弱电磁场对拟南芥钙离子浓度的瞬时效应
Transient effect of weak electromagnetic fields on calcium ion concentration in Arabidopsis thaliana.
作者信息
Pazur Alexander, Rassadina Valentina
机构信息
Department Biology I Botany, Ludwig Maximilians University Munich, Munich, Germany.
出版信息
BMC Plant Biol. 2009 Apr 30;9:47. doi: 10.1186/1471-2229-9-47.
BACKGROUND
Weak magnetic and electromagnetic fields can influence physiological processes in animals, plants and microorganisms, but the underlying way of perception is poorly understood. The ion cyclotron resonance is one of the discussed mechanisms, predicting biological effects for definite frequencies and intensities of electromagnetic fields possibly by affecting the physiological availability of small ions. Above all an influence on Calcium, which is crucial for many life processes, is in the focus of interest. We show that in Arabidopsis thaliana, changes in Ca2+-concentrations can be induced by combinations of magnetic and electromagnetic fields that match Ca2+-ion cyclotron resonance conditions.
RESULTS
An aequorin expressing Arabidopsis thaliana mutant (Col0-1 Aeq Cy+) was subjected to a magnetic field around 65 microtesla (0.65 Gauss) and an electromagnetic field with the corresponding Ca2+ cyclotron frequency of 50 Hz. The resulting changes in free Ca2+ were monitored by aequorin bioluminescence, using a high sensitive photomultiplier unit. The experiments were referenced by the additional use of wild type plants. Transient increases of cytosolic Ca2+ were observed both after switching the electromagnetic field on and off, with the latter effect decreasing with increasing duration of the electromagnetic impact. Compared with this the uninfluenced long-term loss of bioluminescence activity without any exogenic impact was negligible. The magnetic field effect rapidly decreased if ion cyclotron resonance conditions were mismatched by varying the magnetic fieldstrength, also a dependence on the amplitude of the electromagnetic component was seen.
CONCLUSION
Considering the various functions of Ca2+ as a second messenger in plants, this mechanism may be relevant for perception of these combined fields. The applicability of recently hypothesized mechanisms for the ion cyclotron resonance effect in biological systems is discussed considering it's operating at magnetic field strengths weak enough, to occur occasionally in our all day environment.
背景
弱磁场和电磁场能够影响动物、植物及微生物的生理过程,但其潜在的感知方式却鲜为人知。离子回旋共振是其中一种被探讨的机制,它预测特定频率和强度的电磁场可能通过影响小离子的生理可用性而产生生物学效应。最重要的是,对钙的影响成为了研究焦点,钙对许多生命过程至关重要。我们发现,拟南芥中,与钙离子回旋共振条件相匹配的磁场和电磁场组合能够诱导钙离子浓度发生变化。
结果
将表达水母发光蛋白的拟南芥突变体(Col0-1 Aeq Cy+)置于约65微特斯拉(0.65高斯)的磁场和相应钙离子回旋频率为50赫兹的电磁场中。利用高灵敏度光电倍增管单元,通过水母发光蛋白生物发光监测游离钙离子的变化情况。实验以额外使用野生型植物作为对照。在开启和关闭电磁场后均观察到胞质钙离子的瞬时增加,后一种效应会随着电磁作用持续时间的增加而减弱。相比之下,在没有任何外源影响的情况下,生物发光活性的长期自然丧失可忽略不计。如果通过改变磁场强度使离子回旋共振条件不匹配,磁场效应会迅速减弱,同时也观察到对电磁分量幅度的依赖性。
结论
鉴于钙离子作为植物中第二信使的多种功能,这种机制可能与这些组合场的感知有关。考虑到离子回旋共振效应在生物系统中运行的磁场强度足够弱,以至于在我们的日常环境中偶尔会出现,本文讨论了最近假设的该效应机制的适用性。
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