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A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures

The effects of extremely low-frequency electromagnetic field (ELF-MF) exposure on living systems have been widely studied at the fundamental level and also claimed as beneficial for the treatment of diseases for over 50 years. However, the underlying mechanisms and cellular targets of ELF-MF exposur...

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Autores principales: Ronniger, Michael, Aguida, Blanche, Stacke, Christina, Chen, Yangmengfan, Ehnert, Sabrina, Erdmann, Niklas, Eschenburg, Georg, Falldorf, Karsten, Pooam, Marootpong, Wing, Anthony, Ahmad, Margaret
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9598188/
https://www.ncbi.nlm.nih.gov/pubmed/36290562
http://dx.doi.org/10.3390/bioengineering9100595
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author Ronniger, Michael
Aguida, Blanche
Stacke, Christina
Chen, Yangmengfan
Ehnert, Sabrina
Erdmann, Niklas
Eschenburg, Georg
Falldorf, Karsten
Pooam, Marootpong
Wing, Anthony
Ahmad, Margaret
author_facet Ronniger, Michael
Aguida, Blanche
Stacke, Christina
Chen, Yangmengfan
Ehnert, Sabrina
Erdmann, Niklas
Eschenburg, Georg
Falldorf, Karsten
Pooam, Marootpong
Wing, Anthony
Ahmad, Margaret
author_sort Ronniger, Michael
collection PubMed
description The effects of extremely low-frequency electromagnetic field (ELF-MF) exposure on living systems have been widely studied at the fundamental level and also claimed as beneficial for the treatment of diseases for over 50 years. However, the underlying mechanisms and cellular targets of ELF-MF exposure remain poorly understood and the field has been plagued with controversy stemming from an endemic lack of reproducibility of published findings. To address this problem, we here demonstrate a technically simple and reproducible EMF exposure protocol to achieve a standardized experimental approach which can be readily adopted in any lab. As an assay system, we chose a commercially available inflammatory model human cell line; its response to magnetic fields involves changes in gene expression which can be monitored by a simple colorimetric reporter gene assay. The cells were seeded and cultured in microplates and inserted into a custom-built, semi-automated incubation and exposure system which accurately controls the incubation (temperature, humidity, [Formula: see text]) and magnetic-field exposure conditions. A specific alternating magnetic field (<1.0% spatial variance) including far-field reduction provided defined exposure conditions at the position of each well of the microplate. To avoid artifacts, all environmental and magnetic-field exposure parameters were logged in real time throughout the duration of the experiment. Under these extensively controlled conditions, the effect of the magnetic field on the cell cultures as assayed by the standardized operating procedure was highly reproducible between experiments. As we could fully define the characteristics (frequency, intensity, duration) of the pulsed magnetic field signals at the position of the sample well, we were, for the first time, able to accurately determine the effect of changing single ELF-MF parameters such as signal shape, frequency, intensity and duty cycle on the biological response. One signal in particular (10 Hz, [Formula: see text] duty cycle, rectangular, bipolar, [Formula: see text] T) provided a significant reduction in cytokine reporter gene expression by [Formula: see text] in our model cell culture line. In sum, the accuracy, environmental control and data-logging capacity of the semi-automated exposure system should greatly facilitate research into fundamental cellular response mechanisms and achieve the consistency necessary to bring ELF-MF/PEMF research results into the scientific mainstream.
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spelling pubmed-95981882022-10-27 A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures Ronniger, Michael Aguida, Blanche Stacke, Christina Chen, Yangmengfan Ehnert, Sabrina Erdmann, Niklas Eschenburg, Georg Falldorf, Karsten Pooam, Marootpong Wing, Anthony Ahmad, Margaret Bioengineering (Basel) Brief Report The effects of extremely low-frequency electromagnetic field (ELF-MF) exposure on living systems have been widely studied at the fundamental level and also claimed as beneficial for the treatment of diseases for over 50 years. However, the underlying mechanisms and cellular targets of ELF-MF exposure remain poorly understood and the field has been plagued with controversy stemming from an endemic lack of reproducibility of published findings. To address this problem, we here demonstrate a technically simple and reproducible EMF exposure protocol to achieve a standardized experimental approach which can be readily adopted in any lab. As an assay system, we chose a commercially available inflammatory model human cell line; its response to magnetic fields involves changes in gene expression which can be monitored by a simple colorimetric reporter gene assay. The cells were seeded and cultured in microplates and inserted into a custom-built, semi-automated incubation and exposure system which accurately controls the incubation (temperature, humidity, [Formula: see text]) and magnetic-field exposure conditions. A specific alternating magnetic field (<1.0% spatial variance) including far-field reduction provided defined exposure conditions at the position of each well of the microplate. To avoid artifacts, all environmental and magnetic-field exposure parameters were logged in real time throughout the duration of the experiment. Under these extensively controlled conditions, the effect of the magnetic field on the cell cultures as assayed by the standardized operating procedure was highly reproducible between experiments. As we could fully define the characteristics (frequency, intensity, duration) of the pulsed magnetic field signals at the position of the sample well, we were, for the first time, able to accurately determine the effect of changing single ELF-MF parameters such as signal shape, frequency, intensity and duty cycle on the biological response. One signal in particular (10 Hz, [Formula: see text] duty cycle, rectangular, bipolar, [Formula: see text] T) provided a significant reduction in cytokine reporter gene expression by [Formula: see text] in our model cell culture line. In sum, the accuracy, environmental control and data-logging capacity of the semi-automated exposure system should greatly facilitate research into fundamental cellular response mechanisms and achieve the consistency necessary to bring ELF-MF/PEMF research results into the scientific mainstream. MDPI 2022-10-21 /pmc/articles/PMC9598188/ /pubmed/36290562 http://dx.doi.org/10.3390/bioengineering9100595 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 Brief Report
Ronniger, Michael
Aguida, Blanche
Stacke, Christina
Chen, Yangmengfan
Ehnert, Sabrina
Erdmann, Niklas
Eschenburg, Georg
Falldorf, Karsten
Pooam, Marootpong
Wing, Anthony
Ahmad, Margaret
A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures
title A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures
title_full A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures
title_fullStr A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures
title_full_unstemmed A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures
title_short A Novel Method to Achieve Precision and Reproducibility in Exposure Parameters for Low-Frequency Pulsed Magnetic Fields in Human Cell Cultures
title_sort novel method to achieve precision and reproducibility in exposure parameters for low-frequency pulsed magnetic fields in human cell cultures
topic Brief Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9598188/
https://www.ncbi.nlm.nih.gov/pubmed/36290562
http://dx.doi.org/10.3390/bioengineering9100595
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