Cortex reorganization of Xenopus laevis eggs in strong static magnetic fields.

Daniel Mietchen, Jörg W Jakobi, Hans-Peter Richter
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Abstract

Observations of magnetic field effects on biological systems have often been contradictory. For amphibian eggs, a review of the available literature suggests that part of the discrepancies might be resolved by considering a previously neglected parameter for morphological alterations induced by magnetic fields--the jelly layers that normally surround the egg and are often removed in laboratory studies for easier cell handling. To experimentally test this hypothesis, we observed the morphology of fertilizable Xenopus laevis eggs with and without jelly coat that were subjected to static magnetic fields of up to 9.4 T for different periods of time. A complex reorganization of cortical pigmentation was found in dejellied eggs as a function of the magnetic field and the field exposure time. Initial pigment rearrangements could be observed at about 0.5 T, and less than 3 T are required for the effects to fully develop within two hours. No effect was observed when the jelly layers of the eggs were left intact. These results suggest that the action of magnetic fields might involve cortical pigments or associated cytoskeletal structures normally held in place by the jelly layers and that the presence of the jelly layer should indeed be included in further studies of magnetic field effects in this system.

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在强静态磁场中的爪蟾卵皮层重组
关于磁场对生物系统影响的观察结果往往相互矛盾。就两栖动物卵而言,对现有文献的回顾表明,考虑到磁场诱发形态改变的一个以前被忽视的参数--通常环绕在卵周围的果冻层,以及在实验室研究中为便于处理细胞而经常去除的果冻层,可能会解决部分差异。为了在实验中验证这一假设,我们观察了有果冻层和没有果冻层的可受精爪蟾卵在不同时间段内经受高达 9.4 T 的静态磁场的形态。在脱胶卵中发现皮层色素的复杂重组是磁场和磁场暴露时间的函数。在大约 0.5 T 时就能观察到最初的色素重新排列,需要小于 3 T 才能在两小时内完全产生影响。当卵的果冻层保持完好时,没有观察到任何影响。这些结果表明,磁场的作用可能涉及皮层色素或通常由果冻层固定的相关细胞骨架结构,而且果冻层的存在确实应纳入该系统磁场效应的进一步研究中。
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