首页> 美国卫生研究院文献>Frontiers in Cellular Neuroscience >Cortical Plasticity Induced by Anodal Transcranial Pulsed Current Stimulation Investigated by Combining Two-Photon Imaging and Electrophysiological Recording
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Cortical Plasticity Induced by Anodal Transcranial Pulsed Current Stimulation Investigated by Combining Two-Photon Imaging and Electrophysiological Recording

机译:结合双光子成像和电生理记录研究的阳极经颅脉冲电流刺激引起的皮质可塑性。

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摘要

Anodal-transcranial pulsed current stimulation (a-tPCS) has been used in human studies to modulate cortical excitability or improve behavioral performance in recent years. Multiple studies show crucial roles of astrocytes in cortical plasticity. The calcium activity in astrocytes could regulate synaptic transmission and synaptic plasticity. Whether the astrocytic activity is involved in a-tPCS-induced cortical plasticity is presently unknown. The purpose of this study is to investigate the calcium responses in neurons and astrocytes evoked by a-tPCS with different current intensities, and thereby provides some indication of the mechanisms underlying a-tPCS-induced cortical plasticity. Two-photon calcium imaging was used to record the calcium responses of neurons and astrocytes in mouse somatosensory cortex. Local field potential (LFP) evoked by sensory stimulation was used to assess the effects of a-tPCS on plasticity. We found that long-duration a-tPCS with high-intensity current could evoke large-amplitude calcium responses in both neurons and astrocytes, whereas long-duration a-tPCS with low-intensity current evoked large-amplitude calcium responses only in astrocytes. The astrocytic Ca2+ elevations are driven by noradrenergic-dependent activation of the alpha-1 adrenergic receptors (A1ARs), while the intense Ca2+ responses of neurons are driven by action potentials. LFP recordings demonstrated that low-intensity a-tPCS led to enhancement of cortical excitability while high-intensity a-tPCS resulted in diminution of cortical excitability. The results provide some evidence that the enhancement of a-tPCS-induced cortical excitability might be partly associated with calcium elevation in astrocytes, whereas the diminution of a-tPCS-induced cortical excitability might be caused by excessive calcium activity in neurons. These findings indicate that the appropriate current intensity should be used in the application of a-tPCS.
机译:近年来,阳极经颅脉冲电流刺激(a-tPCS)已用于人体研究,以调节皮层兴奋性或改善行为表现。多项研究表明星形胶质细胞在皮质可塑性中的关键作用。星形胶质细胞中的钙活性可以调节突触传递和突触可塑性。目前尚不清楚星形胶质细胞活性是否参与了α-tPCS诱导的皮质可塑性。这项研究的目的是调查电流强度不同的a-tPCS诱发的神经元和星形胶质细胞中的钙反应,从而为a-tPCS诱导的皮质可塑性的潜在机制提供一些指示。双光子钙成像用于记录小鼠体感皮层中神经元和星形胶质细胞的钙反应。感觉刺激引起的局部场电位(LFP)用于评估a-tPCS对可塑性的影响。我们发现,具有高强度电流的长期a-tPCS可以在神经元和星形胶质细胞中引起大幅度的钙反应,而具有低强度电流的长期a-tPCS只能在星形胶质细胞中引起大幅度的钙反应。星形胶质细胞Ca 2 + 升高是由去甲肾上腺素依赖的α-1肾上腺素能受体(A1ARs)激活引起的,而神经元的强烈Ca 2 + 反应则由神经元驱动。动作电位。 LFP记录表明,低强度a-tPCS导致皮质兴奋性增强,而高强度a-tPCS导致皮质兴奋性降低。结果提供了一些证据,a-tPCS诱导的皮层兴奋性的增强可能与星形胶质细胞中钙的升高部分相关,而a-tPCS诱导的皮层兴奋性的减弱可能是由于神经元中钙的过度活性引起的。这些发现表明在a-tPCS的应用中应使用适当的电流强度。

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