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Synchronization between electric fields and neuronal ensembles.

机译:电场和神经元集合之间的同步。

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摘要

The interactions between electromagnetic fields and neuronal tissues have been studied for over a century. Most of these studies have used waveforms with little, or no physiological relevance. In this study I tested the ability of a neuronal ensemble from the CA3 and CA1 to synchronize with an applied electric field, with similar frequency characteristics to that from a real CA3 population burst. Subsequently experiments were conducted where one hippocampal slice produce the electric field input, via population burst firing, to an adjacent hippocampal slice in order to determine if two neuronal ensembles could synchronize their activity through electric fields.; 350 μm thick longitudinal hippocampal slices were prepared from 125–150 gm-Sprague-Dawley rats and perfused at 2ml/min in artificial cerebrospinal fluid (ACSF 3.5 mM KCl). After 90 min the perfusate was changed to one containing 8.5 mM [K]. All experiments were carried out at 34.5–35.1°C. Extracellular field potentials were recorded differentially to the perfusate bath.; The field strength necessary for synchronization to the electric field stimulus was probed. Synchronization was determined using the peri-stimulus-time-histogram; significance was determined with respect to the mean and standard deviation of sham experiments. Population bursts from the CA3 synchronized with the input field at strengths less than 0.8 mV/mm (107 exp. from 13 rats), and activity from small neuronal ensembles of the CA1 synchronized with the input field at strengths less than 0.3 mV/mm (121 exp. from 12 rats). In order to avoid false positive results I used several experimental controls aimed at determining spurious crosscorrelation, including inverting the input field, as well as rotating the slice to look for the appropriate null response.; In an effort to further demonstrate these effects I also looked at extracellular recordings of single unit activity and found that this activity was sensitive to fields down to 0.3 mV/mm (220 exp. from 13 rats). These results illustrate that the limit for electric field interaction is far less than previously demonstrated, and that models of neuronal network synchronization may require consideration of electric field effects. Further study on the interaction between electric fields and neurons is needed.
机译:电磁场与神经组织之间的相互作用已经研究了一个多世纪。这些研究大多数都使用了生理相关性很小或没有生理相关性的波形。在这项研究中,我测试了CA3和CA1中神经元集合与所施加电场同步的能力,其频率特征与真实CA3群体爆发的频率特征相似。随后进行了实验,其中一个海马切片通过种群爆发发射向相邻的海马切片产生电场输入,以确定两个神经元集合是否可以通过电场使其活动同步。从125–150 gm-Sprague-Dawley大鼠制备350μm厚的纵向海马切片,并以2ml / min的速度在人工脑脊液(ACSF 3.5 mM KCl)中灌注。 90分钟后,将灌注液更改为含有8.5 mM [K]的灌注液。所有实验均在34.5–35.1°C下进行。在灌洗液中不同地记录了细胞外场电势。探索了与电场刺激同步所需的场强。使用周围刺激时间直方图确定同步。关于假实验的平均值和标准偏差确定显着性。来自CA3的种群以小于0.8 mV / mm的强度与输入场同步(来自13只大鼠的实验值为107),来自CA1的小神经元集合的活动以小于0.3 mV / mm的强度与输入场同步(来自12只大鼠的121倍实验)。为了避免出现假阳性结果,我使用了几种旨在确定虚假互相关的实验控件,包括反转输入字段以及旋转切片以寻找适当的空响应。为了进一步证明这些作用,我还查看了单个单位活性的细胞外记录,发现该活性对低至0.3 mV / mm(来自13只大鼠的实验值为220)的场敏感。这些结果说明,电场相互作用的极限远小于先前证明的极限,并且神经元网络同步模型可能需要考虑电场效应。需要进一步研究电场与神经元之间的相互作用。

著录项

  • 作者

    Francis, Joseph Thachil.;

  • 作者单位

    The George Washington University.;

  • 授予单位 The George Washington University.;
  • 学科 Biology Neuroscience.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 166 p.
  • 总页数 166
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 神经科学;
  • 关键词

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