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Electrical fields induced inside the rat brain with skin, skull, and dural placements of the current injection electrode

机译:电流注入电极在皮肤,颅骨和硬脑膜位置处在大鼠大脑内部感应的电场

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摘要

Transcranial electrical stimulation (tES) is rapidly becoming an indispensable clinical tool with its different forms. Animal data are crucially needed for better understanding of the underlying mechanisms of tES. For reproducibility of results in animal experiments, the electric fields (E-Fields) inside the brain parenchyma induced by the injected currents need to be predicted accurately. In this study, we measured the electrical fields in the rat brain perpendicular to the brain surface, i.e. vertical electric field (VE-field), when the stimulation electrode was placed over the skin, skull, or dura mater through a craniotomy hole. The E-field attenuation through the skin was a few times larger than that of the skull and the presence of skin substantially reduced the VE-field peak at the cortical surface near the electrode. The VE-field declined much quicker in the gray matter underneath the pial surface than it did in the white matter, and thus the large VE-fields were contained mostly in the gray matter. The transition at the gray/white matter border caused a significant peak in the VE-field, as well as at other local inhomogeneties. A conductivity value of 0.57 S/m is predicted as a global value for the whole brain by matching our VE-field measurements to the field profile given by analytical equations for volume conductors. Finally, insertion of the current return electrode into the shoulder, submandibular, and hind leg muscles had virtually no effects on the measured E-field amplitudes in the cortex underneath the epidural electrodes.
机译:经颅电刺激(tES)凭借其不同的形式正迅速成为必不可少的临床工具。为了更好地了解tES的潜在机制,至关重要的是动物数据。为了在动物实验中再现结果,需要准确预测由注入电流引起的脑实质内的电场(电场)。在这项研究中,当刺激电极通过开颅孔放置在皮肤,颅骨或硬脑膜上时,我们测量了垂直于脑表面的大鼠大脑中的电场,即垂直电场(VE场)。穿过皮肤的电场衰减比头骨的衰减大几倍,并且皮肤的存在大大降低了电极附近皮质表面的VE电场峰值。脊髓表面灰质下的VE场比白质下的VE场下降快得多,因此大的VE场主要包含在灰质中。灰/白质边界处的跃迁在VE场以及其他局部不均匀性中引起了明显的峰值。通过将我们的VE场测量值与体积导体的解析方程式给出的场轮廓进行匹配,可以预测整个大脑的电导率值为0.57 S / m。最后,将电流返回电极插入肩,下颌和后腿肌肉实际上对硬膜外电极下方皮层中测得的电场强度没有影响。

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