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首页> 外文期刊>Brain and Behavior >Human entorhinal cortex electrical stimulation evoked short‐latency potentials in the broad neocortical regions: Evidence from cortico‐cortical evoked potential recordings
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Human entorhinal cortex electrical stimulation evoked short‐latency potentials in the broad neocortical regions: Evidence from cortico‐cortical evoked potential recordings

机译:人类的Entorhinal Cortex电刺激诱发了广泛的新皮质区域中的短期潜力:来自皮质皮质诱发的潜在录音的证据

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Objective We aimed at clarifying the clinical significance of the responses evoked by human entorhinal cortex (EC) electrical stimulation by means of cortico‐cortical evoked potentials (CCEPs). Methods We enrolled nine patients with medically intractable medial temporal lobe epilepsy who underwent invasive presurgical evaluations with subdural or depth electrodes. Single‐pulse electrical stimulation was delivered to the EC and fusiform gyrus (FG), and their evoked potentials were compared. The correlation between the evoked potentials and Wechsler Memory Scale‐Revised (WMS‐R) score was analyzed to investigate whether memory circuit was involved in the generation of the evoked potentials. Results In most electrodes placed on the neocortex, EC stimulation induced unique evoked potentials with positive polarity, termed as “widespread P1” (P1w). Compared with FG stimulation, P1w induced by EC stimulation were distinguished by their high occurrence rate, short peak latency (mean: 20.1?ms), small peak amplitude, and waveform uniformity among different recording sites. A stimulation of more posterior parts of the EC induced P1w with shorter latency and larger amplitude. P1w peak amplitude had a positive correlation ( r ?=?.69) with the visual memory score of the WMS‐R. In one patient, with depth electrode implanted into the hippocampus, the giant evoked potentials were recorded in the electrodes of the anterior hippocampus and EC near the stimulus site. Conclusions The human EC electrical stimulation evoked the short‐latency potentials in the broad neocortical regions. The origin of P1w remains unclear, although the limited evidence suggests that P1w is the far‐field potential by the volume conduction of giant evoked potential from the EC itself and hippocampus. The significance of the present study is that those evoked potentials may be a potential biomarker of memory impairment in various neurological diseases, and we provided direct evidence for the functional subdivisions along the anterior–posterior axis in the human EC.
机译:目的我们旨在通过皮质皮质诱发电位(CCEP)来阐明人类Entorlinal皮层(EC)电刺激引起的反应的临床意义。方法我们注册了9例患者医疗内侧颞叶癫痫患者,患有子宫内容或深度电极的侵入式预设评估。单脉冲电刺激递送至EC和FUSINESS旋转(FG),并比较它们的诱发电位。分析了诱发电位和施法者内存比例评分(WMS-R)评分之间的相关性以研究记忆电路是否参与了诱发电位的产生。结果在Neocortex上放置的大多数电极,EC刺激诱导具有正极性的独特诱发电位,称为“广泛的P1”(P1W)。与FG刺激相比,EC刺激诱导的P1W通过它们的高发生速率,短峰延迟(平均值:20.1μm),小峰值幅度和不同记录位点的波形均匀性。 EC诱导P1W更多后部的刺激,延迟较短,幅度较大。 P1W峰值幅度具有正相关(R?=→69),具有WMS-R的视觉存储器分数。在一个患者中,植入海马进入海马的深度电极,在刺激位点附近的前海马和EC的电极中记录巨型诱发电位。结论人EC电刺激唤起了广泛的新奇地区的短延迟电位。虽然有限的证据表明,P1W的起源仍然不清楚P1W是来自EC本身和海马的巨型诱发电位的体积传导的远场潜力。本研究的重要性是,这些诱发的电位可能是各种神经疾病中记忆障碍的潜在生物标志物,我们为沿人体前后后轴的功能细分提供了直接证据。

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