MEASUREMENT AND ANALYSIS OF STATIC MAGNETIC-FIELDS THAT BLOCK ACTION-POTENTIALS IN CULTURED NEURONS

被引:75
作者
CAVOPOL, AV
WAMIL, AW
HOLCOMB, RR
MCLEAN, MJ
机构
[1] VANDERBILT UNIV,MED CTR,DEPT NEUROL,NASHVILLE,TN 37212
[2] DEPT VET AFFAIRS MED CTR,NASHVILLE,TN 37212
[3] HOLCOMB TECHNOL INC,NASHVILLE,TN
关键词
STATIC MAGNETIC FIELDS; SPATIAL FIELD VARIATION; COMPUTER MODEL; GRADIENT; ACTION POTENTIAL BLOCKADE; CULTURED SENSORY NEURONS;
D O I
10.1002/bem.2250160308
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
To characterize the properties of static magnetic fields on firing of action potentials (AP) by sensory neurons in cell culture, we developed a mathematical formalism based on the expression for the magnetic field of a single circular current loop. The calculated fields fit closely the field measurements taken with a Hall effect gaussmeter. The biological effect induced by different arrays of permanent magnets depended principally on the spatial variation of the fields, quantified by the value of the gradient of the field magnitude. Magnetic arrays of different sizes (macroarray: four center-charged neodymium magnets of similar to 14 mm diameter; microarray: four micromagnets of the same material but of similar to 0.4 mm diameter) allowed comparison of fields with similar gradients but different intensities at the cell position. These two arrays had a common gradient value of similar to 1 mT/mm and blocked >70% of AP. Alternatively, cells placed in a field strength of similar to 0.2 mT and a gradient of similar to 0.02 mT/mm produced by the macroarray resulted in no significant reduction of firing; a microarray field of the same strength but with a higher gradient of similar to 1.5 mT/mm caused similar to 80% AP blockade. The experimental threshold gradient and the calculated threshold field intensity for blockade of action potentials by these arrays were estimated to be similar to 0.02 mT/mm and similar to 0.02 mT, respectively. In conclusion, these findings suggest that spatial variation of the magnetic field is the principal cause of AP blockade in dorsal root ganglia in vitro. (C) 1995 Wiley-Liss, Inc.
引用
收藏
页码:197 / 206
页数:10
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