Literature DB >> 1590818

ELF in vitro exposure systems for inducing uniform electric and magnetic fields in cell culture media.

H Bassen1, T Litovitz, M Penafiel, R Meister.   

Abstract

Many in vitro experiments on the biological effects of extremely low frequency (ELF) electromagnetic fields utilize a uniform external magnetic flux density (B) to expose biological materials. A significant number of researchers do not measure or estimate the resulting electric field strength (E) or current density (J) in the sample medium. The magnitude and spatial distribution of the induced E field are highly dependent on the sample geometry and its relative orientation with respect to the magnetic field. We have studied the E fields induced in several of the most frequently used laboratory culture dishes and flasks under various exposure conditions. Measurements and calculations of the E field distributions in the aqueous sample volume in the containers were performed, and a set of simple, quantitative tables was developed. These tables allow a biological researcher to determine, in a straightforward fashion, the magnitudes and distributions of the electric fields that are induced in the aqueous sample when it is subjected to a uniform, sinusoidal magnetic field of known strength and frequency. In addition, we present a novel exposure technique based on a standard organ culture dish containing two circular, concentric annular rings. Exposure of the organ culture dish to a uniform magnetic field induces different average electric fields in the liquid medium in the inner and outer rings. Results of experiments with this system, which were reported in a separate paper, have shown the dominant role of the magnetically induced E field in producing specific biological effects on cells, in vitro. These results emphasize the need to report data about the induced E field in ELF in-vitro studies, involving magnetic field exposures. Our data tables on E and J in standard containers provide simple means to enable determination of these parameters.

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Year:  1992        PMID: 1590818     DOI: 10.1002/bem.2250130303

Source DB:  PubMed          Journal:  Bioelectromagnetics        ISSN: 0197-8462            Impact factor:   2.010


  5 in total

1.  In-vitro mapping of E-fields induced near pacemaker leads by simulated MR gradient fields.

Authors:  Howard I Bassen; Gonzalo G Mendoza
Journal:  Biomed Eng Online       Date:  2009-12-15       Impact factor: 2.819

2.  Effect of electromagnetic fields on human osteoarthritic and non-osteoarthritic chondrocytes.

Authors:  Julia Isabelle Redeker; Bärbel Schmitt; Nele Pascale Grigull; Christian Braun; Andreas Büttner; Volkmar Jansson; Susanne Mayer-Wagner
Journal:  BMC Complement Altern Med       Date:  2017-08-14       Impact factor: 3.659

3.  Differential biological responses of adherent and non-adherent (cancer and non-cancerous) cells to variable extremely low frequency magnetic fields.

Authors:  Maryam Sadat Nezamtaheri; Bahram Goliaei; Seyed Peyman Shariatpanahi; Alireza Madjid Ansari
Journal:  Sci Rep       Date:  2022-08-20       Impact factor: 4.996

4.  Magnetic field therapy in patients with cytostatics-induced polyneuropathy: A prospective randomized placebo-controlled phase-III study.

Authors:  Oliver Rick; Ulrike von Hehn; Eberhard Mikus; Hermann Dertinger; Georg Geiger
Journal:  Bioelectromagnetics       Date:  2016-09-22       Impact factor: 2.010

5.  Effects of single and combined low frequency electromagnetic fields and simulated microgravity on gene expression of human mesenchymal stem cells during chondrogenesis.

Authors:  Susanne Mayer-Wagner; Florian Hammerschmid; Helmut Blum; Stefan Krebs; Julia I Redeker; Boris M Holzapfel; Volkmar Jansson; Peter E Müller
Journal:  Arch Med Sci       Date:  2016-05-16       Impact factor: 3.318

  5 in total

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