Static magnetic fields affect the diffusion of biological particles in solutions through the Lorentz force and Maxwell stress. These effects were analyzed theoretically to estimate the threshold field strength for these effects. Our results show that the Lorentz force suppresses the diffusion of cha
Optimization of static magnetic field parameters improves analgesic effect in mice
✍ Scribed by János László; Jenő Reiczigel; László Székely; Antal Gasparics; István Bogár; László Bors; Bernadette Rácz; Klára Gyires
- Publisher
- John Wiley and Sons
- Year
- 2007
- Tongue
- English
- Weight
- 281 KB
- Volume
- 28
- Category
- Article
- ISSN
- 0197-8462
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✦ Synopsis
Abstract
The present study deals with the analgesic effect induced by static magnetic fields (SMF) in mice exposed to the field with their whole body. It discusses how the effect depends on the distribution of the magnetic field, that is, on the specification and arrangement of the applied individual permanent magnets. A critical analysis of different magnet arrangements is given. As a result the authors propose a magnet arrangement recipe that achieves an analgesic effect of over 80% in the writhing test. This is a widely accepted screening method for animal pain and predictor of human experimental results. As a non‐drug, non‐invasive, non‐contact, non‐pain, non‐addictive method for analgesia with immediate and long‐lasting effect based on the stimulus of the endogenous opioid network, the SMF treatment may attract the attention of medical doctors, nurses, magnet therapists, veterinarians, physiotherapists, masseurs, and fitness trainers among others. Bioelectromagnetics 28:615–627, 2007. © 2007 Wiley‐Liss, Inc.
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