes a higher content of proteins, carbohydrates, soluble and reducing sugars, and in some cases, lipids and fatty acid composition and influences the uptake of macro- and microelements and different levels of gene expression. In this study, the effect of MFs was considered as a combination of MF intensity and time exposure, for different varieties and plant species. The following article shows the wide-ranging possibilities of applying magnetic fields to the dynamics of changes in the life processes and structures of plants. Thus far, the magnetic field is not widely used in agricultural practice. The current knowledge about the influence of MFs on plant cells is still insufficient. It is, therefore, necessary to carry out detailed research for a more in-depth understanding of the possibilities of modifying the properties of plant cells and achieving the desired effects by means of a magnetic field.
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spelling pubmed-95060202022-09-24 The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants Saletnik, Bogdan Saletnik, Aneta Słysz, Ewelina Zaguła, Grzegorz Bajcar, Marcin Puchalska-Sarna, Anna Puchalski, Czesław Molecules Review The purpose of this paper is to review the scientific results and summarise the emerging topic of the effects of statistic magnetic field on the structure, biochemical activity, and gene expression of plants. The literature on the subject reports a wide range of possibilities regarding the use of the magnetic field to modify the properties of plant cells. MFs have a significant impact on the photosynthesis efficiency of the biomass and vigour accumulation indexes. Treating plants with SMFs accelerates the formation and accumulation of reactive oxygen species. At the same time, the influence of MFs causes the high activity of antioxidant enzymes, which reduces oxidative stress. SMFs have a strong influence on the shape of the cell and the structure of the cell membrane, thus increasing their permeability and influencing the various activities of the metabolic pathways. The use of magnetic treatments on plants causes a higher content of proteins, carbohydrates, soluble and reducing sugars, and in some cases, lipids and fatty acid composition and influences the uptake of macro- and microelements and different levels of gene expression. In this study, the effect of MFs was considered as a combination of MF intensity and time exposure, for different varieties and plant species. The following article shows the wide-ranging possibilities of applying magnetic fields to the dynamics of changes in the life processes and structures of plants. Thus far, the magnetic field is not widely used in agricultural practice. The current knowledge about the influence of MFs on plant cells is still insufficient. It is, therefore, necessary to carry out detailed research for a more in-depth understanding of the possibilities of modifying the properties of plant cells and achieving the desired effects by means of a magnetic field. MDPI 2022-09-08 /pmc/articles/PMC9506020/ /pubmed/36144557 http://dx.doi.org/10.3390/molecules27185823 Text en © 2022 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 Review
Saletnik, Bogdan
Saletnik, Aneta
Słysz, Ewelina
Zaguła, Grzegorz
Bajcar, Marcin
Puchalska-Sarna, Anna
Puchalski, Czesław
The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants
title The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants
title_full The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants
title_fullStr The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants
title_full_unstemmed The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants
title_short The Static Magnetic Field Regulates the Structure, Biochemical Activity, and Gene Expression of Plants
title_sort static magnetic field regulates the structure, biochemical activity, and gene expression of plants
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9506020/
https://www.ncbi.nlm.nih.gov/pubmed/36144557
http://dx.doi.org/10.3390/molecules27185823
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