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Multimodal characterization of population responses evoked by applied electric field in vitro: extracellular potential magnetic evoked field transmembrane potential and current-source density analysis

机译:体外施加电场引起的群体反应的多峰表征:细胞外电势磁诱发场跨膜电势和电流源密度分析

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摘要

An external electric field applied parallel to longitudinal axis of neurons selectively depolarizes either end and thereby activates voltage-sensitive conductance changes in a large population of neurons. Here, we characterized such population responses in the in vitro turtle cerebellum. The responses were recorded and analyzed using a multimodal approach: the magnetic evoked field was measured using a Superconducting Quantum Interference Device (SQUID) magnetometer, and concurrently the electric field potentials were recorded. Laminar profile and current-source density analysis were used to uncover the pattern of activation due to the applied electric field. Intracellular recording provided further information for identifying the elements producing the observed responses. Finally, pharmacological manipulations confirmed the nature of the conductance changes. Our results show that it is possible to activate a defined cell population of the cerebellum by an applied field and obtain a magnetic response of the order of 0.5–2 pT. A field applied from the dorsal to the ventral side of cerebellum produced tetrodotoxin-sensitive population spikes. This component was followed by a kynurenic acid (KYNA)-sensitive postsynaptic response, most likely comprised of Ca(2+)-mediated action potentials occurring at the proximal pole of the Purkinje cell dendrites and evoked by climbing fiber inputs. The applied electric field directed from the ventral to the dorsal side of cerebellum gave rise to a complex of responses that was made up of a KYNA-sensitive component (presumably synaptically activated) and an Mn(2+)-sensitive but KYNA-insensitive component (probably due to a directly activated calcium conductance change). This study provides insights into the effects of electric and magnetic fields applied to the nervous tissue of experimental animal and human studies.
机译:平行于神经元纵轴施加的外部电场会选择性地使任一端消极化,从而激活大量神经元中电压敏感的电导率变化。在这里,我们表征了体外乌龟小脑中的此类人口反应。使用多模式方法记录和分析响应:使用超导量子干涉仪(SQUID)磁力计测量诱发磁场,并同时记录电场电势。使用层流轮廓和电流源密度分析来揭示由于施加电场而引起的激活模式。细胞内记录为鉴定产生观察到的反应的元素提供了进一步的信息。最后,药理学操作证实了电导变化的性质。我们的结果表明,可以通过施加磁场激活小脑的定义细胞群,并获得0.5–2 pT的磁响应。从小脑背侧到腹侧的电场产生了河豚毒素敏感的种群尖峰。该组件后是对尿酸(KYNA)敏感的突触后反应,最有可能由Ca(2+)介导的动作电位出现在Purkinje细胞树突的近端,并由攀爬的纤维输入引起。从腹侧到小脑背侧的施加电场引起了复杂的反应,该反应由KYNA敏感组分(可能被突触激活)和Mn(2+)敏感但对KYNA不敏感的组分组成(可能是由于直接激活的钙电导率变化)。这项研究提供了对施加于实验动物和人体研究的神经组织的电场和磁场影响的见解。

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