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Patch-clamp recordings of rat neurons from acute brain slices of the somatosensory cortex during magnetic stimulation

机译:磁刺激过程中来自体感皮层急性脑切片的大鼠神经元的膜片钳记录

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摘要

Although transcranial magnetic stimulation (TMS) is a popular tool for both basic research and clinical applications, its actions on nerve cells are only partially understood. We have previously predicted, using compartmental modeling, that magnetic stimulation of central nervous system neurons depolarized the soma followed by initiation of an action potential in the initial segment of the axon. The simulations also predict that neurons with low current threshold are more susceptible to magnetic stimulation. Here we tested these theoretical predictions by combining in vitro patch-clamp recordings from rat brain slices with magnetic stimulation and compartmental modeling. In agreement with the modeling, our recordings demonstrate the dependence of magnetic stimulation-triggered action potentials on the type and state of the neuron and its orientation within the magnetic field. Our results suggest that the observed effects of TMS are deeply rooted in the biophysical properties of single neurons in the central nervous system and provide a framework both for interpreting existing TMS data and developing new simulation-based tools and therapies.
机译:尽管经颅磁刺激(TMS)在基础研究和临床应用中都是一种流行的工具,但其对神经细胞的作用仅得到部分了解。我们先前曾使用隔室模型预测,中枢神经系统神经元的磁刺激使躯体去极化,然后在轴突的初始部分引发动作电位。该模拟还预测具有低电流阈值的神经元更容易受到磁刺激。在这里,我们通过将大鼠脑片的体外膜片钳记录与磁刺激和隔室模型相结合,测试了这些理论预测。与建模一致,我们的记录证明了磁刺激触发的动作电位对神经元的类型和状态及其在磁场中的方向的依赖性。我们的结果表明,所观察到的TMS效应深深扎根于中枢神经系统中单个神经元的生物物理特性,并为解释现有TMS数据和开发新的基于仿真的工具和疗法提供了框架。

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