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首页> 外文期刊>Bioelectromagnetics. >Detection of intracellular macromolecule behavior under strong magnetic fields by linearly polarized light.
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Detection of intracellular macromolecule behavior under strong magnetic fields by linearly polarized light.

机译:通过线性偏振光检测强磁场下的细胞内大分子行为。

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摘要

Strong static magnetic fields on the order of 10 T have a diamagnetic force on cell components and generate a clear alignment of a smooth muscle cell assembly, parallel to the direction of the magnetic fields within an exposure period of 3 days. This work shows the effects of diamagnetic torque forces on cell component motion. Linearly polarized light was utilized to detect the displacement of intracellular macromolecules. The polarized light passed through a mass of cells in a magnetic field, and transmission of the light increased and reached a plateau 2 h after the beginning of magnetic field exposure at 14 T. However, no distinct change was observed in transmission of the light under zero magnetic field exposure. The change in polarized light intensity through the lamellar cell assembly under magnetic fields corresponds to behavioral changes in cell components. It was speculated that intracellular macromolecules rotated and showed a displacement due to diamagnetic torque forces during 2-3 h of magnetic field exposure at 14 T. Bioelectromagnetics 24:564-570, 2003.
机译:大约10 T的强静态磁场会对细胞成分产生反磁力,并在3天的暴露时间内平行于磁场方向产生平滑肌细胞组件的清晰对齐。这项工作显示了反磁性扭矩力对细胞成分运动的影响。线性偏振光用于检测细胞内大分子的位移。偏振光在磁场中穿过大量细胞,并且在14 T的磁场开始暴露后2小时,光的透射率增加并达到平稳。零磁场暴露。在磁场下穿过层状电池组件的偏振光强度的变化对应于电池组件的行为变化。据推测,细胞内大分子旋转并显示出在14 T磁场暴露2-3 h期间由于反磁性扭矩力引起的位移。Bioelectromagnetics 24:564-570,2003。

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