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激活依赖性和双相电磁场效应:基于细胞信号传导中协同酶动力学的模型

Activation-dependent and biphasic electromagnetic field effects: model based on cooperative enzyme kinetics in cellular signaling.

作者信息

Eichwald C, Walleczek J

机构信息

Department of Radiation Oncology, Stanford University School of Medicine, California 94305-5124, USA.

出版信息

Bioelectromagnetics. 1996;17(6):427-35. doi: 10.1002/(SICI)1521-186X(1996)17:6<427::AID-BEM1>3.0.CO;2-5.

Abstract

Experiments on filed exposure effects of extremely-low-frequency electric and magnetic fields (EMFs) on biological systems have shown that, in many cases, the biological-functional status is of fundamental importance for an effective interaction. For example, studies of calcium uptake regulation in cells of the immune system, particularly in T lymphocytes, have revealed that, depending on the degree of cellular activation, either stimulatory, inhibitory, or no field exposure effects are observed for identical field parameters. A brief summary of the experimental findings is given, and a theoretical approach is presented that accounts in a qualitative manner for EMF exposure effects 1) that depend on the degree of cellular activation and 2) that exhibit a biphasic response behavior (stimulation/ inhibition). In the model, biochemical stimulation of the cell results in activation of specific signaling pathways that regulate calcium dynamics in the cell (calcium release from intracellular calcium stores and capacitative calcium entry). We assume that, controlled by these pathways, a specific EMF-sensitive enzyme system becomes activated. The activated enzyme, in turn, exhibits a feedback control on the signal processes, thus leading to a modulation of calcium entry. This modulation may affect other cellular processes that are calcium dependent (e.g., DNA synthesis). Magnetic field exposure is assumed to alter the kinetics of a specific step within the enzyme-reaction cycle in accord with the radical-pair mechanism, although the formulism is not restricted to this specific example. Results show that inclusion of cooperative steps within the enzyme-reaction cycle provides a theoretical basis that enables a simple description of a biphasic response behavior to EMF exposure.

摘要

极低频电场和磁场(EMFs)对生物系统的现场暴露效应实验表明,在许多情况下,生物功能状态对于有效相互作用至关重要。例如,对免疫系统细胞,特别是T淋巴细胞中钙摄取调节的研究表明,根据细胞活化程度,对于相同的场参数,会观察到刺激、抑制或无场暴露效应。本文给出了实验结果的简要总结,并提出了一种理论方法,该方法定性地解释了EMF暴露效应:1)取决于细胞活化程度;2)表现出双相反应行为(刺激/抑制)。在该模型中,细胞的生化刺激导致调节细胞内钙动力学的特定信号通路激活(从细胞内钙库释放钙和容量性钙内流)。我们假设,受这些通路控制,一个特定的EMF敏感酶系统被激活。被激活的酶进而对信号过程表现出反馈控制,从而导致钙内流的调节。这种调节可能会影响其他依赖钙的细胞过程(如DNA合成)。尽管该公式不限于这个特定例子,但假设磁场暴露根据自由基对机制改变酶反应循环内特定步骤的动力学。结果表明,在酶反应循环中纳入协同步骤提供了一个理论基础,能够简单描述对EMF暴露的双相反应行为。

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