Miyakoshi Junji
Department of Radiological Technology, School of Health Sciences, Faculty of Medicine, Hirosaki University, 66-1 Hon-Cho, Hirosaki 036-8564, Japan.
Prog Biophys Mol Biol. 2005 Feb-Apr;87(2-3):213-23. doi: 10.1016/j.pbiomolbio.2004.08.008.
There have been few studies on the effects of static magnetic fields at the cellular level, compared to those of extremely low frequency magnetic fields. Past studies have shown that a static magnetic field alone does not have a lethal effect on the basic properties of cell growth and survival under normal culture conditions, regardless of the magnetic density. Most but not all studies have also suggested that a static magnetic field has no effect on changes in cell growth rate. It has also been shown that cell cycle distribution is not influenced by extremely strong static magnetic fields (up to a maximum of 10 T). A further area of interest is whether static magnetic fields cause DNA damage, which can be evaluated by determination of the frequency of micronucleus formation. The presence or absence of such micronuclei can confirm whether a particular treatment damages cellular DNA. This method has been used to confirm that a static magnetic field alone has no such effect. However, the frequency of micronucleus formation increases significantly when certain treatments (e.g., X-irradiation) are given prior to exposure to a 10 T static magnetic field. It has also been reported that treatment with trace amounts of ferrous ions in the cell culture medium and exposure to a static magnetic field increases DNA damage, which is detected using the comet assay. In addition, many studies have found a strong magnetic field that can induce orientation phenomena in cell culture.
与极低频磁场相比,关于静磁场在细胞水平上的影响的研究较少。过去的研究表明,在正常培养条件下,单独的静磁场对细胞生长和存活的基本特性没有致死作用,无论磁密度如何。大多数(但不是所有)研究还表明,静磁场对细胞生长速率的变化没有影响。研究还表明,细胞周期分布不受极强静磁场(最高可达10特斯拉)的影响。另一个感兴趣的领域是静磁场是否会导致DNA损伤,这可以通过测定微核形成频率来评估。此类微核的存在与否可以确认特定处理是否会损伤细胞DNA。该方法已被用于证实单独的静磁场没有这种作用。然而,当在暴露于10特斯拉静磁场之前进行某些处理(如X射线照射)时,微核形成频率会显著增加。也有报道称,在细胞培养基中用痕量亚铁离子处理并暴露于静磁场会增加DNA损伤,这是通过彗星试验检测到的。此外,许多研究发现强磁场可在细胞培养中诱导定向现象。